Lecture Notes On Utilization of Electric PDF
Lecture Notes On Utilization of Electric PDF
Lecture Notes On Utilization of Electric PDF
asia
LECTURE NOTES
ON
UTILIZATION OF ELECTRICAL
ENGINEERING
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UNIT 1
Electric Drives
1.1 INTRODUCTION
Motor control is required in large number of industrial and domestic applications such as
transportation systems, rolling mills, paper machines, textile mills, machine tools, fans, pumps,
robots, and washing machines. Systems employed for motion control are calleddrives and may
employ any of the prime movers. Drives employing electric motors are known as electric drives.
Nowadays, in electric power stations generating large amounts of electric energy for
agriculture, industry, domestic needs, and electrified traction facilities and in driving all kinds of
working machines, electric motor is essential, which is the predominant type of drive so the term
electric drive being applied to it.
Electric drive becomes more popular because of its simplicity, reliability, cleanliness,
easiness, and smooth control. Both AC and DC motors are used as electric drives; however, the
AC system is preferred because:
o It is cheaper.
o It can be easily transmitted with low-line losses.
o It can be easy to maintain the voltage at consumer premises within prescribed limits.
o It is possible to increase or decrease the voltage without appreciable loss of power.
o In some processes, such as electrochemical and battery charging, DC is the only type of power that is
suitable.
o The speed control of DC motors is easy rather than AC; thus, for variable speed applications such as lift
and Ward Leonard system, the DC motors are preferred.
o DC series motor is suited for traction work because of high starting torque.
Source
1-φ and 3-φ, 50-Hz AC supplies are readily available in most locations. Very low power drives
are generally fed from 1-φ source; however, the high power drives are powered from 3-φsource;
some of the drives are powered from a battery
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Power modulator
o It modulates flow of power from the source to the motor is impart speed−torque characteristics required
by the load.
o It regulates source and motor currents within permissible values, such as starting, braking, and speed
reversal conditions.
o Selects the mode of operation of motor, i.e., motoring or braking.
o Converts source energy in the form suitable to the motor.
Electrical motors
Motors commonly used in electric drives are DC motors, induction motors, synchronous motors,
blushless DC motors, stepper motors, and switched reluctance motors, etc. In olden days,
induction and synchronous motors were employed mainly for constant speed drives but not for
variable speed drives, because of poor efficiency and are too expensive. But in nowadays, AC
motors employed in variable speed drives due to the development of semiconductors employing
SCRs, power transistors, IGBTs, and GTOs.
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Load
It is usually a machinery, such as fans, pumps, robots, and washing machines, designed to
perform a given task, usually load requirements, can be specified in terms of speed and torque
demands.
Control unit
Control unit controls the function of power modulator. The nature of control unit for a particular
drive depends on the type of power modulator used. When semiconductor converters are used,
the control unit will consists of firing circuits. Microprocessors also used when sophisticated
control is required.
Sensing unit
Sensing unit consists of speed sensor or current sensor. The sensing of speed is required for the
implementation of closed loop speed control schemes. Speed is usually sensed using tachometers
coupled to the motor shaft. Current sensing is required for the implementation of current limit
control.
There are a number of inherent advantages that the electric drive possesses over the other forms
of conventional drives are:
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Depending on the type of equipment used to ran the electric motors in industrial purpose, they
may be classified into three types. They are:
1. Group drives.
2. Individual drives.
3. Multi-motor drives.
Group drives
Electric drive that is used to drive one or more than two machines from line shaft through belts
and pulleys is known as group drive. It is also sometimes called the line shaft drive.This drive is
economical in the consideration of the cost of motor and control gear. A single motor of large
capacity cost is less than the total cost of a number of small motors of the same total capacity. In
switch over from non-electric drive to electric drive, the simplest way is to replace the engine by
means of motor and retaining the rest of power transmission system.
Advantages
o The cost of installation is less. For example, if the power requirement of each machine is 10 HP and
there are five machines in the group, then the cost of five motors will be more than one 50-HP motor.
o If it is operated at rated load, the efficiency and power factor of large group drive motor will be high.
o The maintenance cost of single large capacity motor is less than number of small capacity motors.
o It is used for the processes where the stoppage of one operation necessitates the stoppages of sequence
of operations as incase of textile mills.
o It has overload capacity.
Disadvantage
Even though group drive has above advantages, it suffers from the following disadvantages.
o If there is any fault in the main motor, all the machines connected to the motor will fail to operate;
thereby, paralyzing a part of industry until the fault is removed.
o It is not possible to install any machine at a distant place.
o The possibility of the installation of additional machines in an existing industry is limited.
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Individual drive
In individual drive, a single electric motor is used to drive one individual machine. Such a drive
is very common in most of the industries.
Advantages
Disadvantage
Multi-motor drive
In multi-motor drives, several separate motors are provided for operating different parts of the
same machine.
Ex: In traveling cranes, three motors are used for hoisting, long travel, and cross-travel
motions. Multi-motor drive is used in complicated metal cutting machine tools, rolling mills,
paper making machines, etc.
CHOICE OF MOTORS
The selection of the driving motor for a given service depends upon the conditions under which
it has to operate. Due to the universal adoption of electric drive, it has become necessary for the
manufacturer to manufacture motors of various designs according to the suitability and the use in
various designs according to the suitability and the use in various classes of industry. This has
resulted into numerous types of motors. For this reason, the selection of motor itself has become
an important and tedious process. The conditions under which an electric motor has to operate
and the type of load it has to handle, determine its selection.
While selecting a motor, the following factors must be taken into consideration:
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1. Cost:
Electric characteristics:
0. starting characteristics,
1. running characteristics,
2. speed control characteristics, and
3. braking characteristics.
Mechanical characteristics:
Type of drive:
Nature of supply.
From the above, it is seen that a large number of factors are to be considered in making the
choice of an electric motor for a given drive. The motor selected must fulfill all the necessary
load requirements and at the same time, it should not be very costly if it has to be a commercial
success. The factors motioned above will be individually discussed in the following sections to
bring home to the reader the importance of each. While making the final choice of the motor, a
satisfactory compromise may have to be made in some cases on account of the conflicting
requirements.
CHARACTERISTICS OF DC MOTOR
The performance and, therefore, suitability of a DC motor are determined from its
characteristics. The important characteristics of DC motor are:
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This characteristic gives relation between speed (N) and torque (T) developed in the
armature. This curve may be derived from the two characteristics mentioned in
characteristics (i) and (ii) above.
Characteristics (i), (ii), and (iii) are called starting characteristics, and (iv) is known
asrunning characteristics.
While discussing motor characteristics, the following relations should always be kept in mind.
where Ta is the torque developed in the armature in N-m, Ia is the armature current in
ampere, Eb is the back emf in volts, and φ is the flux in weber.
The field winding connected across the armature terminals called as shunt motor as shown in
Fig.. Rated voltage is applied across the field and armature terminals.
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Starting characteristics
The study of starting characteristics of a motor is essential to know the starting torque necessary
to accelerate the motor from standstill position is also to require to overcome the static friction
and the standstill load or, to provide load torque.
In the expression for the torque of a DC motor, torque is directly proportional to the product of
flux per pole (φ) and armature current (Ia):
Since, in case of a DC shunt motor, the flux per pole (φ) is considered to be constant.
∴ T ∝ Ia.
So, the torque is proportional to armature current and is practically a straight line passing
through the origin as shown if Fig. 1.3.
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To generate high starting torque, this type of motor requires a large value of armature current
at starting. This may damage the motor, hence DC shunt motors can develop moderate starting
torque and hence suitable for such applications where starting torque requirement is moderate.
In shunt motor, the applied voltage ‘ V' is kept constant, the field current will remain constant,
and hence the flux will have maximum value on no load due to the armature reaction; if load on
the motor increases, the flux will be slightly decrease. By neglecting the armature reaction, the
flux is almost constant.
where Eb = V − IaRa
Since, for DC shunt motor, the flux per pole is considered to be constant.
So, as the load on the motor increases, the armature current increases and hence IaRa drop also
increases. For constant supply, the voltage (V-IaRa) decreases and hence the speed reduces.
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Hence, as armature current increases, the speed of the DC motor decreases. The variation of
speed with armature current is shown in Fig. 1.4.
The output of the motor is dependent on the shaft torque. If the armature current increases, the
output of the motor gradually increases. The variation of output with the armature current is
shown in Fig. 1.5.
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Running characteristics
These characteristics can be derived from its staring characteristics of (i) and (ii). During the
steady-state operation of the motor, the voltage equation of the armature circuit is given by:
where V is the applied voltage, Eb is the back emf of motor, Ia is the armature current, and Rais
the armature resistance.
Eb ∝φ N
∴Eb = K φ N,
The torque of the motor is directly proportional to product of flux and armature current.
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Since, the shunt motor flux is constant, the speed of the motor is:
where K1 = Kφ.
When V and Ra are kept constant, the speed torque characteristic is a straight line.
If the load on the motor increases, thus the torque increases and hence the speed of the motor
decreases. The characteristic curve can be drawn from the
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In case of series motor, the field windings are connected in series with armature terminals as
shown in Fig. 1.7. Since, the field winding is connected in series with the armature winding, the
load current (IL) is equals to the armature current (Ia) or the series field current (Ise).
∴ IL = Ia = Ise.
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Starting characteristics
In case of DC motors, torque is directly proportional to the product of flux per pole (φ) and
armature current (Ia).
∴ T ∝ φ Ia.
Up to the saturation point, the flux is proportional to the field current and hence the armature
current:
Hence, the curve drawn in Fig. 8.8; the torque and the armature currents are parabolas, up to
saturation point. After saturation, the flux (φ) is almost independent of the excitation current and
so the torque is proportional to the armature current, i.e., T ∝ Ia. Hence the characteristics
become a straight line. The variation of torque with the armature current is shown in Fig. 8.8.
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From the speed equation of DC series motor, the speed is directly proportional to the back emf
and is inversely proportional to flux:
i.e.,
where Eb = V − IaRse.
When the armature current increases, the voltage drop in the armature resistance and the field
resistance increases, but under the normal conditions, the voltage drop is small and it is
negligible. Hence, V = Eb and it is constant:
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This relation shows the variation of speed with the armature current and it will be arectangular
hyperbola, which is shown in Fig. 1.9.
Running characteristics
Speed-torque characteristics
These characteristics can be derived its starting characteristics. It is also known asmechanical
characteristic.
T ∝ ϕIa ∝Ia2
and
As the torque of a DC machine is directly proportional to armature current and flux, the speed
will be inversely proportional to the square root of the torque, i.e., from the above two relations:
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But at higher loads, the flux becomes saturated and the torque will be proportional to armature
current, so the speed can be represented as:
Hence, the series motors are best suited for services where the motor is directly coupled to the
load such as whose speed falls with the increase in load torque.
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Compound motors have both series. If the series field excitation aids with the shunt excitation,
then the motor is said to be cumulatively compounded. If the series field opposes the shunt field
excitation, it is known as differential compound motor.
The characteristics of such motors lie in between shunt and series motors.
Cumulative-compound motor
Since, the series field aids with the shunt field winding, the flux is increased, as load is applied to
the motor, and due to this reason, the motor speed slightly decreases. Such machines are used
where series characteristics are required. Due to the shunt field, the winding speed will not
become excessively high, but due to the series field winding, it will be able to take heavy loads.
Compound wound motors have the greatest application with loads that require high starting
torques or pulsating load.
Differential-compound motors
In this motor, the series field opposes the shunt field and the flux is decreased, as load is applied
to the motor. This results in the motor speed that is almost constant or even increasing with
increase in load.
The speed-armature current and the torque–armature current characteristics of both the
cumulative and the differential compound motors are shown in Figs. 1.11 and 1.12.
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Three-phase induction motors are simple in design, rugged in construction with the absence of
commentator, and reliable in service. Besides this, they have low initial cost, simple
maintenance, easy operation, and simple control gear for starting and speed control.
The speed–torque characteristics of the induction motor are quite important in the selection of
the induction motor drive. These characteristics can be effectively determined by means of the
equivalent circuit of the induction motor. The simplified equivalent circuit of induction motor is
shown in Fig. 1.13.
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In Fig. 1.13, V is the applied voltage per phase, R1 and X1 are the stator resistance and leakage
reactance per phase, are the rotor resistance and leakage reactance per
phase, R0and X0 are the resistance and reactance per phase of the magnetizing branch, and is
the rotor current per phase.
From the equivalent circuit of induction motor, as shown in Fig. 1.13, the rotor current
referred to the stator is given by:
The torque produced in the induction motor is mainly depends on the magnitude of rotor current,
the power factor of the rotor circuit, and the part of rotating magnetic field that interacts with the
rotor.
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where ‘K’ is proportionality constant and is proved to be for the three-phase induction
motor.
where Ns is synchronous speed in rps at standstill slip S = 1; therefore, the expression for starting
torque may be obtained by putting S = 1
The torque developed by the motor under running condition mainly depends on slip at which
motor is running.
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Equation (8.17) reveals that the slip ‘Sm’ at which maximum torque will be developed by the
induction motor.
From Eq. (8.14), the maximum torque corresponding to slip Sm = R2/X2 is given by:
Torque ratios
The performance of motor is estimated in terms of the ratios of different torques such as full-
load, starting, and maximum torques.
Let,
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The torque–speed and torque–slip characteristics are shown in Fig. 8.14 (a) and (b). According to
the torque equation of motor:
From the above expression, it is evident that, when torque is zero, slip S = 0 in low-slip region,
slip is very very small, so that (SX2) is so small compared to R2; hence, it can be neglected.
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Therefore, torque T is proportional to slip ‘S’ if rotor resistance R2 is constant. That is speeds
nearer to synchronous speeds, the torque–speed, and torque–slip curves are approximately
straight lines.
In high-slip region, the slip value approaches to unity. Here, it can be assumed that is very
very small as compared to (SX2)2; hence, it can be neglected.
When slip increases, the torque increases to its maximum value when S = R2/X2. The maximum
torque is also known as pullout or breakdown torque. Beyond this, if slip further increases torque
is inversely proportional to slip if R2 and X2 are constant.
This means that the torque–speed and the torque–slip curves are approximately straight
lines. Figure 8.14 (a) and (b) shows the torque speed and the torque–slip curves for the different
values of rotor resistance.
Example 1.1: A 3-φ induction motor has a ratio of maximum torque to full-load torque as 2:1.
Determine the ratio of actual starting torque to full-load torque for Y - ∆ starting. GivenR2 = 0.2
Ω and X2 = 2Ω.
Solution:
Given data:
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Example 1.2: The supply voltage to a cage rotor motor is 70% instead of 100%. Determine the
reduction in starting torque and starting current.
Solution:
where Tf, If, Sf, and Isc are the full-load torque, full-load current, full-load slip, and short-circuit
current, respectively.
= 51%.
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Example: Determine the ratio of actual starting torque to full-load torque for star-delta starting.
If a 3-φ induction motor has a ratio of maximum torque to full-load torque as 3:1 and the
resistance and the reactance are 0.4 Ω and 5 Ω, respectively.
Solution:
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Example: Determine the new value of stator current if a 3-φ, 440-V and 1,200-rpm slip ring
induction motor is operating with 3% slip and taking a stator current of 50-A speed of the motor
is reduced at constant torque to 600 rpm using stator voltage control.
Solution:
Torque developed by the induction motor T ∝ SV2 for the constant torque:
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Example: A 9.5-kW, 240-V, three-phase, star-connected, 50-Hz, and four-pole squirrel cage
induction has its full-load internal torque at a slip of 0.05. The parameters of the motor are
Rl = 0.4Ω/phase, R2 = 0.3Ω/phase
X1 = X2 = 0.5Ω/phase, Xm = 16Ω/phase.
Assume that the shunt branch is connected across the supply terminals. Determine (a) maximum
internal torque at rated voltage and frequency, (b) slip at maximum torque, and (c) internal
starting torque at rated, voltage, and frequency.
Solution:
At maximum torque:
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At standstill:
= 0.7 +j1
= 1.22 ∠55Ω.
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= 3 × (113.57)2 × (0.3)
= 11,608.33 synchronous W.
Example: A 30-HP, six-pole, 50-Hz, and three-phase induction motor has stator/rotor phase
voltage ratio of 7/5. The stator and rotor impedances per phase are (0.35 + j0.65) Ω and (0.15 +
j0.65) Ω, respectively. Find the starting torque exerted by the motor when an external resistance
of 1.5 Ω is inserted in each phase; the motor being started directly on the 440-V supply system.
Assume Y/Y connection.
Solution:
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X02 = X2 + K2X1
= 0.98 Ω.
When the external resistance is inserted then, the equivalent motor impedance referred to rotor
is:
E2 = V1 × K
= 254.714
= 181.356 V.
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Example: For a three-phase induction motor, maximum torque is thrice the full-load torque and
starting torque is 1.9 times the full-load torque. In order to get a full-load slip of 6%, calculate
the percentage reduction in rotor circuit resistance neglect stator impedance.
Solution:
For a full-load slip of 0.06, the ratio of full-load torque to maximum torque is given by:
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Example: The rotor of a three-phase induction motor has 0.05-Ω resistance per phase and 0.3-
standstill reactance per phase. What external resistance is required in the rotor circuit in order to
get half of the maximum torque at starting? Neglect stator impedance by what percentage will
this external resistance change the current and power factor at starting?
Solution:
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We know that:
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o Some drives require a continuously variable speed over the range from zero to full speed, such drives are
known as variable-speed drives.
o Some drives require only two to three fixed speeds over a region, such drives are known asmulti-speed
drives.
o In some cases, speed is needed for adjusting or setting up the work on driven machine only for a few
revolutions per minute. Such a speed is known as creeping speed.
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For example, crane or hoist requires same torque at all speeds, while a fan or centrifugal pump
requires a torque proportional to the square of the speed. For most of the drives, however, a
control of speed within ±25% of the normal speed is required.
The speed and torque of a DC motor can be expressed by the following relationships.
T ∝ ϕ Ia,
where V is the terminal voltage in volts, Ia is th armature current in ampere, Ra is the armature
resistance in ohm, φ is the flux per pole in wb, TV is the speed of DC motor in rpm, and T is the
torque in N-m.
Speed of DC shunt motor can be controlled by varying the flux, armature resistance, and applied
voltage to the armature terminals.
Various methods of controlling the speed of the shunt motor is given as follows.
The speed adjustment of the DC shunt motors by field control may be obtained by one of the
following methods.
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In this method, speed control is obtained by controlling the field current or flux by means of a
variable resistance inserted in series with the shunt filed winding. The external resistance (Re)
connected in series with the field winding is shown as shunt field regulator. The method of
regulating the speed by varying the flux or field current in the shunt field winding is known as
flux control method. Circuit diagram illustrating the speed control of a shunt motor is shown
in Fig. 1.15.
The variation of external resistance 'Re’ in the filed reduces the field current and hence the
flux 'φ' also reduces. The reduction in flux will also results in an increase in the speed. For DC
shunt motor, speed is inversely proportional to field flux (φ). Since in this method of speed
control, flux can be only reduced. Consequently, the motor runs at a speed higher than the
normal speed. For this reason, this method of speed control is used to give motor speeds above
normal or to correct for a fall in speed due to load.
Reluctance control
In this method of speed control, the motor must be constructed with special mechanical features
so that the reluctance of the magnetic circuit can be changed, which makes the motor more
expensive. Hence, the variable reluctance type of motor is seldom used.
This method requires a variable voltage for the field circuit; such a variable supply can be
obtained by means of an adjustable electronic rectifier.
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The speed adjustment of the DC shunt motors by armature control may be obtained by one of the
following methods.
The speed is directly proportional to the voltage applied across the armature. Voltage across
the armature can be controlled by changing resistance connected in series with it. As the
controller resistance is increased, the potential difference across the armature is decreased
thereby decreasing the armature speed. There is a particular load current at which the speed
would be zero is called stating current. The main disadvantage of this method is speed up to zero
is not possible, as it requires large rehostat in series with the armature that is practically
impossible.
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The main disadvantage of the above method can be overcome by connecting a rheostat in a
potential devider arrangement as shown in Fig. 1.17.
When the variable rehostat is at minimum position, the voltage across the armature is zero. If
rehostat is moved toward maximum position, the voltage across the armature increases then
speed also increases. The variation of speed with the armature voltage is shown in Fig. 8.18.
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Example: A DC shunt motor rated at 220 V, 15 kW, and 1,500 rpm has a Ml-load efficiency of
90%. Its field and armature resistances are 110 Ω and 0.25 Ω, respectively. Determine the value
of the resistance to be inserted in series with the armature and the power lost in the armature
circuit to reduce the speed to 1,000 rpm when:
Solution:
Given data:
V = 200V
P = 15,000 W
N1 = 1,500 rpm
N2 = 1,000 rpm
Rsh = 110 Ω
Ra = 0.25 Ω
η = 0.9.
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2. Given T ∝ N: (i)
T ∝ Ia (ϕ is constant). (ii)
Ia ∝ N. (iii)
Ia corresponding to 15,000 rpm is 50.50 A, then Ia’ corresponding to 1,000 rpm is:
Ia ∝ N2.
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Example 8.12: The armature and the field resistances of a 260-V DC shunt motor 0.25 Ω and
160 Ω, respectively. When driving a load of constant torque at 500 rpm, the an ture current is 20
A. If it is desired to raise the speed from 500 to 1,000 rpm, what resista should be inserted in the
field circuit? Assume that the magnetic circuit is unsaturated.
Solution:
Given data:
V = 200 V
Ra = 0.25 Ω
Rsh = 160Ω
Ia = 20 A
N1 = 500 rpm
N2 = 1,000 rpm.
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Eb ∝ Nϕ
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Example 8.13: A 220-V DC shunt motor, having an armature resistance of 0.5 Ω, draws from
the main current of 30 A on half-full load. The speed is to be increased to twice half-full-load
speed. If the torque of the motor is of constant magnitude, determine the percentage change in
flux required.
Solution:
Given data:
V = 220V
Ra = 0.5 Ω
Ia1 = 30 A.
Given that speed (N2) at full load is twice the speed at half-full load
= 220 − 30 × 0.5
= 205 V.
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Example 8.16: A 200-V shunt motor has an armature resistance of 0.5 Ω it takes a current of
16 A on full load and runs at 600 rpm. If a resistance of 0.5 Ω is placed in the armature circuit,
find the ratio of the stalling torque to the full-load torque.
Solution:
Given data:
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V = 200 volts.
Ra = 0.5 Ω.
If = Ia = 16 A.
N = 600 rpm.
Rɛxt = 0.5Ω.
T ∝ Ia
Example 8.17: A100-HP and 500-rpm DC shunt motor is driving a grinding mill through gears.
The moment of inertia of the mill is 1,265 kg-m2. If the current taken by the motor must not to
exceed twice full-load current during starting, estimate the minimum timetaken to run the mill up
to full speed.
Solution:
Given data:
= 73,550 W.
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Given that motor takes twice the [∴ 1 kg = 9.81N] full-load current; hence, it exerts twice the
full-load torque.
= 2 × TFL.
= 286.38 kg-m.
We know that:
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The speed control of DC series motor can be obtained by changing the series field current, flux,
or voltage applied across the armature. The methods of the speed control of the series motor are:
In the series motor, the variation of flux can be brought about by diverting the current flowing
through the series field winding by any one of the following methods.
In this method, the series field winding is shunted by a variable resistor ‘R’ known as series field
divertor. Any desired amount of current can be passed through the divertor by adjusting its
resistance. Hence, the flux can be controlled, i.e., decreased, and consequently the speed of the
motor is increased.
The arrangement of field diverter and the speed-armature current characteristics with change
in resistance ‘R’ is shown in Figs. 8.19 (a) and (b).
Fig. 8.19 (a) Field diverter method of speed control and (b) Speed-current characteristics
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In this method, the armature of the motor is shunted with an external variable resistance (R) as
shown in Fig. 8.20 is known as armature diverter.
For a given constant load torque, if armature current is reduced due to armature divertor then
flux (φ) must increase (∴ T ∝ Ia). So that, the motor reacts by drawing more current from the
supply. So, the current through field winding increase, so the flux increases and the speed of the
motor reduces.
This method of speed control is used to have the speed below the normal value.
In this method, the flux change is achieved by providing a number of tapings from the field
winding, which are brought out side as shown in Fig. 8.21.
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As shown in Fig. 8.21, the selector switch ‘SW’ is provided to select number of turns. So, the
net mmf will change. This will cause the change in the speed of DC series motor.
In this method of speed control, several speeds can be obtained by grouping the several field
coils as shown in Figs. 8.22 (a) and (b). This method is used generally in case of fan motors.
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If the field coils are arranged in series, or parallel, the mmf produced by the coils changes;
hence, the flux produced also changes. Hence, the speed is controlled.
Armature resistance control method is the most common method employed for DC series motor.
The arrangement and speed-current characteristics of series motor is shown in Figs. 8.23 (a) and
(b).
Fig. 8.23 (a) Armature control method and (b) Speed-current characteristics
By increasing the resistance in series with the armature, voltage drop across this resistance
occurs. So that, the voltage applied across the armature terminals can be decreased. As the speed
is directly proportional to the voltage across the armature, the speed reduces.
Example 8.18: A 400-V series motor has an armature resistance of 0.2 Ω and a series field
resistance of 0.5 Ω. It takes a current of 160 A at a speed of 800 rpm. Find the speed of the motor
if a diverter of resistance 0.4 Ω is connected across the field, the load torque being kept constant.
Neglect armature reaction and assume that flux is proportional to the current.
Solution:
Given data:
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V = 400V
Ra = 0.2 Ω
Rse = 0.5 Ω
Rdiv = 0.4Ω
Ia1 = 160 A
N1 = 800 rpm.
= 288V.
Let, when a diverter of resistance 0.4 Ω is connected across field winding current flowing
through the armature be Ia2.
φ1Ia1 = φ2Ia2.
∴ Ia12 = φ2 Ia2.
Now, from the Fig. P.8.2, the current flowing through the diverter is:
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We know that:
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Example 8.19: A 220-V and 10-HP (metric) shunt motor has field and armature resistances as
of 120 Ω and 0.25 Ω respectively. Calculate the resistance to be inserted in the armature circuit
to reduce the speed to 700 rpm from 950 rpm, if the full-load efficiency is 80% and the torque
varied as the square of the speed.
Solution:
Given data:
V = 220V
Motor rating = 10 HP
Rsh = 120 Ω
Ra = 0.25 Ω
N1 = 950 rpm
N2 = 700 rpm
η = 80% = 0.8.
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= 7,355 W.
∴ 9,194 = 220 × I
I = 41.78 A.
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We know that:
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Example 8.20: A DC series motor drives a load, the torque of which varies as the square of the
speed. The motor takes a current of 30 A, when the speed is 600 rpm. Determine tl speed and
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current when the field winding is shunted by a diverter; the resistance of whic is 1.5 times that of
the field winding. The losses may be neglected.
Solution:
N1 = 600 rpm
Speed = N2
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We know that:
We know that:
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Example 8.21: A 500-V DC series motor runs at 500 rpm and takes 60 A; the resistances of the
field and the armature are 0.3 and 0.2 Ω, respectively. Calculate the value of the resistance to be
shunted with series field winding in order that the speed may be increased to, 600 rpm, if the
torque were to remain constant. Saturation may be neglected.
Solution:
Given that:
V = 500 V
N1 = 500 rpm
Ia1 = 60 A
Ra = 0.2 Ω
Rse = 0.3 Ω
N2 = 600 rpm
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After connecting resistance across field winding, let Ia2 be the armature current (Fig. P.8.5).
T 1 = T 2.
We know that:
T ∝ ϕ Ia and N ∝ Eb/ϕ
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Example 8.22: A 440-V series motor takes a line current of 60 A and runs at a speed of 750
rpm. What resistance should be connected in series with the armature to reduce the speed to 500
rpm. The load torque at this new speed is 75% of its previous value. The resistance of the
armature and the series field are 0.05 Cl and 0.015 Ω, respectively. Assume that flux is
proportional to load.
Solution:
Given data:
V = 440 V
IL = 60 A
N1 = 750 rpm
N2 = 500 rpm
Ra = 0.05 Ω
Rse = 0.015 Ω.
We know that:
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But Eb ∝ N φ
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Rɛxt = 3.55 Ω.
Example 8.23: A series motor with series field and armature resistance of 0.06 Ω and 0.02 Ω,
respectively, is connected across 440-V mains. The armature takes 60 A and its speed is 850
rpm. Determine its speed when it takes 85 A from this very and the excitation is increased by
20%.
Solution:
V = 440 V
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N1 = 850 rpm
Ia1 = 60 A
Ia2 = 85 A
Ra = 0.02 Ω
Rse = 0.06 Ω
φ2 = 1.15 φ1.
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In Fig. 8.24, R is the potential devider, M1 is the main motor whose speed is to be
controlled,G is the separately excited generator that feeds the armature of the motor M1, M2 is the
driving motor that drive generator and main motor, and S is a double-throw switch.
As shown in Fig. 8.24, M1 is the main motor whose speed control is required. The field
winding of this motor is permanently connected to DC supply and armature is fed from variable
voltage so that the motor can run at any desired speed. To provide this variable, the voltage
motor generator set is used, in which the generator is directly coupled to a constant speed motor.
The field circuit of this generator is separately excited from the available DC supply through a
reversing switch and a potential divider ‘R’ so that its excitation can be varied from zero to
maximum in both the directions. Thus, the generator output voltage can be varied from zero to
maximum value. The polarity of generating voltage will be reversed with the help of reversing
switch; thus, the change of the direction of the motor M1 can be achieved.
This system is commonly employed for elevators, hoists, and main drive in steel mills, as this
method can give unlimited speed control in either direction. Since the generator voltage can be
varied gradually from zero, no extra starting equipment is required to start up the main motor
smoothly. The important feature of the Ward–Leonard system is its regenerative action. The
modified Ward–Leonard is called Ward–Leonard–Ilgner system in which a flywheel is used in
addition to motor-generator set, whose function is to reduce fluctuations in the power demand
from the supply circuit. When the main motor M1 becomes suddenly overloaded, the driving
motor M2 slows down, thus allowing the inertia of the flywheel to supply a part of the overload.
However, when the load is suddenly thrown of the main motorM1, then M2 speeds up thereby
again stores energy in the flywheel.
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Disadvantages
A three-phase induction motor is practically a constant-speed motor as the DC shunt motor. The
speed control of DC shunt motor can be achieved easily, but it is difficult to achieve the smooth
speed control of the induction motor because the performance of the induction motor in terms of
its power factor, efficiency, etc. gets adversely effected.
The speed of the induction motor can be changed either by changing its synchronous speed
(Ns) or by changing the slip and also the parameters R2 and E2 are changed then to keep torque
constant for constant load condition, slip will change, then its speed gets effected.
Thus, the following methods are used for controlling the speed of the three-phase induction
motors.
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Thus, following any one method is used for controlling the speed of the three-phase induction
motors on stator side.
This method is impractical for most applications because the frequency of the supply system
must remain fixed. The synchronous speed is given by:
Thus, by controlling the supply frequency, the synchronous speed can be controlled over a wide
range that gives the smooth speed control of the induction motor. Hence, in this method, variable
voltage and frequency is achieved by using converter and inverter circuit as shown in Fig. 8.25.
Rectifier converts normal AC supply to constant DC voltage. This DC supply is then given to
inverter that converts constant DC to variable AC voltage and frequency.
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This is a slip-control method with constant frequency variable supply voltage. In this method, the
voltage applied to the stator is varied.
We know that:
i.e., E2 ∝ V.
In the operating region of an induction motor or for low-slip region (SX2) << R2.
From the above relation, if the supply voltage ‘V ’ is reduced below the rated value torque
developed by the induction motor reduce. But, so as to maintain the torque constant for constant
load, it is necessary to increase the slip thereby decreasing the speed of induction motor.
This method of speed control is simple, low initial cost, and has low maintenance cost, but it
has limited use because, the operation at voltage is restricted by magnetic saturation and also
large change in voltage is required for relatively for small change in speed.
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In this method, it is possible to have one or two speeds, one double of the other which is
generally obtained by changing the number of poles. It is also called as pole-changing method.
Changing the number of poles is simply affected by changing the connections of stator winding
with the help of simple switches. Due to this number of stator poles gets changed, in the ratio
2:1. Hence, either of the two speeds can be selected.
Consider the single phase of a certain three-phase winding when the supply is across the two
terminals and the third is kept open, as shown in Fig. 8.26
Let the conductors which are carrying current in upward direction from South Pole, while the
conductors which carry current in downward direction from north polarity. The distribution of
current is as shown in Fig. 8.26 due to these eight poles get formed.
Now, the two terminals 1 and 2 which the supply was given earlier are joined together and
supply is given to the common point of the first two terminals and the third terminal, on
observing the direction of current, it will be found that total eight poles are changed to four poles
only as shown in Fig. 8.27; so that, the speed now will be double of the previous value.
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The following method is used for controlling the speed of three-phase induction motors on rotor
side.
Cascade control
Multiple speeds are derived and motors are sometimes operated in tandem or cascade. If two
motors are to be mechanically coupled together, one of the machines must be phase-wound
motor while the other can be a squirrel-cage motor. The first is connected to the mains in the
usual way, while that of the second stator is fed from the rotor winding of the first, as shown
in Fig. 8.28.
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When two motors are operated in tandem, they may be running in the same direction, or the
phase rotation of one motor may be reversed, thus tending to make it in reverse direction. In both
the cases, the set will run after it is started, but in the later case, no starting torque is developed
so that this connection is rarely used.
If P1 and P2 be the number poles of both the machines, then the synchronous speed of the set is
depending on total number of poles P1 + P2 in the first case and P1 − P2 in the second. If the
number of poles of the two motors is not equal; four speeds possible: two for tandem operation
and one for each motor separately.
Let ‘P1’ be the poles of main motor and ‘P2’ be the poles of the auxiliary motor.
If ‘S’ is the slip, the actual rotating speed of the motor is:
But, for the induction motor, the frequency of the rotor current is ‘S’ times of supply frequency.
Let, fr1 be the frequency of the rotor current of the main motor and the frequency of the rotor
current of the auxiliary motor is fr2 then:
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Equation (8.28) relation shows that the speed of the set is that of a single machine having the
number of poles equal to the sum of the numbers of poles of the two machines. Hence, the set
can give four different speeds. If it is required to have the speeds above the normal, the torque of
the second motor is reversed by simply changing two of the leads of the second. This is known
as differential cascading.
Example 8.25: A six-pole and 50-Hz slip ring induction motor with a rotor resistance per phase
of 0.2 Ω and a stand-still reactance of 1.0 Ω per phase runs at 960 rpm at full load. Calculate the
resistance to be inserted in the rotor circuit to reduce the speed to 800 rpm, if the torque remains
unaltered.
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Solution:
Given data:
P=6
F = 50 Hz
R/ph = 0.2 Ω
N1 = 960 rpm
N2 = 800 rpm.
Synchronous speed
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Rɛxt = R1 – R
= 2 – 0.4 = 1.6 Ω.
Example 8.26: The rotor resistance and the reactance at stand-still condition of a 3-φ, six-pole,
and 440-V induction motor are. 0.2 Ω and 1.0 Ω, respectively, per phase. Calculate the starting
current, and when the speed is 960 rpm, the frequency of the supply is 50 Hz.
Solution:
Synchronous speed
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Example 8.28: The open circuit voltage across the slip rings of a 100-HP induction motor is
280 volts at standstill. What resistance in rotor circuit will reduce its full-load speed by 20%. The
full-load slip is 3% with no additional rotor resistance. Assume rotor to be star-connected. And
full-load sip S1 = 0.03.
Solution:
= 73,550 W.
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S ∝ rotor resistance
Example 8.29: A eight-pole, 50-Hz, and 3-φ induction motor is running at 4% slip when
delivering full-load torque. It has a standstill rotor resistance of 0.3 Ω and a reactance of 0.8 Ω
per phase. Calculate the speed of the motor if an additional resistance of 0.3 Ω per phase is
inserted in the rotor circuit. The full-load torque remains constant.
Solution:
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Example 8.31: The rotor of a six-pole, 50-Hz, and 3-φ induction motor has a resistance of 0.3
Ω per phase and sums at 960 rpm. If the load torque remains unchanged, calculate the additional
rotor resistance that will reduce the speed by 20%.
Solution:
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Example 8.32: A cascade it consists of two motors A and B with four and six poles,
respectively. The motor is connected to a 50-Hz supply. Find (i) the speed of the set and (ii) the
electric power transferred to motor B when the input to motor A is 30-kW neglect losses.
Solution:
∴ The outputs of the two motors are proportional to the number of their poles.
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RATING OF MOTOR
The selection of motor for particular drive application based on the size of motor depends upon
the following two factors:
The size of motor and its rating are mainly dependent upon the raise in temperature. The
temperature raise in turn depends upon the type of insulation used.
The various losses takes place in any motor will be converted into heat. The heat thus produced
will increase the temperature of various parts of the motor. The increase in temperature is mainly
dependent on the following two factors:
In fact, the continuous rating of a machine is that rating for which the final temperature raise is
equal to or just below the permissible value of the temperature raise for the insulating material
used in protection of motor windings. When the machine is overloaded for such a long time that
its final temperature raise exceeds the permissible limit, it is likely to be damaged. Sometimes, it
will results immediate breakdown of insulating material which will cause a sudden short circuit
in the motor, which may also lead to a fire. Since temperature raise is one of the chief features in
fixing the size of motor. The temperature raise will be high in the beginning and will decrease
gradually with the passage of time and finally the temperature of the motor attains a steady-state
value. At this point, the heat produced and dissipated will be equal.
The above circumstances make the heating calculations very complex and practically
impossible unless certain assumptions are made as:
Let P is the electrical power converted into heat (W or J/sec), M is the mass of active parts of
motor (kg), S is the specific heat of material (J/kg/°C), O is the temperature raise above the
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cooling medium or ambient temperature (°C), A is the surface area of cooling, (m2), θf is the final
temperature raise with constant load (°C), and λ is the coefficient of cooling or the rate of heat
dissipation (W/m2/°C raise).
Now, let us assume that the machine attains a temperature raise of θ°C above ambient
temperature after ‘t’ seconds of switching on the machine and further raise of temperature by
dθ in very small time ‘dt’ seconds.
The rate at which the loss takes place or the heat is absorbed by the motor
But, the rate at which the electrical power converted into heat = the rate at which the heat is
absorbed + the rate at which the heat dissipated by the motor.
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When ‘t’ is infinity, ‘θ’ approaches to its final steady-state temperature ‘θf’. So, by
substitutingt = ∞ and θ = θf in Equation (8.33), we get:
The above relation is the equation of temperature rise with time. The temperature raise time
curve or heating curve is exponential in nature as shown in Fig. 8.29.
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At t = Th, θ = θf [1 − e−1]
∴ θ = 0.632 θf.
The heating time constant is the time taken by the machine to attain 63.2% of its final steady
temperature raise (θf).
The heating time constant of the conventional electrical machines is usually within the range
of 0.5–3 for 4 h.
Cooling of motor
Let us assume, if the supply to the motor is switched off, after attaining the final steady
temperature raise of ‘θf”, the motor starts cooling. When the machine is switched off, no heat is
produced, therefore:
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The value of K1 is obtained by using the initial conditions, when t = 0 and θ = θf, we get:
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The above relation is the equation of cooling of motor. The cooling curve is exponentially
decaying in nature as shown in Fig. 8.30.
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We have θ = θf (e−1)
∴ θ = 0.368θf.
The cooling time constant is defined as the time required cooling the machine down to 36.8%
of the initial temperature raise above the ambient temperature.
The heating and cooling curves follows an exponential law. Heating time constant and cooling
time constant may be different for the same machine and also the cooling time constant of
rotating machine is larger than its heating time constant, due to poorer ventilation conditions
when the machine cools.
Figure 8.31 (a) and (b) shows the heating and cooling curves of a motor for short-time and
intermittent loads.
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Fig. 8.31 (a) Short-time load motor (b) intermittent-time load motor
Example 8.33: An induction motor has a final steady-state temperature raise of 50°C when
running at its rated output. Calculate its half-hour rating for the same temperature raise if the
copper losses at the rated output are 1.5 times its constant losses. The heating time constant is 60
min.
Solution:
Given data:
∴ θ ∝ Wloss.
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The temperature raise after 30 min of operation should not exceed θf = 50°C.
1.5x2 = 6.3537
x2 = 4.235
∴ x = 2.058.
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∴ Hence, the half-hour rating of machine is 2.058 times its continuous rating.
Example 8.34: A 10-kW motor has a heating time constant and cooling time constant of 45 and
70 min, respectively. The final temperature attained is 60°C. Find the temperature of motor after
45 min full-load run and then switched of for 30 min.
Solution:
Given data:
τh = 45min
τc = 70 min
θf = 60°C
t = 45 min.
We know that:
When the motor is switched off for 30 min, the temperature is:
Example 8.35: The heating time constant of a 80-kW motor is 60 min. The temperature raise is
65°C when runs continuously on full load. Find the half-hour rating of motor for the same
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temperature raise. Assume that the losses are proportional to the square of the load and the motor
cools to ambient temperature between each load cycle.
Solution:
Let θ is the temperature raise at x kW and θf is the temperature raise at 80 kW. We know that the
losses ∝ load2 and temperature raise ∝ losses
Example 8.36: The heating time constant and final steady temperature of a motor on
continuous running is 60 min and 40°C. Find out the temperature (i) after 25 min at this load, (ii)
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after 45 min at this load, (iii) if the temperature raise at half-hour rating is 40°C, find the
maximum steady temperature, (iv) what will be the time required to increase the temperature
from 25°C to 40°C at one-and-half-hour rating.
Solution:
Given data:
θf = 40°C
t = 25 min
τh = 60 min.
1. We know that:
3. If the temperature raise is 40°C after half an hour, the maximum temperature:
4. Given, time taken to attain temperature raise of 40°C is one-and-half hour. Then, the maximum
temperature θf is 101.65°C.
Let ‘t’ be the taken in min needed to raise the temperature from 25°C to 40°C.
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Thus, the temperature will increase from 25°C to 40°C in time, t1 = 90 − 58.84
= 31.15 min.
Example 8.37: The heating time constant of a motor is 90 min with 1-hr rating as 200 W. The
maximum efficiency of motor occurs at 80% of full load. Determine the continuous rating of the
motor.
Solution:
Given that, the maximum efficiency occurs at 80% of full load. Therefore, at 80% of full load,
the copper loss is equal to the iron loss.
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TYPES OF LOADS
Figure 8.32 shows the typical duty cycle or load cycle which will give the variation of load
with time and also the type of load.
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The loads on the motor operate for a long time under the same conditions.
The load on the motor operates repetitively for a longer duration but varies continuously over a
period.
Pulsating loads
The load on the motor which can be viewed as constant torque superimposed by pulsations.
Ex: tile looms, reciprocating pumps, certain type of loads with crankshaft, frame saws, etc.
Impact loads
The load on the motor having regular and repetitive load peaks or pulses, i.e., load increases to a
maximum level suddenly.
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The load on the motor occurs periodically in identically duty cycle, each duty cycle having a
period of application of load and rest.
Short-time loads
The load on the motor occurs periodically remains constant for short time and then remains idle
or off for longer time.
Ex: servomotors, motor–generator sets, used for charging batteries, drilling machines, etc.
There are three basic classifications of duties of an electric motor. They are:
Continuous duty is the duty when the on-period is so long that the motor attains a steady-state
temperature raise. The motor so selected should be able to withstand momentary overload
capacity. This type of motors will have high efficiency because they will be operating almost at
its full load and also have good power factor.
There are mainly two types of continuous duty cycle. They are:
In continuous duty with constant load cycle, the load torque remains constant for a sufficiently
longer period. The variation of torque against time for continuous duty is shown in Fig. 8.33.
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Ex: Conveyors, compressors, fan, etc. in which continuous duty at constant load occurs.
In continuous duty with variable load cycle, the load on the motor is not constant, but it has
several phases in one cycle. The variation of load against time for variable load cycle is shown
in Fig. 8.34. The selection of motor for this type of duty involves thermal calculation, which is a
difficult task. The motors operating for such type of duties will have poor efficiency and also
poor power factor.
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The selection of motor for this type of duty may be based on average power or average current
method.
Short-time duty
In this type of duty, the load occurs on the motor during a small interval and the remains idle for
long time to re-establish the equality of temperature with the cooling medium. The variation of
the load against time for short-time duty is shown in Fig. 8.35.
Usually, such type of short-time duty occurs in bridges, lock gates, and some other household
appliances such as mixies.
Intermittent duty
The duty in which load on the motor varies periodically in a sequence of identical cycles shown
in Fig. 8.36, in which motor is loaded for sometimes ‘ton’ and shut off for a period of ‘toff’.
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Motor heats during ‘on’ period ‘ton’ and cools down during ‘off’ period ‘toff’. The ratio of ‘ton’
to (ton + toff) is known as duty ratio.
Maximum temperature attained with intermittent loading can be obtained by using the
temperature raise and cooling equations of motor, and is given as follows.
Let θh, θn1, θh2, …θhn–1 be the temperature raise and be the fall in temperature
for ‘n’ times intermittency.
Let t1 be the duration of heating in second, t2 be the duration of cooling in second, τn be the
heating time constant in second, τC be the cooling time constant in second, and θf be the
maximum permissible temperature raise of motor.
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As n → ∞ both enx and eny will be zero, as x and y are negative. If ‘θm’ be the maximum
temperature with intermittent loading then:
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RATING OF MOTOR
In cases, where the load fluctuates over a given cycle, as in rolling mills, etc., the raise of motor
is determined accurately by finding the heating and cooling curves of motor, when working on
given cycle. The various methods for determining the rating of motor for continuous duty and
variable load are:
In this method, the actual current may be replaced by an equivalent current method (Ieq), which
produces the same losses in the motor as the actual current.
where I1, I2, I3, …, In be the load currents within short intervals of t1, t2, …, tn over a period of
time ‘T ’ seconds (Fig. 8.37).
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In this method, if the load cycle is given in HP or kW verses time, then the motor rating can be
directly found as follows (Fig. 8.38).
Load changes uniformly; load cycle varies as shown in Fig. 8.39. The motor rating is given by:
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Note: If the power, load, or torque changes uniformly, then ∫ P2dt has to be taken for that period.
If the load curve consisting of negative power, i.e., power returned to the source, as shown
inFig. 8.40, the motor rating can be directly determined as follows.
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This method is used to compute the motor heating rating effect, for short time and intermittent
loads where the torque is varying as shown in Fig. 8.41.
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In Fig. 8.41, T1, T2, T3, T4, and T5 be the load torques develop during the periods t1, t2, t3, t4,
and t5 seconds now the equivalent torque can be calculated by considering time for one complete
cycle and RMS value of load torques at different times.
20 kW for 10 sec,
10 kW for 15 sec,
30 kW for 5 sec,
50 kW for 20 sec,
40 kW for 10 sec,
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Draw the load diagram and find the size of the motor required.
Solution:
The rating of the motor = RMS value of the load (Fig. P.8.8).
Example 8.39: The load cycle of a motor in driving some equipment is as follows.
0−3 min 40 kW
7−12 min 30 kW
12−15 min 20 kW
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The load repeated indefinitely. Draw the load cycle and suggest suitable continuous rating of the
motor.
Solution:
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Solution:
Draw the load diagram neatly for one cycle. Find the size of continuously rated motor for the
above duty. The load cycle is repeated indefinitely.
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Solution:
P1 = 100 kW, t1 = 5 s
P2 = 200 kW, t2 = 10 s
P3 = 50 kW, t3 = 3 s
P4 = -50 kW, t4 = 2 s
P5 = 0 kW.
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Alternative method:
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LOAD EQUALIZATION
The load fluctuations take place in many of the industrial drives such as rolling mills, planning
machines presses, and reciprocating pumps, where the load on the motor varies widely within a
span of few seconds. The sudden and peak load requires very large current from the supply
results high voltage drop in the system or alternately would require very large size of cables. It is
very essential to smooth out fluctuating load is known as ‘load equalization’. The load
equalization involves the storage of energy during the off-peak period and gives out during the
peak load period.
Function of flywheel
To operate the flywheel efficiently, the driving motor should have drooping speed
characteristics. The various models of flywheel are shown in Fig. 8.42 (a) and (b). During the
lightload, the acceleration of the flywheel is increased and it stores the kinetic energy and at the
time of peak load, the flywheel slows down and the stored kinetic energy is given out to the load;
so that, the demand of the load from the motor or supply is reduced.
It is necessary that the motor used for load equalization should have drooping characteristics.
The flywheel is not used with motors having constant speed for example synchronous motor.
The torque developed by the motor and the load torque required as well as the speed variations
with time are shown in Fig. 8.43.
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Fig. 8.43 Motor torque, load torque, and speed variations against time
Flywheel calculations
Let us consider a flywheel is attached to a variable speed motor to achieve load equalization.
Let TL be the load torque (assumed constant during particular interval) in N-m. TM is the motor
torque in N-m, TF is the flywheel torque in N-m, T0 is the no-load torque in N-m, ω0 is the motor
speed on no-load in rad/sec, ω is the motor speed at any instant in rad/sec, and Jis the moment of
inertia of flywheel in kg-m2.
Case (i): Let us consider that the load on the motor is increasing; during this period, the flywheel
will decelerate and impart its stored kinetic energy to the load. The torque required to be
supplied by the motor:
TM = TL − TF. (8.50)
The kinetic energy given by the flywheel when its speed reduced from ω0 to ω is:
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KE = JωS. (8.52)
The power given out by the flywheel = the rate of change of the energy given up by the flywheel.
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If the slip, i.e., drop in speed limited to 10%, then the slip is proportional to the motor torque:
i.e., S ∝ TM
S = KTM.
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The value of ‘C’ can be determined by using the initial conditions. Substituting Equation
(8.58) in Equation (8.57):
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Case (ii): Now consider that the load is totally removed or decreasing, the motor starts
accelerating and so the KE is stored by the flywheel.
Hence, the flywheel regains its normal speed; therefore, the slip decreases, i.e., is negative.
But,
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The value of constant can be obtained by substituting the initial conditions in Equation (8.64).
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Example 8.42: A 15-HP, three-phase, eight-pole, and 50-Hz induction motor provided with a
flywheel has to supply a load torque of 600 N-m for 10 s followed by a no-load during which the
flywheel regains the full speed. The full-load slip of the motor is 4% and the torque−speed curve
may be assumed linear over the working range. Find the moment of inertia of the flywheel if the
motor torque is not to exceed twice the full-load torque.
Solution:
Given data:
P0= 15 HP
No.of poles P = 8
f = 50 Hz
Sf = 0.04
t = 10 sec
TL = 600 N-m
TM = 2. TFL
T0 = 0.
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UNIT 2
Electric Heating
2.1 INTRODUCTION
Heat plays a major role in everyday life. All heating requirements in domestic purposes such as
cooking, room heater, immersion water heaters, and electric toasters and also in industrial
purposes such as welding, melting of metals, tempering, hardening, and drying can be met easily
by electric heating, over the other forms of conventional heating. Heat and electricity are
interchangeable. Heat also can be produced by passing the current through material to be heated.
This is called electric heating; there are various methods of heating a material but electric heating
is considered far superior compared to the heat produced by coal, oil, and natural gas.
The various advantages of electric heating over other the types of heating are:
(i) Economical
Electric heating equipment is cheaper; they do not require much skilled persons; therefore,
maintenance cost is less.
(ii) Cleanliness
Since dust and ash are completely eliminated in the electric heating, it keeps surroundings
cleanly.
As there are no flue gases in the electric heating, atmosphere around is pollution free; no need of
providing space for their exit.
In this heating, temperature can be controlled and regulated accurately either manually or
automatically.
With electric heating, the substance can be heated uniformly, throughout whether it may be
conducting or non-conducting material.
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In non-electric heating, only 40–60% of heat is utilized but in electric heating 75–100% of heat
can be successfully utilized. So, overall efficiency of electric heating is very high.
Protection against over current and over heating can be provided by using fast control devices.
The heat developed in the non-conducting materials such as wood and porcelain is possible only
through the electric heating.
No irritating noise is produced with electric heating and also radiating losses are low.
High temperature can be obtained by the electric heating except the ability of the material to
withstand the heat.
(xii) Safety
The transmission of the heat energy from one body to another because of the temperature
gradient takes place by any of the following methods:
1. conduction,
2. convection, or
3. radiation.
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Conduction
In this mode, the heat transfers from one part of substance to another part without the movement
in the molecules of substance. The rate of the conduction of heat along the substance depends
upon the temperature gradient.
The amount of heat passed through a cubic body with two parallel faces with thickness ‘t’
meters, having the cross-sectional area of ‘A’ square meters and the temperature of its two
faces T1°C and T2°C, during ‘T’ hours is given by:
where k is the coefficient of the thermal conductivity for the material and it is measured in
MJ/m3/°C/hr.
Convection
In this mode, the heat transfer takes place from one part to another part of substance or fluid due
to the actual motion of the molecules. The rate of conduction of heat depends mainly on the
difference in the fluid density at different temperatures.
The mount of heat absorbed by the water from heater through convection depends mainly
upon the temperature of heating element and also depends partly on the position of the heater.
where ‘a’ and ‘b’ are the constants whose values are depend upon the heating surface
and T1and T2 are the temperatures of heating element and fluid in °C, respectively.
Radiation
In this mode, the heat transfers from source to the substance to be heated without heating the
medium in between. It is dependent on surface.
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where T1 is the temperature of the source in kelvin, T2 is the temperature of the substance to be
heated in kelvin, and k is the radiant efficiency:
From Equation (4.1), the radiant heat is proportional to the difference of fourth power of the
temperature, so it is very efficient heating at high temperature.
The materials used for heating element should have the following properties:
o High-specific resistance
Material should have high-specific resistance so that small length of wire may be
required to provide given amount of heat.
o High-melting point
It should have high-melting point so that it can withstand for high temperature, a small
increase in temperature will not destroy the element.
o Low temperature coefficient of resistance
From Equation (4.1), the radiant heat is proportional to fourth powers of the
temperatures, it is very efficient heating at high temperature.
For accurate temperature control, the variation of resistance with the operating
temperature should be very low. This can be obtained only if the material has low
temperature coefficient of resistance
o Free from oxidation
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The element material should not be oxidized when it is subjected to high temperatures;
otherwise the formation of oxidized layers will shorten its life.
o High-mechanical strength
The material should have high-mechanical strength and should withstand for
mechanical vibrations.
o Non-corrosive
The element should not corrode when exposed to atmosphere or any other chemical
fumes.
o Economical
The selection of a material for heating element is depending upon the service conditions such as
maximum operating temperature and the amount of charge to be heated, but no single element
will not satisfy all the requirements of the heating elements. The materials normally used as
heating elements are either alloys of nickel–chromium, nickel–chromium–iron, nickel–
chromium–aluminum, or nickel–copper.
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The properties of some commercial heating element materials commonly employed for low
and medium temperatures up to 1,200°C are Ni–Cr and an alloy of Ni–Cr–Fe composition of
these alloys are given in Table 4.1. For operating temperatures above 1,200°C, the heating
elements are made up of silicon carbide, molebdenum, tungsten, and graphite. (Ni–Cu alloy is
frequently used for heating elements operating at low temperatures. Its most important property
is that it has virtually zero resistance and temperature coefficient.)
Heating element may fail due to any one of the following reasons.
Formation of hotspots
Hotspots are the points on the heating element generally at a higher temperature than the main
body. The main reasons of the formation of hotspot in the heating element are the high rate of the
local oxidation causing reduction in the area of cross-section of the element leading to the
increase in the resistance at that spot. It gives rise to the damage of heating element due to the
generation of more heat at spot. Another reason is the shielding of element by supports, etc.,
which reduces the local heat loss by radiation and hence the temperature of the shielded portion
of the element will increase. So that the minimum number of supports should be used without
producing the distortion of the element. The sagging and wrapping of the material arise due to
the insufficient support for the element (or) selection of wrong fuse material may lead to the
uneven spacing of sections thereby developing the hotspots on the element.
A continuous oxide layer is formed on the surface of the element at very high temperatures such
layer is so strong that it prevents further oxidation of the inner metal of the element. If the
element is used quite often, the oxide layer is subjected to thermal stresses; thus, the layer cracks
and flakes off, thereby exposing fresh metal to oxidation. Thus, the local oxidation of the metal
increases producing the hotspots.
In general, most of the alloys containing iron tend to form large brittle grains at high
temperatures. When cold, the elements are very brittle and liable to rupture easily on the slightest
handling and jerks.
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The heating elements may be subjected to dry corrosion produced by their contamination with
the gases of the controlled atmosphere prevailing in annealing furnaces.
By knowing the voltage and electrical energy input, the design of the heating element for an
electric furnace is required to determine the size and length of the heating element. The wire
employed may be circular or rectangular like a ribbon. The ribbon-type heating element permits
the use of higher wattage per unit area compared to the circular-type element.
Initially when the heating element is connected to the supply, the temperature goes on increasing
and finally reaches high temperature.
Let V be the supply voltage of the system and R be the resistance of the element, then electric
power input, .
If ρ is the resistivity of the element, l is the length, ‘a’ is the area, and d is the diameter of the
element, then:
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where P is the electrical power input per phase (watt), V is the operating voltage per phase
(volts), R is the resistance of the element (Ω), l is the length of the element (m), a is the area of
cross-section (m2), d is the diameter of the element (m), and ρ is the specific resistance (Ω-m)
where T1 is the absolute temperature of the element (K), T2 is the absolute temperature of the
charge (K), e is the emissivity, and k is the radiant efficiency.
S = πdl.
= Hπdl.
P = H × πdl.
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By solving Equations (4.3) and (4.4), the length and diameter of the wire can be determined.
Ribbon-type element
Let ‘w’ be the width and ‘t’ be the thickness of the ribbon-type heating element.
= H × 2 lw.
P = H × 2 lw
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By solving Equations (4.7) and (4.8), the length and width of the heating element can be
determined.
Example 4.1: A 4.5-kW, 200-V, and 1-φ resistance oven is to have nichrome wire heating
elements. If the wire temperature is to be 1,000°C and that of the charge 500°C. Estimate the
diameter and length of the wire. The resistivy of the nichrome alloy is 42.5 μΩ-m. Assume the
radiating efficiency and the emissivity of the element as 1.0 and 0.9, respectively.
Solution:
Given data
= 1,273 K.
= 773 K.
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d3 = 0.7466
d = 0.907 mm.
l = 135.14 m.
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Example 4.2: A20-kW, 230-V, and single-phase resistance oven employs nickel—chrome strip
25-mm thick is used, for its heating elements. If the wire temperature is not to exceed 1,200°C
and the temperature of the charge is to be 700°C. Calculate the width and length of the wire.
Assume the radiating efficiency as 0.6 and emissivity as 0.9. Determine also the temperature of
the wire when the charge is cold.
Solution:
Let ‘w’ be the width in meters, t be the thickness in meters, and ‘l’ be the length also in
meters. Then:
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The total amount of the heat dissipation × the surface area of strip = power supplied
P=H×S
l = 7.435 m.
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Example 4.3 Determine the diameter and length of the wire, if a 17-kW, 220-V, and 1-
φresistance oven employs nickel-chrome wire for its heating elements. The temperature is not
exceeding to 1,100°C and the temperature of the charge is to be 500°C. Assume the radiating
efficiency as 0.5 and the emissivity as 0.9, respectively.
Solution:
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l = 21.198 m.
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Heat can be generated by passing the current through a resistance or induced currents. The
initiation of an arc between two electrodes also develops heat. The bombardment by some heat
energy particles such as α, γ, β, and x-rays or accelerating ion can produce heat on a surface.
In this method, the electric current is made to pass through the charge (or) substance to be
heated. This principle of heating is employed in electrode boiler.
In this method, the electric current is made to pass through a wire or high-resistance heating
element, the heat so developed is transferred to charge from the heating element by convection or
radiation. This method of heating is employed in immersion water heaters.
In this method of heating, the heat energy is transferred from source (incandescent lamp) and
focused upon the body to be heated up in the form of electromagnetic radiations. Normally, this
method is used for drying clothes in the textile industry and to dry the wet paints on an object.
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In this method, by striking the arc between the charge and the electrode or electrodes, the heat so
developed is directly conducted and taken by the charge. The furnace operating on this principle
is known as direct arc furnaces. The main application of this type of heating is production of
steel.
In this method, arc is established between the two electrodes, the heat so developed is transferred
to the charge (or) substance by radiation. The furnaces operating on this principle are known as
indirect arc furnaces. This method is generally used in the melting of non-ferrous metals.
In this method of heating, the currents are induced by electromagnetic action in the charge to be
heated. These induced currents are used to melt the charge in induction furnace.
In this method, eddy currents are induced in the heating element by electromagnetic action.
Thus, the developed heat in the heating element is transferred to the body (or) charge to be
heated by radiation (or) convection. This principle of heating is employed in induction furnaces
used for the heat treatment of metals.
Dielectric heating
In this method of electric heating, the heat developed in a non-metallic material due to inter-
atomic friction, known as dielectric loss. This principle of heating usually employed for
preheating of plastic performs, baking foundry cores, etc.
RESISTANCE HEATING
When the electric current is made to pass through a high-resistive body (or) substance, a power
loss takes place in it, which results in the form of heat energy, i.e., resistance heating is passed
upon the I2R effect. This method of heating has wide applications such as drying, baking of
potteries, commercial and domestic cooking, and the heat treatment of metals such as annealing
and hardening. In oven where wire resistances are employed for heating, temperature up to about
1,000°C can be obtained.
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In this method, electrodes are immersed in a material or charge to be heated. The charge may be
in the form of powder, pieces, or liquid. The electrodes are connected to AC or DC supply as
shown in Fig. 4.1(a). In case of DC or 1-φ AC, two electrodes are immersed and three electrodes
are immersed in the charge and connected to supply in case of availability of 3-φsupply. When
metal pieces are to be heated, the powder of lightly resistive is sprinkled over the surface of the
charge (or) pieces to avoid direct short circuit. The current flows through the charge and heat is
produced in the charge itself. So, this method has high efficiency. As the current in this case is
not variable, so that automatic temperature control is not possible. This method of heating is
employed in salt bath furnace and electrode boiler for heating water.
This type of furnace consists of a bath and containing some salt such as molten sodium chloride
and two electrodes immersed in it.
Such salt have a fusing point of about 1,000–1,500°C depending upon the type of salt used.
When the current is passed between the electrodes immersed in the salt, heat is developed and
the temperature of the salt bath may be increased. Such an arrangement is known as a salt bath
furnace.
In this bath, the material or job to be heated is dipped. The electrodes should be carefully
immersed in the bath in such a way that the current flows through the salt and not through the job
being heated. As DC will cause electrolysis so, low-voltage AC up to 20 V and current up to
3,000 A is adopted depending upon the type of furnaces.
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The resistance of the salt decreases with increase in the temperature of the salt, therefore, in
order to maintain the constant power input, the voltage can be controlled by providing a tap
changing transformer. The control of power input is also affected by varying the depth of
immersion and the distance between the electrodes.
It is used to heat the water by immersing three electrodes in a tank as shown in Fig. 4.2. This is
based on the principle that when the electric current passed through the water produces heat due
to the resistance offered by it. For DC supply, it results in a lot of evolution of H2 at negative
electrode and O2 at positive electrode. Whereas AC supply hardly results in any evolution of gas,
but heats the water. Electrode boiler tank is earthed solidly and connected to the ground. A
circuit breaker is usually incorporated to make and break all poles simultaneously and an over
current protective device is provided in each conductor feeding an electrode.
In the indirect resistance heating method, high current is passed through the heating element. In
case of industrial heating, some times the heating element is placed in a cylinder which is
surrounded by the charge placed in a jacket is known as heating chamber is shown inFig. 4.3.
The heat is proportional to power loss produced in the heating element is delivered to the charge
by one or more of the modes of the transfer of heat viz. conduction, convection, and radiation.
This arrangement provides uniform temperature and automatic temperature control. Generally,
this method of heating is used in immersion water heaters, room heaters, and the resistance ovens
used in domestic and commercial cooling and salt bath furnace.
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Resistance ovens
According to the operating temperatures, the resistance furnaces may be classified into various
types. Low-temperature heating chamber with the provision for ventilation is called as oven. For
drying varnish coating, the hardening of synthetic materials, and commercialand domestic
heating, etc., the resistance ovens are employed. The operating temperature of medium
temperature furnaces is between 300°C and 1,050°C. These are employed for the melting of non-
ferrous metals, stove (annealing), etc. Furnaces operating at temperature between 1,050°C and
1,350°C are known as high-temperature furnaces. These furnaces are employed for hardening
applications. A simple resistance oven is shown in Fig. 4.4.
Resistance oven consists of a heating chamber in which heating elements are placed as shown
in the Fig. 4.4. The inner surface of the heating chamber is made to suit the character of the
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charge and the type of furnace or oven. The type of insulation used for heating chamber is
determined by the maximum temperature of the heating chamber.
The heat produced in the heating elements, not only raises the temperature of the charge to
desired value, but also used to overcome the losses occurring due to:
1. The heat required to raise the temperature of oven to desired value can be calculated by knowing the
mass of refractory material (M), its specific heat (S), and raise of temperature (∆T) and is given by:
Hoven = MS∆TJ.
In case the oven is continuously used, this loss becomes negligible.
2. Heat used in rising the temperature of containers (or) carriers can be calculated exactly the same way as
for oven (or) furnaces.
3. Heat loss conducted through the walls of the container can be calculated by knowing the area of the
container (A) in square meters, the thickness of the walls (t) in meters, the inside and out side
temperatures of the container T1 and T2 in °C, respectively, and the thermal conductivity of the container
Actually, there is no specific formula for the determination of loss occurring due to the opening
of door for the periodic inspection of the charge so that this loss may be approximately taken as
0.58–1.15 MJ/m2 of the door area, if the door is opened for a period of 20–30 sec.
The efficiency of the oven is defined as the ratio of the heat required to raise the temperature of
the charge to the desired value to the heat required to raise the charge and losses.
The efficiency of the resistance oven lies in between 60% and 80%.
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In this method of heating, the heat transfer takes place from the source to the body to be heated
through radiation, for low and medium temperature applications. Whereas in resistance ovens,
the heat transfers to the charge partly by convection and partly by radiation. In the radiant
heating, the heating element consists of tungsten filament lamps together with reflector and to
direct all the heat on the charge. Tungsten filament lamps are operating at 2,300°C instead of
3,000°C to give greater portion of infrared radiation and a longer life. The radiant heating is
mainly used for drying enamel or painted surfaces. The high concentration of the radiant energy
enables the heat to penetrate the coating of paint or enamel to a depth sufficient to dry it out
without wasting energy in the body of the workpiece.
The main advantage of the radiant heating is that the heat absorption remains approximately
constant whatever the charge temperature, whereas with the ordinary oven the heat absorption
falls off very considerably as the temperature of the charge raises. The lamp ratings used are
usually between 250 and 1,000 W and are operating at voltage of 115 V in order to ensure a
robust filament.
To control the temperature of a resistance heating at certain selected points in a furnace or oven,
as per certain limits, such control may be required in order to hold the temperature constant or to
vary it in accordance with a pre-determined cycle and it can be carried out by hand or
automatically.
In resistance furnaces, the heat developed depends upon I2 R t (or) t. Therefore, the
temperature of the furnaces can be controlled either by:
Voltage across the furnace can be controlled by changing the transformer tapings. Auto
transformer or induction regulator can also be used for variable voltage supply. In addition to the
above, voltage can be controlled by using a series resistance so that some voltage dropped across
this series resistor. But this method is not economical as the power is continuously wasted in
controlling the resistance. Hence, this method is limited to small furnaces. An on-off switch can
be employed to control the temperature. The time for which the oven is connected to the supply
and the time for which it is disconnected from supply will determine the temperature.
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If ‘R’ be the resistance of one element and ‘n’ be the number of elements are connected in
parallel, so that the equivalent resistance is R/n.
i.e., if the number of elements connected in parallel increases, the heat developed in the furnace
also increased. This method does not provide uniform heating unless elements not in use are well
distributed.
If the available supply is single phase, the heating elements can be connected in series for the
low temperatures and connected in parallel for the high temperature by means of a series—
parallel switch.
In case, if the available supply is three phase, the heating elements can be connected in star for
the low temperature and in delta for the high temperatures by using star—delta switch.
Example 4.5: Six resistances, each of 60 ohms, are used in a resistance; how much power is
drawn for the following connections.
1. Supply is 400 V, AC, and single phase and the connections are:
2. With the same three-phase supply, they are connected in delta fashion.
3. Supply is 400 V and three-phase while the connection is a star combination of:
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4. If the supply is a 25% tapping with an auto transformer, calculate the output of the oven.
Solution:
1.
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ARC HEATING
If the high voltage is applied across an air gap, the air in the gap gets ionized under the influence
of electrostatic forces and becomes conducting medium, current flows in the form of a
continuous spark, known as arc. A very high voltage is required to establish an arc but very
small voltage is sufficient to maintain it, across the air gap. The high voltage required for striking
an arc can be obtained by using a step-up transformer fed from a variable AC supply.
Another method of striking the arc by using low voltage is by short circuiting the two
electrodes momentarily and with drawing them back. Electrodes made up of carbon or graphite
and are used in the arc furnaces when the temperature obtained is in the range of 3,000–3,500°C.
Normally used electrodes in the arc furnaces are carbon electrodes, graphite electrodes, and self-
baking electrodes. Usually the carbon and graphite electrodes are used and they can be selected
based on their electrical conductivity insolubility, chemical inertness, mechanical strength,
resistance to thermal shock, etc. The size of these electrodes may be 18–27 cm in diameter. The
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carbon electrodes are used with small furnaces for manufacturing of ferro-alloys, aluminum
phosphorous, etc. The self-baking electrodes are employed in the electrochemical furnaces and in
the electrolytic production of aluminum.
1. Resistivity: The graphite electrodes have low-specific resistance than the carbon electrodes, so the
graphite required half in size for the same current resulting in easy replacement.
2. Oxidation: Graphite begins to oxides at 600°C where as carbon at 400°C.
3. Electrode consumption: For steel-melting furnaces, the consumption of the carbon electrodes is about
4.5 kg of electrodes per tonne of steel and 2.3–to 6.8 kg electrodes per tonne of steel for the graphite
electrodes.
4. Cost: The graphite electrodes cost about twice as much per kg as the carbon electrodes. The choice of
electrodes depends chiefly on the question of the total cost. In general, if the processes requiring large
quantities of electrode, carbon is used but for other processes, the choice depends on local conditions.
When supply is given to the electrodes, two arcs are established and current passes through the
charge, as shown in Fig. 4.5. As the arc is in direct contact with the charge and heat is also
produced by current flowing through the charge itself, it is known as direct arc furnace.
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If the available supply is DC or 1-φ, AC, two electrodes are sufficient, if the supply is 3-φ,
AC, three electrodes are placed at three vertices of an equilateral triangle. The most important
feature of the direct arc furnace is that the current flows through the charge, the stirring action is
inherent due to the electromagnetic force setup by the current, such furnace is used for
manufacturing alloy steel and gives purer product.
It is very simple and easy to control the composition of the final product during refining
process operating the power factor of arc furnace is 0.8 lagging. For 1-ton furnace, the power
required is about 200 kW and the energy consumed is 1.0 MWh/ton.
In indirect arc furnace, the arc strikes between two electrodes by bringing momentarily in contact
and then with drawing them heat so developed, due to the striking of arc across air gap is
transferred to charge is purely by radiation. A simple indirect arc furnace is shown inFig. 4.6.
These furnaces are usually l-φ and hence their size is limited by the amount of one-phase load
which can be taken from one point. There is no inherent stirring action provided in this furnace,
as current does not flow through the charge and the furnace must be rocked mechanically. The
electrodes are projected through this chamber at each end along the horizontal axis. This furnace
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is also sometimes called as rocking arc furnace. The charge in this furnace is heated not only by
radiation from the arc between electrode tips but also by conduction from the heated refractory
during rocking action; so, the efficiency of such furnace is high. The arc is produced by bringing
electrodes into solid contact and then withdrawing them; power input to the furnace is regulated
by adjusting the arc length by moving the electrodes.
Even though it can be used in iron foundries where small quantities of iron are required
frequently, the main application of this furnace is the melting of non-ferrous metals.
Example 4.6: Calculate the time taken to melt 5 ton of steel in three-phase arc furnace having
the following data.
The overall efficiency is 50%. Find also the power factor and the electrical efficiency of the
furnace.
Solution:
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RA = 0.00625 Ω.
Drop due to the resistance of transformer, I Rt = 8,000 × 0.003 = 24 V and drop due to the
reactance, I Xt = 8,000 × 0.005 = 40 V.
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= 171.13 kcal.
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Example 4.7: A 100-kW Ajax Wyatt furnace works at a secondary voltage of 12 V at power
factor 0.6 when fully charged. If the reactance presented by the charge remains constant but the
resistance varies invert as the charge depth in the furnace; calculate the charge depth that
produces maximum heating effect when the furnace is fully charged.
Solution:
When the crucible is fully charged, then the secondary impedance is:
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Let ‘H’ be the height of the crucible when the crucible is full of charge and ‘Hm’ be the height of
the charge at which maximum heating effect is possible.
Given that the height of the charge is inversely proportional to the resistance. Let ‘Rm’ be the
maximum resistance at which maximum heating effect will be possible.
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HIGH-FREQUENCY HEATING
The main difference between the power-frequency and the high-frequency heating is that in the
conventional methods, the heat is transferred either by conduction convection or by radiation, but
in the high-frequency heating methods, the electromagnetic energy converted into the heat
energy in side the material.
The high-frequency heating can be applied to two types of materials. The heating of the
conducting materials, such as ferro-magnetic and non-ferro-magnetic, is known as induction
heating. The process of heating of the insulating materials is known as dielectric heating. The
heat transfer by the conventional method is very low of the order of 0.5–20 W/sq. cm. And, the
heat transfer rate by the high-frequency heating either by induction or by dielectric heating is as
much as 10,000 W/sq. cm. Thus, the high-frequency heating is most importance for tremendous
speed of production.
INDUCTION HEATING
The induction heating process makes use of the currents induced by the electromagnetic action in
the material to be heated. To develop sufficient amount of heat, the resistance of the material
must be low , which is possible only with the metals, and the voltage must
be higher, which can be obtained by employing higher flux and higher frequency. Therefore, the
magnetic materials can be heated than non-magnetic materials due to their high permeability.
In order to analyze the factors affecting induction heating, let us consider a circular disc to be
heated carrying a current of ‘I’ amps at a frequency ‘f’ Hz. As shown in Fig. 4.9.
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If the charge to be heated is non-magnetic, then the heat developed is due to eddy current loss,
whereas if it is magnetic material, there will be hysteresis loss in addition to eddy current loss.
Both hysteresis and eddy current loss are depended upon frequency, but at high-frequency
hysteresis, loss is very small as compared to eddy currents.
The depth of penetration of induced currents into the disc is given by:
where ρ is the specific resistance in Ω-cm, f is the frequency in Hz, and μ is the permeability of
the charge.
There are basically two types of induction furnaces and they are:
The operating principle of the core type furnace is the electromagnetic induction. This furnace is
operating just like a transformer. It is further classified as:
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The core type furnace is essentially a transformer in which the charge to be heated forms single-
turn secondary circuit and is magnetically coupled to the primary by an iron core as shown
in Fig. 4.10.
The furnace consists of a circular hearth in the form of a trough, which contains the charge to
be melted in the form of an annular ring. This type of furnace has the following characteristics:
o This metal ring is quite large in diameter and is magnetically interlinked with primary winding, which is
energized from an AC source. The magnetic coupling between primary and secondary is very weak; it
results in high leakage reactance and low pf. To overcome the increase in leakage reactance, the furnace
should be operated at low frequency of the order of 10 Hz.
o When there is no molten metal in the hearth, the secondary becomes open circuited thereby cutting of
secondary current. Hence, to start the furnace, the molten metal has to be taken in the hearth to keep the
secondary as short circuit.
o Furnace is operating at normal frequency, which causes turbulence and severe stirring action in the
molten metal to avoid this difficulty, it is also necessary to operate the furnace at low frequency.
o In order to obtain low-frequency supply, separate motor-generator set (or) frequency changer is to be
provided, which involves the extra cost.
o The crucible used for the charge is of odd shape and inconvenient from the metallurgical viewpoint.
o If current density exceeds about 500 A/cm2, it will produce high-electromagnetic forces in the molten
metal and hence adjacent molecules repel each other, as they are in the same direction. The repulsion
may cause the interruption of secondary circuit (formation of bubbles and voids); this effect is known
as pinch effect.
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The pinch effect is also dependent on frequency; at low frequency, this effect is negligible, and
so it is necessary to operate the furnace at low frequency.
It is an improvement over the direct core type furnace, to overcome some of the disadvantages
mentioned above. This type of furnace consists of a vertical core instead of horizontal core as
shown in Fig. 4.11. It is also known as Ajax–Wyatt induction furnace.
Vertical core avoids the pinch effect due to the weight of the charge in the main body of the
crucible. The leakage reactance is comparatively low and the power factor is high as the
magnetic coupling is high compared to direct core type.
There is a tendency of molten metal to accumulate at the bottom that keeps the secondary
completed for a vertical core type furnace as it consists of narrow V-shaped channel.
The inside layer of furnace is lined depending upon the type charge used. Clay lining is used
for yellow brass and an alloy of magnesia and alumina is used for red brass.
The top surface of the furnace is covered with insulating material, which can be removed for
admitting the charge. Necessary hydraulic arrangements are usually made for tilting the furnace
to take out the molten metal. Even though it is having complicated construction, it is operating at
power factor of the order of 0.8–0.83. This furnace is normally used for the melting and refining
of brass and non-ferrous metals.
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Advantages
This type of furnace is used for providing heat treatment to metal. A simple induction furnace
with the absence of core is shown in Fig. 4.12.
The secondary winding itself forms the walls of the container or furnace and an iron core links
both primary and secondary windings.
The heat produced in the secondary winding is transmitted to the charge by radiation. An oven
of this type is in direct competition with ordinary resistance oven.
It consists of a magnetic circuit AB is made up of a special alloy and is kept inside the
chamber of the furnace. This magnetic circuit loses its magnetic properties at certain temperature
and regains them again when it is cooled to the same temperature.
When the oven reaches to critical temperature, the reluctance of the magnetic circuit increases
many times and the inductive effect decreases thereby cutting off the supply heat. Thus, the
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temperature of the furnace can be effectively controlled. The magnetic circuit ‘AB’ is detachable
type that can be replaced by the other magnetic circuits having critical temperatures ranging
between 400°C and 1,000°C. The furnace operates at a pf of around 0.8.
The main advantage of such furnace is wide variation of temperature control is possible.
It is a simple furnace with the absence core is shown in Fig. 4.13. In this furnace, heat developed
in the charge due to eddy currents flowing through it.
The furnace consists of a refractory or ceramic crucible cylindrical in shape enclosed within a
coil that forms primary of the transformer. The furnace also contains a conducting or non-
conducting container that acts as secondary.
When primary coils are excited by an alternating source, the flux set up by these coils induce
the eddy currents in the charge. The direction of the resultant eddy current is in a direction
opposite to the current in the primary coil. These currents heat the charge to melting point and
they also set up electromagnetic forces that produce a stirring action to the charge.
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∴ The eddy currents developed in any magnetic circuit are given as:
We ∝ Bm2f2,
where Bm is the maximum flux density (tesla), f is the frequency in (Hz), and We is the eddy
current loss (watts).
In coreless furnace, the flux density will be low as there is no core. Hence, the primary supply
should have high frequency for compensating the low flux density.
If it is operating at high frequency, due to the skin effect, it results copper loss, thereby
increasing the temperature of the primary winding. This necessitates in artificial cooling. The
coil, therefore, is made of hollow copper tube through which cold water is circulated.
Minimum stray magnetic field is maintained when designing coreless furnace, otherwise there
will be considerable eddy current loss.
The selection of a suitable frequency of the primary current can be given by penetration
formula. According to this:
where ‘t’ is the thickness up to which current in the metal has penetrated, ‘ρ’ is the resistivity in
Ω-cm,'μ’ is the permeability of the material, and ‘f’ is the frequency in Hz.
For the efficient operation, the ratio of the diameter of the charge (d) to the depth of the
penetration of currents (t) should be more than ‘6’, therefore let us take:
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Following are the advantages of coreless furnace over the other furnaces:
o Ease of control.
o Oxidation is reduced, as the time taken to reach the melting temperature is less.
o The eddy currents in the charge itself results in automatic stirring.
o The cost is less for the erection and operation.
o It can be used for heating and melting.
o Any shape of crucible can be used.
o It is suitable for intermittent operation.
Example 4.8: Determine the amount of energy required to melt 2 ton of zinc in 1 hr, if it
operates at an efficiency of 70% specific heat of zinc is equals to 0.1. The latent heat of zinc =
26.67 kcal/kg, the melting point is 480°C, and the initial temperature is 25°C.
Solution:
H = w × S × (t2 - t1)
= 91,000 kcal.
=w×l
= 2,000 × 26.67
= 53,340 kcal.
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Example 4.9: A high-frequency induction furnace that takes 20 min to melt 1.9 kg of
aluminum, the input to the furnace being 3 kW, and the initial temperature is 25°C. Then,
determine the efficiency of the furnace.
Solution:
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DIELECTRIC HEATING
When non-metallic materials i.e., insulators such as wood, plastics, and china glass are subjected
to high-voltage alternating electric field, the atoms get stresses, and due to interatomic friction
caused by the repeated deformation and the rotation of atomic structure (polarization), heat is
produced. This is known as dielectric loss. This dielectric loss in insulators corresponds to
hysteresis loss in ferro-magnetic materials. This loss is due to the reversal of magnetism or
magneto molecular friction. These losses developed in a material that has to be heated.
An atom of any material is neutral, since the central positive charge is equals to the negative
charge. So that, the centers of positive and negative charges coincide as long as there is no
external field is applied, as shown in Fig. (a). When this atom is subjected to the influence of the
electric field, the positive charge of the nucleus is acted upon by some force in the direction of
negative charges in the opposite direction. Therefore, the effective centers of both positive and
negative charges no longer coincident as shown in Fig. (b). The electric charge of an atom
equivalent to Fig.(b) is shown in Fig. (c).
Fig. Polarization
This gives raise to an electric dipole moment equal to P = q d, where d is the distance between
the two centers and q is the charge on the nucleus.
Now, the atom is said to be polarized atom. If we apply alternating voltage across the
capacitor plate, we will get alternating electric field.
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Electric dipoles will also try to change their orientation according to the direction of the
impressed electric field. In doing so, some energy will be wasted as inter-atomic friction, which
is called dielectric loss.
As there is no perfect conductor, so there is no perfect insulator. All the dielectric materials
can be represented by a parallel combination of a leakage resistor ‘R’ and a capacitor ‘C’ as
shown in Fig. 4.15 (a) and (b).
If an AC voltage is applied across a piece of insulator, an electric current flows; total current
‘I’ supposed to be made up of two components IC and IR, where IC is the capacitive current
leading the applied voltage by 90° and IR is in phase with applied voltage as shown in Fig.
4.15(c).
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where ‘V' is the applied voltage in volts, ‘f’ is the supply frequency in Hz, ɛ0 is the absolute
permittivity of the medium = 8.854 × 10-12 F/m, ɛr is the relative permittivity of the medium = 1
for free space, A is the area of the plate or electrode (m2), d is the thickness of the dielectric
medium, and δ is the loss angle in radian.
Normally frequency used for dielectric heating is in the range of 1–40 MHz. The use of high
voltage is also limited due to the breakdown voltage of thin dielectric that is to be heated, under
normal conditions; the voltage gradient used is limited to 18 kV/cm.
Example 4.12: A piece of insulating material is to be heated by dielectric heating. The size of
the piece is 10 × 10 × 3 cm3. A frequency of 30 mega cycles is used and the power absorbed is
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400 W. Determine the voltage necessary for heating and the current that flows in the material.
The material has a permittivity of 5 and a power factor of 0.05.
Solution:
In the phasor diagram, δ is called the dielectric loss angle and φ is called the power factor angle.
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0. Conduction.
1. Convection.
2. Radiation.
What is an oven?
Oven is mean that a low-temperature heating chamber with provision for ventilation.
Define conduction.
The process of heat transfers from one part of a substance to another part without
movement in the molecules of substance. The rate of conduction of heat along the
substance depends upon temperature gradient.
Define convection.
The process of heat transfer takes place from one part to another part of a substance or
a fluid due to the actual motion of the molecules. The rate of conduction of the heat
depends mainly on the difference in the fluid density at different temperatures.
Define radiation.
The process of heat transfers from the source to the substance to be heated without
heating the medium in between the source and the substance.
What are the essentials requirements of heating elements?
The materials used for heating element should have:
0. High-specific resistance.
1. High-melting point.
2. High-mechanical strength.
3. Free from oxidation.
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What is the condition for the maximum power output of electric arc furnace?
The condition for the maximum power output of electric arc furnace is:
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UNIT 3
Electric Welding
INTRODUCTION
Welding is the process of joining two pieces of metal or non-metal together by heating them to
their melting point. Filler metal may or may not be used to join two pieces. The physical and
mechanical properties of a material to be welded such as melting temperature, density, thermal
conductivity, and tensile strength take an important role in welding. Depending upon how the
heat applied is created; we get different types of welding such as thermal welding, gas welding,
and electric welding. Here in this chapter, we will discuss only about the electric welding and
some introduction to other modern welding techniques. Welding is nowadays extensively used in
automobile industry, pipe-line fabrication in thermal power plants, machine repair work,
machine frames, etc.
o Welding is the most economical method to permanently join two metal parts.
o It provides design flexibility.
o Welding equipment is not so costly.
o It joins all the commercial metals.
o Both similar and dissimilar metals can be joined by welding.
o Portable welding equipment are available.
ELECTRIC WELDING
It is defined as the process of joining two metal pieces, in which the electrical energy is used to
generate heat at the point of welding in order to melt the joint.
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RESISTANCE WELDING
Resistance welding is the process of joining two metals together by the heat produced due to the
resistance offered to the flow of electric current at the junctions of two metals. The heat
produced by the resistance to the flow of current is given by:
H = I2Rt,
where I is the current through the electrodes, R is the contact resistance of the interface, and tis
the time for which current flows.
Here, the total resistance offered to the flow of current is made up of:
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In this process of welding, the heat developed at the contact area between the pieces to be welded
reduces the metal to plastic state or liquid state, then the pieces are pressed under high
mechanical pressure to complete the weld. The electrical voltage input to the welding varies in
between 4 and 12 V depending upon area, thickness, composition, etc. and usually power ranges
from about 60 to 180 W for each sq. mm of area.
Any desired combination of voltage and current can be obtained by means of a suitable
transformer in AC; hence, AC is found to be most suitable for the resistance welding. The
magnitude of current is controlled by changing the primary voltage of the welding transformer,
which can be done by using an auto-transformer or a tap-changing transformer. Automatic
arrangements are provided to switch off the supply after a pre-determined time from applying the
pressure, why because the duration of the current flow through the work is very important in the
resistance welding.
The electrical circuit diagram for the resistance welding is shown in Fig. 5.2. This method of
welding consists of a tap-changing transformer, a clamping device for holding the metal pieces,
and some sort of mechanical arrangement for forcing the pieces to form a complete weld.
Advantages
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However, the resistance welding has got some drawbacks and they are:
Applications
Depending upon the method of weld obtained and the type of electrodes used, the resistance
welding is classified as:
1. Spot welding.
2. Seam welding.
3. Projection welding.
4. Butt welding.
Spot welding means the joining of two metal sheets and fusing them together between copper
electrode tips at suitably spaced intervals by means of heavy electric current passed through the
electrodes as shown in Fig. 5.3.
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This type of joint formed by the spot welding provides mechanical strength and not air or
water tight, for such welding it is necessary to localize the welding current and to apply
sufficient pressure on the sheet to be welded. The electrodes are made up of copper or copper
alloy and are water cooled. The welding current varies widely depending upon the thickness and
composition of the plates. It varies from 1,000 to 10,000 A, and voltage between the electrodes is
usually less than 2 V. The period of the flow of current varies widely depending upon the
thickness of sheets to be joined. A step-down transformer is used to reduce a high-voltage and
low-current supply to low-voltage and high-current supply required. Since the heat developed
being proportional to the product of welding time and square of the current. Good weld can be
obtained by low currents for longer duration and high currents for shorter duration; longer
welding time usually produces stronger weld but it involves high energy expenditure, electrode
maintenance, and lot of distortion of workpiece.
When voltage applied across the electrode, the flow of current will generate heat at the three
junctions, i.e., heat developed, between the two electrode tips and workpiece, between the two
workpieces to be joined as shown in Fig. 3.3. The generation of heat at junctions 1 and 3 will
effect electrode sticking and melt through holes, the prevention of electrode striking is achieved
by:
1. Using water-cooled electrodes shown in Fig. 5.4. By avoiding the heating of junctions 1 and 3 electrodes
in which cold water circulated continuously as shown in Fig. 5.3.
2. The material used for electrode should have high electrical and thermal conductivity. Spot welding is
widely used for automatic welding process, for joining automobile parts, joining and fabricating sheet
metal structure, etc.
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Seam welding is nothing but the series of continuous spot welding. If number spots obtained by
spot welding are placed very closely that they can overlap, it gives rise to seam welding.
In this welding, continuous spot welds can be formed by using wheel type or roller electrodes
instead of tipped electrodes as shown in Fig. 5.5.
Seam welding is obtained by keeping the job under electrodes. When these wheel type
electrodes travel over the metal pieces which are under pressure, the current passing between
them heats the two metal pieces to the plastic state and results into continuous spot welds.
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In this welding, the contact area of electrodes should be small, which will localize the current
pressure to the welding point. After forming weld at one point, the weld so obtained can be
cooled by splashing water over the job by using cooling jets.
In general, it is not satisfactory to make a continuous weld, for which the flow of continuous
current build up high heat that causes burning and wrapping of the metal piece. To avoid this
difficulty, an interrupter is provided on the circuit which turns on supply for a period sufficient to
heat the welding point. The series of weld spots depends upon the number of welding current
pulses.
The two forms of welding currents are shown in Fig. 5.6(a) and (b).
Seam welding is very important, as it provides leak proof joints. It is usually employed in
welding of pressure tanks, transformers, condensers, evaporators, air craft tanks, refrigerators,
varnish containers, etc.
It is a modified form of the spot welding. In the projection welding, both current and pressure are
localized to the welding points as in the spot welding. But the only difference in the projection
welding is the high mechanical pressure applied on the metal pieces to be welded, after the
formation of weld. The electrodes used for such welding are flat metal plates known as platens.
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The two pieces of base metal to be weld are held together in between the two platens, one is
movable and the other is fixed, as shown in Fig. 5.7.
One of the two pieces of metal is run through a machine that makes the bumps or projections
of required shape and size in the metal. As current flows through the two metal parts to be
welded, which heat up and melt. These weld points soon reach the plastic state, and the
projection touches the metal then force applied by the two flat electrodes forms the complete
weld.
The projection welding needs no protective atmosphere as in the spot welding to produce
successful results. This welding process reduces the amount of current and pressure in order to
join two metal surfaces, so that there is less chance of distortion of the surrounding areas of the
weld zone. Due to this reason, it has been incorporated into many manufacturing process.
The projection welding has the following advantages over the spot welding.
This type of welding is usually employed on punched, formed, or stamped parts where the
projection automatically exists. The projection welding is particularly employed for mass
production work, i.e., welding of refrigerators, condensers, crossed wire welding, refrigerator
racks, grills, etc.
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Butt welding is similar to the spot welding; however, the only difference is, in butt welding,
instead of electrodes the metal parts that are to be joined or butted together are connected to the
supply.
In upset welding, the two metal parts to be welded are joined end to end and are connected
across the secondary of a welding transformer as shown in Fig. 5.8.
Due to the contact resistance of the metals to be welded, heating effect is generated in this
welding. When current is made to flow through the two electrodes, heat will develop due to the
contact resistance of the two pieces and then melts. By applying high mechanical pressure either
manually or by toggle mechanism, the two metal pieces are pressed. When jaw-type electrodes
are used that introduce the high currents without treating any hot spot on the job.
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This type of welding is usually employed for welding of rods, pipes, and wires and for joining
metal parts end to end.
Flash butt welding is a combination of resistance, arc, and pressure welding. This method of
welding is mainly used in the production welding. A simple flash butt welding arrangement is
shown in Fig. 5.9.
In this method of welding, the two pieces to be welded are brought very nearer to each other
under light mechanical pressure. These two pieces are placed in a conducting movable clamps.
When high current is passed through the two metal pieces and they are separated by some
distance, then arc established between them. This arc or flashing is allowed till the ends of the
workpieces reach melting temperature, the supply will be switched off and the pieces are rapidly
brought together under light pressure. As the pieces are moved together, the fused metal and slag
come out of the joint making a good solid joint.
Following are the advantages of the flash butt welding over the upset welding.
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It is a form of the flash butt welding, where high current of short duration is employed using
stored energy principle. This is a self-timing spot welding method.
Percussion welding arrangement consists of one fixed holder and the other one is movable.
The pieces to be welded are held apart, with the help of two holders, when the movable clamp is
released, it moves rapidly carrying the piece to be welded. There is a sudden discharge of
electrical energy, which establishes an arc between the two surfaces and heating them to their
melting temperature, when the two pieces are separated by a distance of 1.5 mm apart. As the
pieces come in contact with each other under heavy pressure, the arc is extinguished due to the
percussion blow of the two parts and the force between them affects the weld. The percussion
welding can be obtained in two methods; one is capacitor energy storage system and the other is
magnetic energy storage system. The capacitor discharge circuit for percussion welding is shown
in Fig. 5.10.
The capacitor ‘C’ is charged to about 3,000 V from a controlled rectifier. The capacitor is
connected to the primary of welding transformer through the switch and will discharge. This
discharge will produce high transient current in the secondary to join the two metal pieces.
Percussion welding is difficult to obtain uniform flashing of the metal part areas of the cross-
section grater than 3 sq. cm. Advantage of this welding is so fast, extremely shallow of heating is
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obtained with a span of about 0.1 sec. It can be used for welding a large number of dissimilar
metals.
Applications
o It is useful for welding satellite tips to tools, sliver contact tips to copper, cast iron to steel, etc.
o Commonly used for electrical contacts.
o The metals such as copper alloys, aluminum alloys, and nickel alloys are percussion welded.
The successful welding operation mainly depends upon three factors and they are:
1. Welding time.
2. Welding current.
3. Welding pressure.
Figure 5.11 shows how the energy input to the welding process, welding strength, and welding
current vary with welding time.
The heat developed during welding process is given by H = I2Rt. Here both welding current
and welding time are critical variables.
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Greater the welding current, the shorter the welding time required is; usually longer welding
time produces stronger weld but there is lot of distortion of workpiece and high energy
expenditure. From Fig. 5.11, it is to be noted that, from 0 to t1 sec, there is appreciable increase
in welding strength, but after t2 sec, the increase in the welding time does not appreciably result
in the increase in strength; therefore, ‘t2’ is the optimum welding time. This optimum time varies
with the thickness of the material. The optimum times of material (sheet steel) with different
thickness are given as:
2 × 24 SWG 8 cycles
2 × 14 SWG 20 cycles
2¼″ 2 sec
Therefore, from the above discussion, it is observed that shorter welding times with strength and
economy are always preferable.
Electromagnetic storage welding circuit is shown in Fig. 5.12. In this type of welding, the
energy stored in the magnetic circuit is used in the welding operation.
In this system, rectifier is fed from AC supply, which is converted to DC, the DC voltage of
rectifier is controlled in such a way that, voltage induced in the primary without causing large
current in the secondary of transformer on opening the contactor switch, DC on longer flows,
there is rapid collapse of magnetic field, which induces very high current in the secondary of a
transformer. Induced currents in the secondary of the transformer flow through the electrodes
that develop heat at the surface of the metal and so forming the complete weld.
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Electric arc welding is the process of joining two metallic pieces or melting of metal is obtained
due to the heat developed by an arc struck between an electrode and the metal to be welded or
between the two electrodes as shown in Fig. 5.13 (a).
In this process, an electric arc is produced by bringing two conductors (electrode and metal
piece) connected to a suitable source of electric current, momentarily in contact and then
separated by a small gap, arc blows due to the ionization and give intense heat.
The heat so developed is utilized to melt the part of workpiece and filler metal and thus forms
the weld.
In this method of welding, no mechanical pressure is employed; therefore, this type of welding
is also known as 'non-pressure welding’.
The length of the arc required for welding depends upon the following factors:
When the supply is given across the conductors separated by some distance apart, the air gap
present between the two conductors gets ionized, as the arc welding is in progress, the ionization
of the arc path and its surrounding area increases. This increase in ionization decreases the
resistance of the path. Thus, current increases with the decrease in voltage of arc. This V-
I characteristic of an arc is shown in Fig. (b), it also known as negative resistance characteristics
of an arc. Thus, it will be seen that this decrease in resistance with increase in current does not
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remain the arc steadily. This difficulty cab be avoided, with the supply, it should fall rapidly with
the increase in the current so that any further increase in the current is restricted.
For the arc welding, the temperature of the arc should be 3,500°C. At this temperature,
mechanical pressure for melting is not required. Both AC and DC can be used in the arc welding.
Usually 70–100 V on AC supply and 50–60 V on DC supply system is sufficient to struck the arc
in the air gap between the electrodes. Once the arc is struck, 20–30 V is only required to
maintain it.
However, in certain cases, there is any danger of electric shock to the operator, low voltage
should be used for the welding purpose. Thus, DC arc welding of low voltage is generally
preferred.
Electric arc welding is extensively used for the joining of metal parts, the repair of fractured
casting, and the fillings by the deposition of new metal on base metal, etc.
It is one of the processes of arc welding in which arc is struck between two carbon electrodes or
the carbon electrode and the base metal. The simple arrangement of the carbon arc welding is
shown in Fig. 5.14.
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In this process of welding, the electrodes are placed in an electrode holder used as negative
electrode and the base metal being welded as positive. Unless, the electrode is negative relative
to the work, due to high temperature, there is a tendency of the particles of carbon will fuse and
mix up with the base metal, which causes brittleness; DC is preferred for carbon arc welding
since there is no fixed polarity maintained in case of AC.
In the carbon arc welding, carbon or graphite rods are used as electrode. Due to longer life and
low resistance, graphite electrodes are used, and thus capable of conducting more current. The
arc produced between electrode and base metal; heat the metal to the melting temperature, on the
negative electrode is 3,200°C and on the positive electrode is 3,900°C.
This process of welding is normally employed where addition of filler metal is not required.
The carbon arc is easy to maintain, and also the length of the arc can be easily varied. One major
problem with carbon arc is its instability which can be overcome by using an inductor in the
electrode of 2.5-cm diameter and with the current of about of 500–800 A employed to deposit
large amount of filler metal on the base metal.
Filler metal and flux may not be used depending upon the type of joint and material to be
welded.
Advantages
o The heat developed during the welding can be easily controlled by adjusting the length of the arc.
o It is quite clean, simple, and less expensive when compared to other welding process.
o Easily adoptable for automation.
o Both the ferrous and the non-ferrous metals can be welded.
Disadvantages
o Input current required in this welding, for the workpiece to rise its temperature to melting/welding
temperature, is approximately double the metal arc welding.
o In case of the ferrous metal, there is a chance of disintegrating the carbon at high temperature and
transfer to the weld, which causes harder weld deposit and brittlement.
o A separate filler rod has to be used if any filler metal is required.
Applications
o It can be employed for the welding of stainless steel with thinner gauges.
o Useful for the welding of thin high-grade nickel alloys and for galvanized sheets using copper silicon
manganese alloy filler metal.
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In metal arc welding, the electrodes used must be of the same metal as that of the work-piece to
be welded. The electrode itself forms the filler metal. An electric arc is stuck by bringing the
electrode connected to a suitable source of electric current, momentarily in contract with the
workpieces to be welded and withdrawn apart. The circuit diagram for the metal arc welding is
shown in Fig. 5.15.
The arc produced between the workpiece and the electrode results high temperature of the
order of about 2,400°C at negative metal electrode and 2,600°C at positive base metal or
workpiece.
This high temperature of the arc melts the metal as well as the tip of the electrode, then the
electrode melts and deposited over the surface of the workpiece, forms complete weld.
Both AC and DC can be used for the metal arc welding. The voltage required for the DC metal
arc welding is about 50–60 V and for the AC metal arc welding is about 80–90 V
In order to maintain the voltage drop across the arc less than 13 V, the arc length should be
kept as small as possible, otherwise the weld will be brittle. The current required for the welding
varies from 10 to 500 A depending upon the type of work to be welded.
The main disadvantage in the DC metal arc welding is the presence of arc blow, i.e., distortion
of arc stream from the intended path due to the magnetic forces of the non-uniform magnetic
field with AC arc blow is considerably reduced. For obtaining good weld, the flux-coated
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electrodes must be used, so the metal which is melted is covered with slag produces a non-
oxidizing gas or a molten slag to cover the weld, and also stabilizes the arc.
In atomic hydrogen arc welding, shown in Fig. 5.16, the heat for the welding process is produced
from an electric arc struck between two tungsten electrodes in an atmosphere of hydrogen. Here,
hydrogen serves mainly two functions; one acts as a protective screen for the arc and the other
acts as a cooling agent for the glowing tungsten electrode tips. As the hydrogen gas passes
through the arc, the hydrogen molecules are broken up into atoms, absorbs heat from the glowing
tungsten electrodes so that these are cooled.
But, when the atoms of hydrogen recombine into molecules outside the arc, a large amount of
heat is liberated. This extraheat is added to the intense heat of arc, which produces a temperature
of about 4,000°C that is sufficient to melt the surfaces to be welded, together with the filler rod if
used. Moreover hydrogen includes oxygen and some other gases that might combine with the
molten metal and forms oxides and other impurities. Hydrogen also removes oxides from the
surface of workpiece. Thus, this process is capable of producing strong, uniform, smooth, and
ductile welds.
In the atomic hydrogen arc welding, the arc is maintained between the two non-consumable
tungsten electrodes under a pressure of about 0.5 kg/cm2. In order to obtain equal consumption of
electrodes, AC supply is used. Arc currents up to 150 A can be used. High voltage about 300 V
is applied for this welding through a transformer. For striking the arc between the electrodes the
open circuit voltage required varies from 80 to 100 V.
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As the atomic hydrogen welding is too expensive, it is usually employed for welding alloy
steel, carbon steel, stainless steel, aluminum, etc.
It is a gas-shielded metal arc welding, in which an electric arc is stuck between tungsten
electrode and workpiece to be welded. Filler metal may be introduced separately into the arc if
required. A welding gun, which carries a nozzle, through this nozzle, inert gas such as beryllium
or argon is blown around the arc and onto the weld, as shown in Fig. 5.17. As both beryllium and
argon are chemically inert, so the molten metal is protected from the action of the atmosphere by
an envelope of chemically reducing or inert gas.
As molten metal has an affinity for oxygen and nitrogen, if exposed to the atmosphere, thereby
forming their oxides and nitrides, which makes weld leaky and brittle.
Thus, several methods of shielding have been employed. With the use of flux coating
electrodes or by pumping, the inert gases around the arc produces a slag that floats on the top of
molten metal and produces an envelope of inert gas around the arc and the weld.
Advantages
o Flux is not required since inert gas envelope protects the molten metal without forming oxides and
nitrates so the weld is smooth, uniform, and ductile.
o Distortion of the work is minimum because the concentration of heat is possible.
Applications
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It is an arc welding process, in which the arc column is established between above metal
electrode and the workpiece. Electric arc and molten pool are shielded by blanket of granular
flux on the workpiece. Initially to start an arc, short circuit path is provided by introducing steel
wool between the welding electrode and the workpiece. This is due to the coated flux material,
when cold it is non-conductor of the electricity but in molten state, it is highly conductive.
Welding zone is shielded by a blanket of flux, so that the arc is not visible. Hence, it is known
as 'submerged arc welding’. The arc so produced, melts the electrode, parent the metal and the
coated flux, which forms a protective envelope around both the arc and the molten metal.
As the arc in progress, the melted electrode metal forms globules and mix up with the molten
base metal, so that the weld is completed. In this welding, the electrode is completely covered by
flux. The flux may be made of silica, metal oxides, and other compounds fused together and then
crushed to proper size. Therefore, the welding takes place without spark, smoke, ash, etc. Thus,
there is no need of providing protective shields, smoke collectors, and ventilating
systems. Figure 5.18 shows the filling of parent metal by the submerged arc welding.
Voltage required for the submerged arc welding varies from 25 to 40 V. Current employed for
welding depends upon the dimensions of the workpiece. Normally, if DC supply is used
employing current ranging from 600 to 1,000 A, the current for AC is usually 2,000 A.
Advantages
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Applications
o The submerged arc welding is widely used in the heavy steel plant fabrication work.
o It can be employed for welding high strength steel, corrosion resistance steel, and low carbon steel.
o It is also used in the ship-building industry for splicing and fabricating subassemblies, manufacture of
vessels, tanks, etc.
It is one of the processes of the electric welding, in which the heat required for carrying out the
welding operation is obtained by the electron bombardment heating.
In the electron bombardment heating, continuous stream of electron is produced between the
electron emitting material cathode and the material to be heated. The electrons released from
cathode possess KE traveling with high velocity in vacuum of 10-3-10-5 mmHg. When the fast
moving electrons hit, the material or workpiece releases their KE as heat in the material to be
heated. This heat is utilized to melt the metal.
If this process is carried out in high vacuum, without providing any electrodes, gasses, or filler
metal, pure weld can be obtained. Moreover, high vacuum is maintained around the (filament)
cathode. So that, it will not burn up and also produces continuous stable beam. If a vacuum was
not used, the electron would strike the small partials in the atmosphere, reducing their velocity
and also the heating ability. Thus, the operation should be performed in vacuum to present the
reduction of the velocity of electron. That's why this is also called as'vacuum electron beam
welding’. The power released by the electron beam is given by:
P = nqv watts,
where n is the number of charged particles, q is the charge in coulombs per meter, and v is the
voltage required to accelerate the electrum from rest.
The electron beam welding (Fig. 5.19) process requires electron-emitting heating filament as
cathode, focusing lens, etc.
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Advantages
o Heat input to the electron beam welding can be easily controlled by varying beam current, voltage, the
position of filament, etc.
o The electron beam welding can be used to join high temperature metals such as columbium.
o It can be employed for the welding of thick sections, due to high penetration to width ratio.
o It eliminates contamination of both weld zone and weld metal.
o Narrow electron beam reduces the distortion of workpiece.
Disadvantages
o The pressure build up in the vacuum chamber due to the vapor of parent metal causes electrical break
down.
o Most of the super alloys, refractory metals, and combinations of dissimilar metals can also be welded.
The word laser means 'light amplification stimulated emission of radiation’. It is the process of
joining the metal pieces by focusing a monochromatic light into the extremely concentrated
beams, onto the weld zone.
This process is used without shielding gas and without the application of pressure. The laser
beam is very intense and unidirectional but can be focused and refracted in the same way as an
ordinary light beam. The focus of the laser beam can be controlled by controlling the lenses,
mirrors, and the distance to the workpiece. Ablock diagram of the laser beam welding system is
shown in Fig. 5.20.
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In laser beam welding system, flash tube is designed to give thousands of flashes per second.
When capacitor bank is triggered, the electrical energy is injected into the flash tube through
trigger wire. Flash tube consists of thick xenon material, which produces high power levels for
very short period. If the bulb is operated in this manner, it becomes an efficient device, which
converts electrical energy to light energy. The laser is then activated.
The laser beam emitting from the flash tube, passing through the focusing lens, where it is
pinpointed on the workpiece. The heat so developed by the laser beam melts the work-piece and
the weld is completed. The welding characteristics of the laser are similar to the electron beam.
The laser beam has been used to weld carbon steel, low-alloy steel, aluminum, etc. The metals
with relatively high-electrical resistance and the parts of different sizes and mass can be welded.
An electrode is a piece of metal in the form of wire or rod that is either bare or coated uniformly
with flux. Electrode carries current for the welding operation. One contact end of the electrode
must be clean and is inserted into the electrode holder, an arc is set up at the other end.
The electrodes used for the arc welding are classified as follows (Fig. 5.21).
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Non-consumable electrodes
Electrodes, which do not consume or fuse during the welding process, are called non-
consumable electrodes.
Ex: Electrodes made up of carbon, graphite, or tungsten do not consume during welding.
Consumable electrodes
Electrodes, which are consumed during the welding operation, are consumable electrodes. These
are made up of various materials depending upon their purpose and the chemical composition of
metal to be welded.
The consumable electrodes are made in the form of rod having diameter of about 2–8 mm and
length of about 200–500 mm. They act as filler rod and are consumed during welding operation.
Bare electrodes
These are the consumable electrodes, which are not coated with any fluxing material. Bare
electrodes are in the form of wire. During welding operation, an arc is struck between the
workpiece and the electrode wire, then the electrode is melted down into the weld.
When the molten metal electrode and the workpiece are exposed to the atmosphere of oxygen
and nitrogen, they form their oxides and nitrides and cause the formation of some non-metallic
constituent, which reduces the strength and ductility of the deposited weld. The bare electrodes
are usually employed in automatic and semiautomatic welding. With bare electrode, the welding
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can be done satisfactorily with DC supply only if the electrode should be connected to the
negative terminal of the supply.
Coated electrodes
Depending upon the thickness of flux coating, the coated electrode may classified into:
For obtaining good weld, the coated electrodes are always preferred.
These electrodes are coated with thin layer of coating material up to less than 1 mm. This coating
is usually consists of lime mixed with soluble glass which serves as a binder. These electrodes
are considered as improvement over bare electrodes.
The main purpose of using the light coating layer on the electrode is to increase the arc
stability, so they are also called as stabilizing electrodes. The mechanical strength of the weld
increased because slag layer will not formed on the molten weld. For this reason, lightly coated
electrodes may only be used for welding non-essential workpieces.
These electrodes have coating layer with heavy thickness. The heavily coated electrodes
sometimes referred to as the shielded arc electrodes. The materials commonly used for coating
the electrodes are titanium oxide, ferromanganese, silica, flour, asbestos clay, calcium carbonate,
etc. This electrode coating helps in improving the quality of weld, as if the coating layer of the
electrodes burns in the heat of the arc provides gaseous shield around the arc, which prevents the
formation oxides and nitrites.
Advantages
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The type of electrode used for the welding process depends upon the following factors.
1 The source of supply is AC only. The source of supply is either AC (1-φ or 3-φ) or DC.
2 The head developed is mainly due to the The heat developed is mainly due to the striking of arc between
flow of contact resistance. electrodes or an electrode and the workpiece.
3 The temperature attained by the workpiece The temperature of the arc is so high, so proper care should be taken
is not so high. during the welding.
4 External pressure is required. No external pressure is required hence the welding equipment is more
simple and easy to control.
5 Filler metal is not required to join two Suitable filler electrodes are necessary to get proper welding strength.
metal pieces.
6 It cannot be used for repair work; it is It is not suitable for mass production. It is most suitable for repair
suitable for mass production. works and where more metal is to be deposited.
8 The operating power factor is low. The operating power factor is high.
9 Bar, roller, or flat type electrodes are used Bare or coated electrodes are used (consumable or non-consumable).
(not consumable).
Electric welding accessories required to carry out proper welding operation are:
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AC welding DC welding
2 The cost of the equipment is high. The cost of the equipment is cheap.
5 Both bare and coated electrodes can be used. Only coated electrodes should be used.
6 The operating power factor is high. The power factor is low. So, the capacitors are necessary
to improve the power factor.
7 It is safer since no load voltage is low. It is dangerous since no load voltage is high.
8 The electric energy consumption is 5–10 kWh/kg of The electrical energy consumption is 3–4 kWh/kg of
deposited metal. deposited metal
9 Arc blow occurs due to the presence of non-uniform Arc blow will not occur due to the uniform magnetic
magnetic field. field.
10 The efficiency is low due to the rotating parts. The efficiency is high due to the absence of rotating parts.
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UNIT 4
Fundamentals of Illumination
INTRODUCTION
Nature of light
Light is a form of electromagnetic energy radiated from a body and human eye is
capable of receiving it. Light is a prime factor in the human life as all activities of human
being ultimately depend upon the light.
Various forms of incandescent bodies are the sources of light and the light emitted by
such bodies depends upon their temperature. A hot body about 500–800°C becomes a
red hot and about 2,500–3,000°C the body becomes white hot. While the body is red-
hot, the wavelength of the radiated energy will be sufficiently large and the energy
available in the form of heat. Further, the temperature increases, the body changes from
red-hot to white-hot state, the wavelength of the radiated energy becomes smaller and
enters into the range of the wavelength of light. The wavelength of the light waves
varying from 0.0004 to 0.00075 mm, i.e. 4,000-7,500 Å (1 Angstrom unit = 10–10 mm).
The eye discriminates between different wavelengths in this range by the sensation of
color. The whole of the energy radiated out is not useful for illumination purpose.
Radiations of very short wavelength varying from 0.0000156 × 10–6m to 0.001 × 10–6 m
are not in the visible range are called as rontgen or x-rays, which are having the property
of penetrating through opaque bodies.
Color: The energy radiation of the heated body is monochromatic, i.e. the radiation of
only one wavelength emits specific color. The wavelength of visible light lies between
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4,000 and 7,500 Å. The color of the radiation corresponding to the wavelength is shown
in Fig. 6.1.
Fig. Wavelength
Relative sensitivity: The reacting power of the human eye to the light waves of
different wavelengths varies from person to person, and also varies with age. The
average relative sensitivity is shown in Fig. 6.2.
The eye is most sensitive for a wavelength of 5,500 Å. So that, the relative sensitivity
according to this wavelength is taken as unity.
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Referred from Fig. 6.1, blue and violet corresponding to the short wavelengths and red
to the long wavelengths, orange, yellow, and green being in the middle of the visible
region of wavelength. The color corresponding to 5,500 Å is not suitable for most of the
applications since yellowish green. The relative sensitivity at any particular wavelength
(λ) is known as relative luminous factor (Kλ).
Light: It is defined as the radiant energy from a hot body that produces the visual
sensation upon the human eye. It is expressed in lumen-hours and it analogous to watt-
hours, which denoted by the symbol ‘Q’.
Luminous flux: It is defined as the energy in the form of light waves radiated per
second from a luminous body. It is represented by the symbol ‘φ’ and measured in
lumens.
The total electrical power input to the lamp is not converted to luminous flux, some of
the power lost through conduction, convection, and radiation, etc. Afraction of the
remaining radiant flux is in the form of light waves lies in between the visual range of
wavelength, i.e. between 4,000 and 7,000 Å, as shown in Fig. 6.3.
Radiant efficiency
‘Radiant efficiency is defined as the ratio of energy radiated in the form of light,
produces sensation of vision to the total energy radiated out by the luminous body’.
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Plane angle
A plane angle is the angle subtended at a point in a plane by two converging lines (Fig.
6.4). It is denoted by the Greek letter ‘θ’ (theta) and is usually measured in degrees or
radians.
One radian is defined as the angle subtended by an arc of a circle whose length by an arc
of a circle whose length is equals to the radius of the circle.
Solid angle
Solid angle is the angle subtended at a point in space by an area, i.e., the angle enclosed
in the volume formed by numerous lines lying on the surface and meeting at the point
(Fig. 6.5). It is usually denoted by symbol ‘ω’ and is measured in steradian.
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Let us consider a curved surface of a spherical segment ABC of height ‘h’ and radius of
the sphere ‘r’ as shown in Fig. 6.6. The surface area of the curved surface of the spherical
segment ABC = 2πrh. From the Fig. 6.6:
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BD = OB – OD
From the Equation (6.3), the curve shows the variation of solid angle with plane angle is
shown in Fig. 6.7.
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Luminous intensity
Luminous intensity in a given direction is defined as the luminous flux emitted by the
source per unit solid angle (Fig. 6.8).
Let ‘F’ be the luminous flux crossing a spherical segment of solid angle ‘ω’. Then
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It is defined as the luminous flux emitted by a source of one candle power per unit solid
angle in all directions.
Lumen = CP × ω
The CP of a source is defined as the total luminous flux lines emitted by that source in a
unit solid angle.
Illumination
Illumination is defined as the luminous flux received by the surface per unit area.
It is usually denoted by the symbol ‘E’ and is measured in lux or lumen/m2 or meter
candle or foot candle.
Foot candle
It is the unit of illumination and is defined as the illumination of the inside of a sphere
of radius 1 foot, and a source of 1 CP is fitted at the center of it.
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Brightness
Brightness of any surface is defined as the luminous intensity pen unit surface area of
the projected surface in the given direction. It is usually denoted by symbol ‘L’.
If the luminous intensity of source be ‘I’ candela on an area A, then the projected area
is Acos θ.
Let us consider a uniform diffuse sphere with radius r meters, at the center a source of 1
CP, and luminous intensity I candela.
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MHCP is defined as the mean of the candle power of source in all directions in
horizontal plane.
MSCP is defined as the mean of the candle power of source in all directions in all planes.
MHSCP is defined as the mean of the candle power of source in all directions above or
below the horizontal plane.
Reduction factor
Reduction factor of the source of light is defined as the ratio of its mean spherical candle
power to its mean horizontal candle power.
Lamp efficiency
It is defined as the ratio of the total luminous flux emitting from the source to its
electrical power input in watts.
It is expressed in lumen/W.
Specific consumption
It is defined as the ratio of electric power input to its average candle power.
It is defined as ratio of horizontal distance between adjacent lamps to the height of their
mountings.
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It is defined as the ratio of total number of lumens reaching the working plane to the
total number of lumens emitting from source.
Maintenance factor
Its value is always less than 1, and it will be around 0.8. This is due to the accumulation
of dust, dirt, and smoke on the lamps that emit less light than that they emit when they
are so clean. Frequent cleaning of lamp will improve the maintenance factor.
Depreciation factor
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When a surface is illuminated by several numbers of the sources of light, there is certain
amount of wastage due to overlapping of light waves; the wastage of light is taken into
account depending upon the type of area to be illuminated. Its value for rectangular area
is 1.2 and for irregular area is 1.5 and objects such as statues, monuments, etc.
Absorption factor
Normally, when the atmosphere is full of smoke and fumes, there is a possibility of
absorption of light. Hence, the total lumens available after absorption to the total
lumens emitted by the lamp are known as absorption factor.
When light rays impinge on a surface, it is reflected from the surface at an angle of
incidence shown in Fig. 6.9. A portion of incident light is absorbed by the surface.
The ratio of luminous flux leaving the surface to the luminous flux incident on it is
known as reflection factor.
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Beam factor
It is defined as the ratio of ‘lumens in the beam of a projector to the lumens given out by
lamps’. Its value is usually varies from 0.3 to 0.6. This factor is taken into account for
the absorption of light by reflector and front glass of the projector lamp.
Example 6.1: A 200-V lamp takes a current of 1.2 A, it produces a total flux of 2,860
lumens. Calculate:
Solution:
Given V = 200 V
Example 6.2: A room with an area of 6 × 9 m is illustrated by ten 80-W lamps. The
luminous efficiency of the lamp is 80 lumens/W and the coefficient of utilization is 0.65.
Find the average illumination.
Solution:
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Example 6.3: The luminous intensity of a lamp is 600 CP. Find the flux given out.
Also find the flux in the hemisphere containing the source of light and zero above the
horizontal.
Solution:
Example 6.4: The flux emitted by 100-W lamp is 1,400 lumens placed in a frosted
globe of 40 cm diameter and gives uniform brightness of 250 milli-lumens/m2 in all
directions. Calculate the candel power of the globe and the percentage of light absorbed
by the globe.
Solution:
= 1,256.63 lumens
= 1,400 – 1,256.63
= 143.36 lumens.
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Example 6.5: A surface inclined at an angle 40° to the rays is kept 6 m away from 150
candle power lamp. Find the average intensity of illumination on the surface.
Solution:
∴ Average illumination:
Fig. P.6.1
LAWS OF ILLUMINATION
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This law states that ‘the illumination of a surface is inversely proportional to the square
of distance between the surface and a point source’.
Proof:
Let, ‘S’ be a point source of luminous intensity ‘I’ candela, the luminous flux emitting
from source crossing the three parallel plates having areas A1 A2, and A3 square meters,
which are separated by a distances of d, 2d, and 3d from the point source respectively as
shown in Fig. 6.10.
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Hence, from Equation (6.8), illumination on any surface is inversely proportional to the
square of distance between the surface and the source.
This law states that ‘illumination, E at any point on a surface is directly proportional to
the cosine of the angle between the normal at that point and the line of flux’.
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Proof:
While discussing, the Lambert's cosine law, let us assume that the surface is inclined at
an angle ‘θ’ to the lines of flux as shown in Fig. 6.11.
Let
PQ = The surface area normal to the source and inclined at ‘θ’ to the vertical axis.
RS = The surface area normal to the vertical axis and inclined at an angle θ to the source
‘O’.
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where d is the distance between the source and the surface in m, h is the height of source
from the surface in m, and I is the luminous intensity in candela.
Hence, Equation (6.11) is also known as ‘cosine cube’ law. This law states that the
‘illumination at any point on a surface is dependent on the cube of cosine of the angle
between line of flux and normal at that point’.
Note:
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*From the above laws of illumination, it is to be noted that inverse square law is only
applicable for the surfaces if the surface is normal to the line of flux. And Lambert's
cosine law is applicable for the surfaces if the surface is inclined an angle ‘θ’ to the line of
flux.
Example 6.6: The illumination at a point on a working plane directly below the lamp
is to be 60 lumens/m2. The lamp gives 130 CP uniformly below the horizontal plane.
Determine:
Solution:
Given data:
1. From the Fig. P.6.2, the illumination just below the lamp, i.e., at point A:
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Fig. P.6.2
Example 6.7: A lamp having a candle power of 300 in all directions is provided with a
reflector that directs 70% of total light uniformly on a circular area 40-m diameter. The
lamp is hung at 15 m above the area.
Solution:
Given data:
Height of mounting = 15 m.
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Fig. P.6.3
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Example 6.8: The luminous intensity of a source is 600 candela is placed in the
middle of a 10 × 6 × 2 m room. Calculate the illumination:
Solution:
Given data:
Room area = 10 × 6 × 2 m.
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Fig. P.6.4
Fig. P.6.5
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Example 6.9: The candle power of a source is 200 candela in all directions below the
lamp. The mounting height of the lamp is 6 m. Find the illumination:
Solution:
Fig. P.6.6
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The illumination 3 m away from the lamp on the ground, i.e., at point ‘B’ (Fig.
P.6.7):
Fig. P.6.7
3.
= EA × surface area
= 5.55 × 1.767
= 9.80 lumens.
Example 6.10: Two sources of candle power or luminous intensity 200 candela and
250 candela are mounted at 8 and 10 m, respectively. The horizontal distance between
the lamp posts is 40 m, calculate the illumination in the middle of the posts.
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Solution:
Fig. P.6.8
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∴ The total illumination at ‘P’ due to both the sources S1 and S2 = E1+ E2
= 0.159 + 0.2235
= 0.3825 lux.
Example 6.11: Two sources of having luminous intensity 400 candela are hung at a
height of 10 m. The distance between the two lamp posts is 20 m. Find the illumination
(i) beneath the lamp and (ii) in the middle of the posts.
Solution:
Given data:
Mounting height = 10 m.
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Fig. P.6.9
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Example 6.12: In a street lighting, two lamps are having luminous intensity of 300
candela, which are mounted at a height of 6 and 10 m. The distance between lamp posts
is 12 m. Find the illumination, just below the two lamps.
Solution:
1. The illumination at ‘B’ = the illumination due to L1 + the illumination due to L2. FormFig.
P.6.10:
Fig. P.6.10
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∴ The total illumination at ‘B’ due to the two lamps = 0.745 + 3 = 3.745 lux.
2. The illumination at ‘A’ = the illumination due to L1+ the illumination due to L2.
∴ The total illumination at ‘A' due to both lamps = 0.786 + 8.33 = 9.116 lux.
Example 6.13: Four lamps 15 m apart are arranged to illuminate a corridor. Each
lamp is suspended at a height of 8 m above the floor level. Each lamp gives 450 CP in all
directions below the horizontal; find the illumination at the second and the third lamp.
Solution:
Given data:
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Mounting height = 8 m.
Fig. P.6.11
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Similarly, the illumination at ‘P’ due to the lamp L3 ‘E3’ = the illumination at ‘P’ due to
the
and the illumination at ‘P’ due to the lamp L4, ‘E4’ = illumination at ‘P’ due to the lamp
‘L1’, ‘E1.'
= 2El + 2E2
= 2(E1+ E2)
= 2 (0.73 + 2.73)
= 6.92 lux.
Example 6.15: Two lamps of each 500 CP are suspended 10 m from the ground and
are separated by a distance of 20 m apart. Find the intensity of illumination at a point
on the ground in line with the lamps and 12 m from the base on both sides of the lamps.
Solution:
Given data:
Mounting height, h= 10 m.
Case (i):
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Fig. P.6.14
Fig. P.6.15
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= 1.3115 + 2.378
= 3.689 lux.
Case (ii):
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= 1.3115 + 0.1326
= 1.44 lux.
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Example 6.16: Two similar lamps having luminous intensity 500 CP in all directions
below horizontal are mounted at a height of 8 m. What must be the spacing between the
lamps so that the illumination on the ground midway between the lamps shall be at least
one-half of the illumination directly below the lamp.
Solution:
Given data:
Fig. P.6.16
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The illumination ‘E2’ at ‘C’ due to the lamp ‘L2’ is same as to ‘E1’.
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Example 6.17: Find the height at which a light source having uniform spherical
distribution should be placed over a floor in order that the intensity of horizontal
illumination at a given distance from its vertical line may be greatest.
Solution:
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Fig. P.6.17
Given that, the illumination at a point away from the base of lamp may be the greatest:
∴ h = 0.707x.
Example 6.18: A lamp of 250 candela is placed 2 m below a plane mirror that reflects
60% of light falling on it. The lamp is hung at 6 m above ground. Find the illumination
at a point on the ground 8 m away from the point vertically below the lamp.
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Solution:
Figure P.6.18 shows the lamp and the mirror arrangements. Here, the lamp ‘L’ produces
an image ‘L’, then the height of the image from the ground = 8 + 2 = 10 m.
Fig. P.6.18
And L1 acts as the secondary sources of light whose candle power is equals to 0.85 ×
∴ The illumination at the point ‘B’, ‘8’ m away from the lamp = illumination at ‘B’
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Example 6.19: A light source with an intensity uniform in all direction is mounted at
a height of 20 ms above a horizontal surface. Two points 'A' and ‘B’ both lie on the
surface with point A directly beneath the source. How far is B from A if the illumination
at ‘B’ is only 1/15th as great as A?
Solution:
Let the luminous intensity of the lamp ‘L’ be ‘I’ candela and the distance of the point of
illumination from the base of the lamp is ‘x’ m (Fig. P.6.19).
Fig. P.6.19
The illumination at the point 'A' due to the lamp ‘L’ is:
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The illumination at the point 'B' due to the lamp ‘L’ is:
Example 6.20: Two similar lamps having uniform intensity 500 CP in all directions
below the horizontal are mounted at a height of 4 m. What must be the maximum
spacing between the lamps so that the illumination on the ground midway between the
lamps shall be at least one-half the illuminations directly under the lamps?
Solution:
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Fig. P.6.20
EB = the illumination due to the lamp L1 + the illumination due to the lamp L2
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Given:
∴ d = 9.56 m.
Example 6.21: A lamp with a reflector is mounted 10 m above the center of a circular
area of 30-m diameter. If the combination of lamp and reflector gives a uniform CP of
1,200 over circular area, determine the maximum and minimum illumination produced.
Solution:
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Fig. P.6.21
Fig. P.6.22
The maximum illumination occur just directly below the lamp, i.e., at point ‘C’ is:
Minimum Illumination will occur at the periphery of the circular area, i.e., at A (or) B.
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Example 6.22: Two lamps hung at a height of 12 m from the floor level. The distance
between the lamps is 8 m. Lamp one is of 250 CP. If the illumination on the floor
vertically below this lamp is 40 lux, find the CP of the second lamp.
Solution:
Given data:
Let CP of L2 = ICP.
∴ The illumination at the point A = the illumination due to the lamp L1 +the illumination
POLAR CURVES
The luminous flux emitted by a source can be determined using the intensity
distribution curve. Till now we assumed that the luminous intensity or the candle power
from a source is distributed uniformly over the surrounding surface. But due to its s not
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uniform in all directions. The luminous intensity or the distribution of the light can be
represented with the help of the polar curves.
The polar curves are drawn by taking luminous intensities in various directions at an
equal angular displacement in the sphere. A radial ordinate pointing in any particular
direction on a polar curve represents the luminous intensity of the source when it is
viewed from that direction. Accordingly, there are two different types of polar curves
and they are:
1. A curve is plotted between the candle power and the angular position, if the luminous intensity,
i.e., candle power is measured in the horizontal plane about the vertical axis, called 'horizontal polar
curve’.
2. curve is plotted between the candle power, if it is measured in the vertical plane and the
angular position is known as 'verticalpolar curve’.
Figure 6.12 shows the typical polar curves for an ordinary lamp.
Depression at 180° in the vertical polar curve is due to the lamp holder. Slight
depression at 0° in horizontal polar curve is because of coiled coil filament.
Polar curves are used to determine the actual illumination of a surface by employing the
candle power in that particular direction as read from the vertical polar curve. These are
also used to determine mean horizontal candle power (MHCP) and mean spherical
candle power (MSCP).
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The mean horizontal candle power of a lamp can be determined from the horizontal
polar curve by considering the mean value of all the candle powers in a horizontal
direction.
The mean spherical candle power of a symmetrical source of a light can be found out
from the polar curve by means of a Rousseau's construction.
Rousseau's construction
Let us consider a vertical polar curve is in the form of two lobes symmetrical
about XOX1 axis. A simple Rousseau's curve is shown in Fig. 6.13.
1. Draw a circle with any convenient radius and with ‘O’ as center.
2. Draw a line 'AF’ parallel to the axis XOX1 and is equal to the diameter of the circle.
3. Draw any line ‘OPQ' in such a way that the line meeting the circle at point ‘Q’. Now let the
projection be ‘R’ onto the parallel line 'AF’.
4. Erect an ordinate at ‘R’ as, RB = OP.
5. Now from this line 'AF' ordinate equals to the corresponding radius on the polar curve are
setup such as SC = OM, TD = ON, and so on.
6. The curve ABC DEFA so obtained by joining these ordinates is known as Rousseau's curve.
The mean ordinate of this curve gives the mean spherical candle power (MSCP) of the
lamp having polar curve given in Fig. 6.13.
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The area under the Rousseau's curve can be determined by Simpson's rule.
PHOTOMETRY
The candle power of a given source in a particular direction can be measured by the
comparison with a standard or substandard source. In order to eliminate the errors due
to the reflected light, the experiment is conducted in a dark room with dead black walls
and ceiling. The comparison of the test lamp with the standard lamp can be done by
employing a photometer bench and some form of photometer.
The photometer bench essentially consists of two steel rods with 2- to 3-m long. This
bench carries stands or saddles for holding two sources (test and standard lamps), the
carriage for the photometer head and any other apparatus employed in making
measurements. Graduated scale in centimeters or millimeters in one of the bar strips.
The circular table is provided with a large graduated scale in degrees round its edge so
that the angle of the rotation of lamp from the axis of bench can be measured.
The photometer bench should be rigid so that the source being compared may be free
from vibration. The photometer head should be capable of moving smoothly and the
photometer head acts as screen for the comparison of the illumination of the standard
lamp and the test lamp.
The principle methods of measurement are based upon the inverse square law.
The photometer bench consists of two sources, the standard source ‘S’ whose candle
power is known and the other source ‘T’ whose candle power is to be determined. The
photometer head acts as screen is moved in between the two fixed sources until the
illumination on both the sides of screen is same. A simple arrangement for the
measurement of the candle power of the test source is shown in Fig. 6.14.
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If the distances of the standard source ‘S’ and the test source ‘T’ from the photometer
head are L1 and L2, respectively, then, according to the inverse square law, if the
illumination on both the sides of screen are equal then the candle power of the source is
proportional to the square of the distance between the source and the photometer head.
In order to obtain the accurate candle power of test source, the distance of the sources
from the photometer head should be measured accurately.
Photometer heads
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The first two are best suited for use, if the two sources to be compared give the light of
same or approximately similar colors. Increase the light from the two sources to be
compared differ in color, a flicker photometer is best suited.
Bunsen photometer consists of a tissue paper, with a spot of grease or wax at its center.
It held vertically in a carrier between the two light sources to be compared. The central
spot will appear dark on the side, having illumination in excess when seen from the
other side. Then, the observer will adjust the position of photometer head in such a way
that until the semitransparent spot and the opaque parts of the paper are equally bright
then the grease spot is invisible, i.e., same contrast in brightness is got between the spot
and the disc when seen from each sides as shown in Fig. 6.15. The distance of the
photometer from the two sources is measured. Hence, the candle power of test source is
then determined by using relation:
The use of two reflecting mirrors above the photometer head makes it perhaps the
accurate method, since the two sides of spot and position of the head can be viewed
simultaneously.
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The Contrast type is more accurate and therefore, extensively used in the photometric
measurements.
The photometer head essentially consists of screen made of plaster of Paris, two
mirrorsM1and M2, glass cube or compound prism, and a telescope.
The compound prism made up of two right-angled glass prisms held together, one of
which has sand blasted pattern on its face, i.e., principal surface as spherical with small
flat portion at the center and the other is perfectly plain. A typical Lumer–Brodhun
photometer head is shown in Fig. 6.16.
The two sides of the screen are illuminated by two sources such as the standard and test
lamps as shown in Fig. 6.16. The luminous flux lines emitting from the two sources
are falling on the screen directly and reflected by it onto the mirrors M1 and M2, which in
turn reflects the same onto the compound prism.
The light ray reflected by M1 is passing through the plain prism and the light ray
reflected byM2 is falling on the spherical surface of the other prism and is reflected again
which pass through the telescope. Thus, observer view the center portion of the circular
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area illuminated by the test lamp and the outer ring is illuminated by the standard lamp.
The positioning of the photometer head is adjusted in such away that the dividing line
between the center portion and the surrounding disappears. The disappearance of
dividing line indicates the same type of color of the test lamp and the standard lamp.
Now, the distance of photometer head from the two sources are measured and the
candle power or luminous intensity of test lamp can be calculated by using inverse
square law.
Similar to the equal brightness type photometer, it consists of a compound prism, which
is made up of two right-angled glass prism. The joining surfaces of the two right-angled
glass prisms are flat, but one of the prism has its hypotenuses surface etched away at
A,B, and C to get pattern of the type shown in Fig. 6.17.
As in case of equal brightness type, the light falling on the both sides of the screen
passes through the unetched portion of the joining surface and gets reflected at the
etched surfaces (A, B, and C). P and Q are the sheets of glass that give little reflected
light to maintain the difference between the illuminations of both the etched and the
unetched portions. If the illumination of the surfaces of the prism is different, then the
etched portion will have difference in illumination as compared to unetched portion.
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If the balance is got, the difference in illuminations of both etched and unetched
portions are same and equal to half of the circular area; then, the photometer head is
said to be in a balance position. When the balance position is altered, the difference or
the contrast in the illumination of area ‘C’ and its surrounding area decreases. In
addition, the contrast illumination area AB and the inner trapezium will increase.
Generally, in balanced position, the contrast is about 8%. The position of photometer
head is adjusted in such a way that the equal contrast is obtained between the etched
and the unetched portions. This contrast type of the head gives accuracy within 1%.
The flicker photometers are employed when two sources giving light of different colors
to be compared. The color contrast between two lights do not affect their working is the
unit feature of the flicker photometer. This is because the color contrast between the two
alternating fields of the light disappears at a lower speed of alternation than does a
contrast of brightness.
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Discharge lamps
In this method, the application of suitable voltage, known as ignition voltage, across the
two electrodes results in a discharge through the gas, this is accompanied by
electromagnetic radiation.
Here, candle power, i.e., the color intensity of the light emitted depends upon the nature
of the gas. These sources do not depend on the temperature for higher efficiencies.
Ex: Neon lamp, sodium vapor lamp, mercury vapor lamp, and florescent lamp.
1. What is light?
It is defined as the radiant energy from a hot body that produces the visual
sensation upon the human eye. It is expressed in lumen-hours and it analogous
to watt-hours, which denoted by the symbol ‘Q’.
2. Write the expression that shows the relation between solid angle and plane angle.
It is defined as the mean of the candle power of the source in all directions in
horizontal plane.
6. Define the MHCP.
It is defined as the mean of the candle power of the source in all directions in
all planes.
7. Define the MHSCP.
It is defined as the mean of the candle power of the source in all directions
above or below the horizontal plane.
8. What is the need of polar curves?
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The luminous flux emitted by a source can be determined from the intensity
distribution curve. But the luminous intensity or the candle power of any
practical lamp is not uniform in all directions due to its unsymmetrical shape.
The luminous intensity or the distribution of such sources can be determined
by polar curves.
9. List out the types of photometers used for the photometric measurements.
What is photometry?
The photo voltaic cell is most widely used one because of its simplicity and
associated circuits.
Define plane angle.
Solid angle is the angle subtended at a point in space by an area, i.e., the angle
enclosed in the volume formed by numerous lines lying on the surface and
meeting at the point. It is usually denoted by symbol ‘ω’, and is measured in
steradian.
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It is defined as the energy in the form of light waves radiated per second from a
luminous body. It is represented by the symbol ‘φ’ and measured in lumens.
Define luminous intensity.
Define illumination.
Illumination is defined as the luminous flux received by the surface per unit
area.
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UNIT 5
Various Illumination Methods
INTRODUCTION
Light plays major role in human life. Natural light restricted for some duration in a day, it is very
difficult to do any work by human being without light. So, it is necessary to have substitute for
natural light. Light from incandescent bodies produced electrically, which playing important role
in everyday life due to its controlled output, reliability, and cleanliness nowadays; various
sources are producing artificial light. Each source has its own characteristics and specific
importance.
Usually in a broad sense, based upon the way of producing the light by electricity, the sources of
light are classified into following four types.
The ionization of air present between the two electrodes produces an arc and provides intense
light.
Incandescent lamps
When the filaments of these lamps are heated to high temperature, they emit light that falls in the
visible region of wavelength. Tungsten-filament lamps are operating on this principle.
When an electric current is made to pass through a gas or metal vapor, it produces visible
radiation by discharge takes place in the gas vapor. Sodium and mercury vapor lamps operate on
this principle.
Fluorescent lamps
Certain materials like phosphor powders exposed to ultraviolet rays emits the absorbed energy
into visible radiations fall in the visible range of wavelength. This principle is employed in
fluorescent lamps.
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ARC LAMPS
In arc lamps, the electrodes are in contact with each other and are separated by some distance
apart; the electric current is made to flow through these two electrodes. The discharge is allowed
to take place in the atmosphere where there are the production of a very intense light and a
considerable amount of UV radiation, when an arc is struck between two electrodes.
The arcs maintain current and is very efficient source of light. They are used in search lights,
projection lamps, and other special purpose lamps such as those in flash cameras.
Carbon arc lamp consists of two hard rod-type electrodes made up of carbon. Two electrodes are
placed end to end and are connected to the DC supply. The positive electrode is of a large size
than that of the negative electrode. The carbon electrodes used with AC supply are of the same
size as that of the DC supply. The DC supply across the two electrodes must not be less than 45
V. When electric current passes through the electrodes are in contact and then withdrawn apart
about 2–3 mm an arc is established between the two rods.
The two edges of the rods becomes incandescence due to the high resistance offered by rods as
shown in Fig. 7.1 by transfer of carbon particles from one rod to the other. It is observed that
carbon particles transfer from the positive rod to the negative one. So that the positive electrode
gets consumed earlier than the negative electrode. Hence, the positive electrode is of twice the
diameter than that of the negative electrode.
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In case of AC supply, the rate of consumption of the two electrodes is same; therefore, the
cross-section of the two electrodes is same. A resistance ‘R’ is connected in series with the
electrode for stabilizing the arc. As current increases, the vaporizing rate of carbon increases,
which decreases the resistance so much, then voltage drop across the arc decreases. So, to
maintain the arc between the two electrodes, series resistance should be necessarily connected.
V = (39 + 2.8 l ) V,
where l is the length of the arc. The voltage drop across the arc is 60 V, the temperature of the
positive electrode is 3,500 – 4,200°C, and the temperature of the negative electrode is 2,500°C.
The luminous efficiency of such lamps is 9–12 lumens/W. This low luminous efficiency is due to
the service resistance provided in DC supply while in case of AC supply, an inductor is used in
place of a resistor. In carbon arc lamps, 85% of the light is given out by the positive electrode,
10% of the light is given out by the negative electrodes, and 5% of the light is given out by the
air.
The electrodes used in flame arc lamp are made up of 85% of carbon and 15% of fluoride. This
fluoride is also known as flame material; it has the efficient property that radiates light energy
from high heated arc stream. Generally, the core type electrodes are used and the cavities are
filled with fluoride. The principle of operation of the flame arc lamp is similar to the carbon arc
lamp. When the arc is established between the electrodes, both fluoride and carbon get vaporized
and give out very high luminous intensities. The color output of the flame arc lamps depends
upon the flame materials. The luminous efficiency of such lamp is 8 lumens/W. A simple flame
arc lamp is shown in Fig. 7.2. Resistance is connected in service with the electrodes to stabilize
the arc.
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The principle of the operation of the magnetic arc lamp is similar to the carbon arc lamp. This
lamp consists of positive electrode that is made up of copper and negative electrode that is made
up of magnetic oxide of iron. Light energy radiated out when the arc is struck between the two
electrodes. These are rarely used lamps.
INCANDESCENT LAMP
These lamps are temperature-dependent sources. When electric current is made to flow through a
fine metallic wire, which is known as filament, its temperature increases. At low temperatures, it
emits only heat energy, but at very high temperature, the metallic wire emits both heat and light
energy. These incandescent lamps are also known as temperature radiators.
The materials commonly used as filament for incandescent lamps are carbon, tantalum, tungsten,
and osmium.
The materials used for the filament of the incandescent lamp have the following properties.
7.4.2 Comparisons of carbon, osmium, tantalum, and tungsten used for making the
filament
Carbon
o Carbon has high melting point of 3,500°C; even though, its melting point is high, carbon starts
disintegration at very fast rate beyond its working temperature of 1,800°C.
o Its resistance decreases with increase in temperature, i.e., its temperature coefficient of resistivity is
negative, so that it draws more current from the supply. The temperature coefficient (α) is –0.0002 to –
0.0008.
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o The efficiency of carbon filament lamp is low; because of its low operating tem perature, large electrical
input is required. The commercial efficiency of carbon lamp is 3 – 4.5 lumens/W approximately.
o Carbon has high resistivity (ρ), which is about 1,000–7,000 μΩ-cm and its density is 1.7–3.5.
Osmium
Tantalum
Tungsten
In fact, the carbon lamp is the first lamp introduced by Thomas Alva Edison in 1879, owing to
two drawbacks, tungsten radiates more energy in visible spectrum and somewhat less in infrared
spectrum so that there was a switch over in infrared spectrum so that there was a switch over
from carbon filament to tungsten filament. Nowadays, tungsten filament lamps are widely used
incandescent lamps.
The chemically pure tungsten is very strong and fragile. In order to make it into ductile,
tungsten oxide is first reduced in the form of gray power in the atmosphere of hydrogen and this
powder is pressed in steel mold for small bars; the mechanical strength of these bars can be
improved by heating them to their melting point and then hammered at red-hot position and re-
rolled into wires.
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Construction
Figure 7.3 shows the construction of the pure tungsten filament incandescent lamp. It consists of
an evacuated glass bulb and an aluminum or brass cap is provided with two pins to insert the
bulb into the socket. The inner side of the bulb consists of a tungsten filament and the support
wires are made of molybdenum to hold the filament in proper position. A glass button is
provided in which the support wires are inserted. A stem tube forms an air-tight seal around the
filament whenever the glass is melted.
Operation
When electric current is made to flow through the fine metallic tungsten filament, its temperature
increases. At very high temperature, the filament emits both heat and light radiations, which fall
in the visible region. The maximum temperature at which the filament can be worked without
oxidization is 2,000°C, i.e., beyond this temperature, the tungsten filament blackens the inside of
the bulb. The tungsten filament lamps can be operated efficiently beyond 2,000°C, it can be
attained by inserting a small quantity of inert gas nitrogen with small quantity of organ. But if
gas is inserted instead of vacuum in the inner side of the bulb, the heat of the lamp is conducted
away and it reduces the efficiency of the lamp. To reduce this loss of heat by conduction and
convection, as far as possible, the filament should be so wound that it takes very little space. This
is achieved by using a single-coil filament instead of a straight wire filament as shown in Fig.
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7.4(a). This single-coil filament is used in vacuum bulbs up to 25 W and gas filled bulbs from
300 to 1,000 W.
On further development of the incandescent lamps, the shortening of the length of the filament
was achieved by adopting a coiled coil or a double coil filament as shown in Fig. 7.4(b). The use
of coiled coil filament not only improves the efficiency of the lamp but also reduces the number
of filament supports and thus simplified interior construction because the double coil reduces the
filament mounting length in the ratio of 1:25 as compared to the straight wire filaments.
Usually, the tungsten filament lamp suffers from ‘aging effect’, the output of the light an
incandescent lamp decreases as the lamp ages. The output of the light of the lamp decreases due
to two reasons.
o At very high temperature, the vaporization of filament decreases the coil diameter so that resistance of
the filament increases and hence its draws less current from the supply, so the temperature of the
filament and the light output of the bulb decrease.
o The current drawn from the mains and the power consumed by the filament decrease, which decrease
the efficiency of the lamp with the passage of time. In addition, the evaporation of the filament at high
temperature blackens the inside of the bulb.
The variations in normal supply voltages will affect the operating characteristics of incandescent
lamps. The performance characteristic of an incandescent lamp, when it is subjected to voltage
other than normal voltage, is shown in Fig. .
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With an increase in the voltage owing to the increase in the temperature, the luminous output
of the incandescent lamps, and the efficiency and power consumption, but its life span decreases.
The depreciation in the light output is around 15% over the useful life of the lamp. The above-
stated factors are related to the variations of voltage are given as:
Filament dimensions
Let us consider a lamp, which is connected to the mains, is given the steady light output, i.e.,
whatever the heat produced, it is dissipated and the filament temperature is not going to be
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increase further. It is found to be the existence of a definite relation between the diameter of a
given filament and the current through it.
where I is the current taken by the lamp A, a is the filament cross-section, sq. m, ρ is the
resistivity of the filament at working temperature Ω-m, l is the length of the filament m, andd is
the diameter of the filament.
Let the emissivity of the material be ‘e’. Total heat dissipated will depend upon the surface
area and the emissivity of the material
At the steady state condition, the power input should be equal to the heat dissipated. From
Equations (7.1) and (7.2), we can write that:
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If two filaments are made up of same material, working at same temperature and efficiency
but with different diameters, then from Equation (7.3):
If two filaments are working at the same temperature, then their luminous output must be same
even though their lengths are different.
Limitations
o Low efficiency.
o Colored light can be obtained by using different colored glass enclosures only.
DISCHARGE LAMPS
Discharge lamps have been developed to overcome the drawbacks of the incandescent lamp. The
main principle of the operation of light in a gaseous discharge lamp is illustrated as below.
In all discharge lamps, an electric current is made to pass through a gas or vapor, which
produces its illuminance. Normally, at high pressures and atmospheric conditions, all the gases
are poor conductors of electricity. But on application of sufficient voltage across the two
electrodes, these ionized gases produce electromagnetic radiation. In the process of producing
light by gaseous conduction, the most commonly used elements are neon, sodium, and mercury.
The wavelength of the electromagnetic radiation depends upon the nature of gas and the gaseous
pressure used inside the lamp. A simple discharge lamp is shown in Fig. 7.6.
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The production of light in the gaseous discharge lamps is based on the phenomenon of
excitation and ionization of gas or metal vapor present between the two electrodes of a discharge
tube.
When the potential between the two electrodes is equals to ionizing potential, gas or metal
vapor starts ionizing and an arc is established between the two electrodes. Volt–ampere
characteristics of the arc is negative, i.e., gaseous discharge lamp possess a negative resistance
characteristics. A choke or ballast is provided to limit high currents to a safe value. Here, the
choke serves two functions.
The use of choke will reduce the power factor (0.3–0.4) of all the gaseous lamps so that all the
discharge lamps should be provided with a condenser to improve the power factor. The nature of
the gas and vapor used in the lamp will affect the color affected of light.
1. The lamps that emit light of the color produced by discharge takes place through the gas or vapor
present in the discharge tube such as neon gas, sodium vapor, mercury vapor, etc.
Ex: Neon gas, sodium vapor lamp, and mercury vapor lamp.
2. The lamp that emits light of color depends upon the type of phosphor material coated inside the walls of
the discharge tube. Initially, the discharge takes place through the vapor produces UV radiation, then the
invisible UV rays absorbed by the phosphors and radiates light energy falls in the visible region. This
UV light causes fluorescence in certain phosphor materials, such lamps are known as fluorescent lamps.
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In general, the gaseous discharge lamps are superior to the tungsten filament lamps.
Drawbacks
1. The starting of the discharge lamps requires starters and transformers; therefore, the lamp circuitry is
complex.
2. High initial cost.
3. Poor power factor; therefore, the lamps make use of the capacitor.
4. Time required to give its full output brilliancy is more.
5. These lamps must be placed in particular position.
6. These lamps require stabilizing choke to limit current since the lamps have negative resistance
characteristics.
This is a cold cathode lamp, in which no filament is used to heat the electrode for starting.
Neon lamp consists of two electrodes placed at the two ends of a long discharge tube is shown
in Fig. 7.7.
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The discharge tube is filled with neon gas. A low voltage of 150 V on DC or 110 V on AC is
impressed across the two electrodes; the discharge takes place through the neon gas that emits
light or electro magnetic radiation reddish in color. The sizes of electrodes used are equal for
both AC and DC supplies. On DC, neon glow appear nearer to the negative electrode; therefore,
the negative electrode is made larger in size. Neon lamp electric circuit consists of a transformer
with high leakage reactance in order to stabilize the arc. Capacitor is used to improve the power
factor. Neon lamp efficiency is approximately 15–40 lumens/W. The power consumption of the
neon lamp is 5 W.
If the helium gas is used instead of neon, pinkish white light is obtained. These lamps are used
as night lamps and as indicator lamps and used for the determination of the polarity of DC mains
and for advertising purpose.
A sodium vapor lamp is a cold cathode and low-pressure lamp. A sodium vapor discharge lamp
consists of a U-shaped tube enclosed in a double-walled vacuum flask, to keep the temperature
of the tube within the working region. The inner U-tube consists of two oxide-coated electrodes,
which are sealed with the ends. These electrodes are connected to a pin type base construction of
sodium vapor lamp is shown in Fig. .
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This sodium vapor lamp is low luminosity lamp, so that the length of the lamp should be
more. In order to get the desired length, it is made in the form of a U-shaped tube. This longU-
tube consists of a small amount of neon gas and metallic sodium. At the time of start, the neon
gas vaporizes and develops sufficient heat to vaporize metallic sodium in the U-shaped tube.
Working
Initially, the sodium is in the form of a solid, deposited on the walls of inner tube. When
sufficient voltage is impressed across the electrodes, the discharge starts in the inert gas, i.e.,
neon; it operates as a low-pressure neon lamp with pink color. The temperature of the lamp
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increases gradually and the metallic sodium vaporizes and then ionizes thereby producing the
monochromatic yellow light. This lamp takes 10–15 min to give its full light output. The
yellowish output of the lamp makes the object appears gray.
In order to start the lamp, 380 – 450 V of striking voltage required for 40- and 100-W lamps.
These voltages can be obtained from a high reactance transformer or an auto transformer. The
operating power factor of the lamp is very poor, so that a capacitor is placed to improve the
power factor to above 0.8. More care should be taken while replacing the inner tube, if it is
broken, then sodium comes in contact with the moisture; therefore, fire will result. The lamp
must be operated horizontally or nearly so, to spread out the sodium well along the tube.
The efficiency of sodium vapor lamp is lies between 40 and 50 lumens/W. Normally, these
lamps are manufactured in 45-, 60-, 85- and 140-W ratings. The normal operating temperatures
of these lamps are 300°C. In general, the average life of the sodium vapor lamp is 3,000 hr and
such bulbs are not affected by voltage variations.
The average light output of the lamp is reduced by 15% due to aging. These lamps are mainly
used for highway and street lighting, parks, railway yards, general outdoor lighting, etc.
The working of the mercury vapor discharge lamp mainly depends upon the pressure, voltage,
temperature, and other characteristics that influence the spectral quality and the efficiency of the
lamp.
Generally used high-pressure mercury vapor lamps are of three types. They are:
1. MA type: Preferred for 250- and 400-W rating bulbs on 200–250-V AC supply.
2. MAT type: Preferred for 300- and 500-W rating bulbs on 200–250-V AC supply.
3. MB type: Preferred for 80- and 125-W rating bulbs and they are working at very high pressures.
MA type lamp
It is a high-pressure mercury vapor discharge lamp that is similar to the construction of sodium
vapor lamp. The construction of MA type lamp is shown in Fig. 7.9
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MA type lamp consists of a long discharge tube in ‘U’ shape and is made up of hard glass or
quartz. This discharge tube is enclosed in an outer tube of ordinary glass. To prevent the heat
loss from the inner bulb, by convection, the gap between the two tubes is completely evacuated.
The inner tube contains two main electrodes and an auxiliary starting electrode, which is
connected through a high resistance of about 50 kΩ. It also contains a small quantity of argon
gas and mercury. The two main electrodes are tungsten coils coated with electron emitting
material (such as thorium metal).
Working
Initially, the tube is cold and hence the mercury is in condensed form. Initially, when supply is
given to the lamp, argon gas present between the main and the auxiliary electrodes gets
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ionized, and an arc is established, and then discharge takes place through argon for few minutes
between the main and the auxiliary electrodes. As a result, discharge takes place through argon
for few minutes in between the main and the auxiliary electrodes. The discharge can be
controlled by using high resistance that is inserted in-series with the auxiliary electrode. After
few minutes, the argon gas, as a whole, gets ionized between the two main electrodes. Hence, the
discharge shifts from the auxiliary electrode to the two main electrodes. During the discharge
process, heat is produced and this heat is sufficient to vaporize the mercury. As a result, the
pressure inside the discharge tube becomes high and the voltage drop across the two main
electrodes will increases from 20 to 150 V. After 5–7 min, the lamp starts and gives its full
output.
Initially, the discharge through the argon is pale blue glow and the discharge through the
mercury vapors is greenish blue light; here, choke is provided to limit high currents and capacitor
is to improve the power factor of the lamp.
If the supply is interrupted, the lamp must cool down and the vapor pressure be reduced before
it will start. It takes approximately 3 – 4 min. The operating temperature of the inner discharge
tube is about 600°C. The efficiency of this type of lamp is 30–40 lumens/W. These lamps are
manufactured in 250 and 400 W ratings for use on 200–250 V on AC supply.
Generally, the MA type lamps are used for general industrial lighting, ports, shopping centers,
railway yards, etc.
This is another type of mercury vapor lamp that is manufactured in 300 and 500 W rating for use
on AC as well as DC supplies. The construction of the MAT type lamp is similar to the MA type
lamp except the outer tube being empty; it consists of tungsten filament so that at the time of
starting, it works as a tungsten filament lamp. Here, the filament itself acts as a choke or ballast
to limit the high currents to safer value.
When the supply is switched on, it works as a tungsten filament lamp, its full output is given
by the outer tube. At this time, the temperature of the inner discharge tube increases gradually,
the argon gas present in it starts ionizing in the discharge tube at any particular temperature is
attained then thermal switch gets opened, and the part of the filament is detached and voltage
across the discharge tube increases. Now, the discharge takes place through the mercury vapor.
Useful color effect can be obtained by this lamp. This is because of the combination of light
emitted form the filament and blue radiations from the discharge tube. In this type of lamp,
capacitor is not required since the overall power factor of the lamp is 0.95; this is because the
filament itself acts as resistance. Fig. 7.10 shows the construction of MAT type lamp.
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MB type lamp
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The MB type lamp is also similar to the MA type lamp. The inner discharge tube for the MB
type lamp is about 5 -cm long and is made up of quartz material. It has three electrodes; two
main and one auxiliary electrodes. There are three electrodes present in the MB type lamp,
namely two main electrodes and one auxiliary electrode. Relatively, very high pressure is
maintained inside the discharge tube and it is about 5–10 times greater than atmospheric
pressure. The outer tube is made with pearl glass material so as to withstand high temperatures.
We can use these tubes in any position, because they are made up of special glass material.
The working principle of the MB type lamp is similar to the MA type lamp. These lamps are
manufactured in 300 and 500 W rating for use in AC as well as DC supplies. An MB type lamp
consists a bayonet cap with three pins, so it may not be used in an ordinary sense. A choke coil
and a capacitor are necessary for working with these types of lamps.
Fluorescent lamp is a hot cathode low-pressure mercury vapor lamp; the construction and
working of the fluorescent lamp are explained as follows.
Construction
It consists of a long horizontal tube, due to low pressure maintained inside of the bulb; it is made
in the form of a long tube.
The tube consists of two spiral tungsten electrode coated with electron emissive material and
are placed at the two edges of long tube. The tube contains small quantity of argon gas and
certain amount of mercury, at a pressure of 2.5 mm of mercury. The construction of fluorescent
lamp is shown in Fig. 7.12. Normally, low-pressure mercury vapor lamps suffer from low
efficiency and they produce an objectionable colored light. Such drawback is overcome by
coating the inside of the tube with fluorescent powders. They are in the form of solids, which are
usually knows as phosphors.
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A glow starter switch contains small quantity of argon gas, having a small cathode glow lamp
with bimetallic strip is connected in series with the electrodes, which puts the electrodes directly
across the supply at the time of starting. A choke is connected in series that acts as ballast when
the lamp is running, and it provides a voltage impulse for starting. A capacitor of 4μF is
connected across the starter in order to improve the power factor.
Working
At the time of starting, when both the lamp and the glow starters are cold, the mercury is in the
form of globules. When supply is switched on, the glow starter terminals are open circuited and
full supply voltage appeared across these terminals, due to low resistance of electrodes and
choke coil. The small quantity of argon gas gets ionized, which establishes an arc with a starting
glow. This glow warms up the bimetallic strip thus glow starts gets short circuited. Hence, the
two electrodes come in series and are connected across the supply voltage. Now, the two
electrodes get heated and start emitting electrons due to the flow of current through them. These
electrons collide with the argon atoms present in the long tube discharge that takes place through
the argon gas. So, in the beginning, the lamp starts conduction with argon gas as the temperature
increases, the mercury changes into vapor form and takes over the conduction of current.
In the mean time, the starter potential reaches to zero and the bimetallic strip gets cooling
down. As a result, the starter terminals will open. This results breaking of the series circuit. A
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very high voltage around 1,000 V is induced, because of the sudden opening of starter terminals
in the series circuit. But in the long tube, electrons are already present; this induced voltage is
quite sufficient to break down the long gap. Thus, more number of electrons collide with argon
and mercury vapor atoms. The excited atom of mercury gives UV radiation, which will not fall
in the visible region.
Meanwhile, these UV rays are made to strike phosphor material; it causes the re-emission of
light of different wavelengths producing illumination. The phenomenon of the emission is called
as luminescence.
1. Fluorescence: In this case, the excitation presents for the excited periods only.
2. Phosphorescence: In this case, even after the exciting source is removed, the excitation will present.
In a lamp, the re-emission of light causes fluorescence, then such lamp is known asfluorescent
lamp.
Depending upon the type of phosphor material used, we get light of different colors as given
in Table. .
o High efficiency.
o The life of the lamp is three times of the ordinary filament lamp.
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Although the fluorescent lamp has the above advantages, it sufferers form the following
disadvantages:
Stroboscopic effect
We all know that because of ‘the alternating nature of supply, it crosses zero two times in a
cycle’. For 50-Hz frequency supply of the alternating current, a discharge lamp will be
extinguished twice in a cycle and 100 times per second (for 50-Hz supply). A human eye cannot
identify this extinguish phenomenon, because of the persistence of vision. If this light falls upon
a moving object, the object appearing like slow moving or fast moving or moving in reverse
direction, sometimes stationary. This effect is due to the extinguishing nature of the light of the
lamp. This effect is called as ‘stroboscopic effect’.
This effect can be avoided by employing any of the two techniques listed below.
1. If we have three-phase supply, then the fluorescent lamps that are adjacent should be fed from different
phases. Then, no two lamps will not be in same phase at zero instant of AC supply, so light is present at any
instant.
2. If the available supply is single phase, then twin tube circuitry as shown in Fig. 7.13, we can eliminate
stroboscopic effect.
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Twin tube circuit is also known as lead–lag circuit. Here two tubes are connected in parallel.
One of the two tubes provided with a capacitor in series with the choke coil. The current through
the lamps is almost 90° out of phase and under these conditions, the light output of one of the
lamps is at maximum. Moreover, the overall power factor of lamps is unity. In this lead–lag
arrangement, one of the lamps is operating at 0.5 lagging, the other, provided with capacitor, is
operating at 0.5 leading.
In general, the life of a fluorescent lamp is about 7,500 hr. Based on the operating conditions,
the lamp's actual life can be varied from 5,000 to 10,000 hr. It is recommended to replace a lamp
after 4,000–5,000 of its working hours.
2. Fluctuation in supply voltage has less effect on light 2. Fluctuations in supply voltage has comparatively
output, as the variations in voltage are absorbed in choke. more effect on the light output.
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3. It radiates the light; the color of which resembles the 3. It does not give light close to the natural light.
natural light.
5. The luminous efficiency of the lamp is high that is about 5. The luminous efficiency is poor, which is about 8–
8 – 40 lumens/W. 10 lumen/W.
6. Different color lights can be obtained by using different 6. Different color lights can be obtained by using
colored glasses. different composition of fluorescent powder.
8. The reduction in light output of the lamp is comparatively 8. The reduction in light output of the lamp is
high, with the time. comparatively low, with the lamp.
9. The working temperature is about 2,000°C. 9. The working temperature is about 50°C.
10. The normal working life is 1,000 hr. 10. The normal working life is 5,000–7,500 hr.
12. These lamps are widely used for domestic, industrial, 12. They find wide application in domestic, industrial,
and street lighting. and floodlighting.
13. The luminous efficiency increases with the increase in 13. The luminous efficiency increase with the increase
the voltage of the lamp. in voltage and the increase in the length of tube.
When light strikes the surface of an object, based on the properties of that surface, some portion
of the light is reflected, some portion is transmitted through the medium of the surface, and the
remaining is absorbed.
The method of light control is used to change the direction of light through large angle. There
are four light control methods. They are:
1. reflection,
2. refraction,
3. riffusion, and
4. absorption.
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Reflection
The light falling on the surface, whole of the light will not absorbed or transmitted through the
surface, but some of the light is reflected back, at an angle equals to the angle of incidence. The
ratio of reflected light energy to the incident light energy is known as reflection factor. The two
basic types of reflection are:
Specular reflection
When whole of the light falling on a smooth surfaces will be reflected back at an angle equal to
the angle of incidence. Such a reflection is known as specular reflection. With such reflection,
observer will be able to see the light source but not the illuminated surface. Most of the surfaces
causing the specular reflection are silvered mirrors, highly polished metal surfaces. Specular
reflection is shown in Fig. 7.17.
Diffuse reflection
When the light ray falling on any surface, it is scattered in all directions irrespective of the angle
of incidence. Such type of reflector is known as diffuse reflection and is shown in Fig. 7.18. Most
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of the surfaces causing the diffuse reflection are rough or matt surfaces such as blotting paper,
frosted glass, plaster, etc.
In this reflection, observer will be able to see the illuminated surface but not the light source.
Refraction
When a beam of light passes through two different mediums having different densities, the light
ray will be reflected. This phenomenon is known as refraction.
Figure 7.19 shows the refraction of light ray from dense medium to rare medium
where μ1 andμ2 are the refractive indices of two medium, θ is the angle of incidence, and α is the
angle of reflection.
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The angle of light ray with normal is comparatively less in dense medium than in rare
medium.
Diffusion
When a ray of light falling on a surface is reflected in all possible directions, so that such surface
appears luminous from all possible directions. This can be achieved with a diffusing glass screen
introduced between the observer and the light source. The normally employed diffusing glasses
are opal glass and frosted glass. Both are ordinary glasses, but frosted glass is an ordinary glass
coated with crystalline substance.
Although frosted glass is cheaper than opal glass, the disadvantage of frosted glass is, it
collects more dust particles and it is difficult to clean.
Absorption
In some of the cases, whole of the light emitted by tungsten filament lamp will be excessive, so
that it is necessary to avoid that the amount of unwanted wavelengths without interference. This
can be achieved by using a special bluish colored glass for the filament lamp to absorb the
unwanted radiation.
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Usually, with the reflector and some special diffusing screens, it is possible to control the
distribution of light emitted from lamps up to some extent. A good lighting scheme results in an
attractive and commanding presence of objects and enhances the architectural style of the
interior of a building. Depending upon the requirements and the way of light reaching the
surface, lighting schemes are classified as follows:
1. direct lighting,
2. semidirect lighting,
3. indirect lighting,
4. semi-indirect lighting, and
5. general lighting.
Direct lighting scheme is most widely used for interior lighting scheme. In this scheme, by using
deep reflectors, it is possible to make 90% of light falls just below the lamp. This scheme is more
efficient but it suffers from hard shadows and glare. Hence, while designing such schemes, all
the possibilities that will cause glare on the eye have to be eliminated. It is mainly used for
industrial and general outdoor lighting.
In semidirect lighting scheme, about 60–90% of lamps luminous flux is made to fall downward
directly by using some reflectors and the rest of the light is used to illuminate the walls and
ceiling. This type of light scheme is employed in rooms with high ceiling. Glare can be avoided
by employing diffusing globes. This scheme will improve not only the brightness but also the
efficiency.
In this lighting scheme, 90% of total light is thrown upwards to the ceiling. In such scheme, the
ceiling acts as the lighting source and glare is reduced to minimum.
This system provides shadowless illumination, which is very useful for drawing offices and in
workshops where large machines and other difficulties would cause trouble some shadows if
direct lighting schemes were used.
In semi-indirect lighting scheme, about 60–90% of light from the lamp is thrown upwards to the
ceiling and the remaining luminous flux reaches the working surface. Glare will be completely
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eliminated with such type of lighting scheme. This scheme is widely preferred for indoor lighting
decoration purpose.
This scheme of lighting use diffusing glasses to produce the equal illumination in all directions.
Mounting height of the source should be much above eye level to avoid glare. Lamp fittings of
various lighting schemes are shown in Fig. 7.20.
While designing a lighting scheme, the following factors should be taken into consideration.
1. Illumination level.
2. The size of the room.
3. The mounting height and the space of fitting.
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STREET LIGHTING
Street lighting not only requires for shopping centers, promenades, etc. but also necessary for the
following.
o In order to make the street more attractive, so that obstructions on the road clearly visible to the drivers
of vehicles.
o To increase the community value of the street.
o To clear the traffic easily in order to promote safety and convenience.
The basic principles employed for the street lighting are given below.
1. Diffusion principle.
2. The specular reflection principle.
Diffusion principle
In this method, light is directed downwards from the lamp by the suitably designed reflectors.
The design of these reflectors are in such a way that they may reflect total light over the road
surface uniformly as much as possible. The reflectors are made to have a cutoff between 30° and
45°, so that the filament of the lamp is not visible expect just below the source, which results in
eliminating glare. Illumination at any point on the road surface is calculated by applying inverse
square low or point-by-point method.
The specular reflection principle enables a motorist to see an object about 30 m ahead. In this
case, the reflectors are curved upwards, so that the light is thrown on the road at a very large
angle of incidence. This can be explained with the help of Fig. 7.21. An object resides over the
road at ‘P’ in between the lamps S1, S2, and S3 and the observer at ‘Q’.
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Thus, the object will appear immediately against the bright road surface due to the lamps at a
longer distance. This method of lighting is only suitable for straight sections along the road. In
this method, it is observed that the objects on the roadway can be seen by a smaller expenditure
of power than by the diffusion method of lighting.
Illumination level, mounting height, and the types of lamps for street lighting
Normally, illumination required depends upon the class of street lighting installation. The
illumination required for different areas of street lighting are given in Table 7.3.
2
Area Illumination (lumen/m )
Mercury vapor and sodium vapor discharge lamps are preferable for street lighting since the
overall cost of the installation of discharge lamps are less than the filament lamps and also the
less power consumption for a given amount of power output. Normal spacing for the standard
lamps is 50 m with a mounting height of 8 m. Lamp posts should be fixed at the junctions of
roads.
FLOODLIGHTING
Floodlighting means flooding of large surface areas with light from powerful projectors. A
special reflector and housing is employed in floodlighting in order to concentrate the light
emitted from the lamp into a relatively narrow beam, which is known as floodlight projector.
This projector consists of a reflecting surface that may be a silvered glass or chromium plate or
stainless steel. The efficiency of silvered glass and polished metal are 85–90% and 70%,
respectively. Usually metal reflectors are robust; therefore, they can be preferred. An important
application of illumination engineering is the floodlighting of large and open areas. It is
necessary to employ floodlighting to serve one or more of the following purposes.
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There are so many methods have been employed for lighting calculation, some of those methods
are as follows.
1. Watts-per-square-meter method.
2. Lumen or light flux method
3. Point-to-point method
Solution:
= 200 m2.
UF = 0.5, DF = 1.
∴ Maintenance factor,
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Example 7.2: The front of a building 35 × 18 m is illuminated by 15 lamps; the wattage of each
lamp is 80 W. The lamps are arranged so that uniform illumination on the surface is obtained.
Assuming a luminous efficiency of 20 lumens/W, the coefficient of utilization is 0.8, the waste
light factor is 1.25, DF = 0.9. Determine the illumination on the surface.
Solution:
UF = 0.8, DF = 0.9.
Example 7.3: A room of size 10 × 4 m is to be illuminated by ten 150-W lamps. The MSCP of
each lamp is 300. Assuming a depreciation factor of 0.8 and a utilization factor of 0.5. Find the
average illumination produced on the floor.
Solution:
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Solution:
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Solution:
Given data
E = 40 lux
A = 16 × 12 = 192 m2
Number of lamps, N = 15
UF = 0.4, MF = 1
Solution:
Given data:
η = 120 lumens/W
E = 150 lux
A = 18 × 12 = 216 m2
UF = 0.6
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MF = 0.75
Let, if 24 lamps are arranged to illuminate the desired area. For space to height ratio unity, i.e., 6
lamps are taken along the length with a space of 18/6 = 3m, and 4 lamps are along the width
giving a space of 12/4 = 3 m.
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Solution:
Given data:
E = 200 lumens/m2
CU = 0.6
DF = 1.6
Efficiency η = 25 lumens/W
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Let us arrange 44 lamps in a 30 × 30 m hall, by taking 11 lamps along the length with spacing
30/11 = 2.727 m and 4 lamps along the width with spacing 20/4 = 5m. Here the space to height
ratio with this arrangement is, 2.727/5 = 0.545. Disposition of lamps is shown in Fig. P.7.2.
Example 7.8: A hall 40-m long and 16-m wide is to be illuminated and illumination required is
70-m candles. Five types of lamps having lumen outputs, as given below are available.
Taking a depreciation factor of 1.5 and a utilization coefficient of 0.7, calculate the number of
lamps required in each case to produce required illumination. Out of above five types of lamps,
select most suitable type and design, a suitable scheme, and make a sketch showing location of
lamps. Assume a suitable mounting height and calculate space to height ratio of lamps.
Solution:
Given data:
DF = 1.5
CU = 0.7
E = 50-m candle
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Here, 10 lamps are arranged in two rows, each row having 5 lamps. By taking 5 lamps along
the length with spacing 4058=m and 2 lamps along width side with spacing 16/2 = 8m, i.e., space
to height ratio = 8/8 = 1.
Among the other lamps, some of wattage lamps require more number of lamp fittings and some
other lamps will be few in requirement giving space–height ratio much more than re
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UNIT 6
Electric Traction-I
INTRODUCTION
The system that causes the propulsion of a vehicle in which that driving force or
tractive force is obtained from various devices such as electric motors, steam
engine drives, diesel engine dives, etc. is known as traction system.
Traction system may be broadly classified into two types. They are electric-
traction systems, which use electrical energy, and non-electric traction system,
which does not use electrical energy for the propulsion of vehicle.
o Ideal traction system should have the capability of developing high tractive effort in
order to have rapid acceleration.
o The speed control of the traction motors should be easy.
o Vehicles should be able to run on any route, without interruption.
o Equipment required for traction system should be minimum with high efficiency.
o It must be free from smoke, ash, durt, etc.
o Regenerative braking should be possible and braking should be in such a way to cause
minimum wear on the break shoe.
o Locomotive should be self-contained and it must be capable of withstanding overloads.
o Interference to the communication lines should be eliminated while the locomotive
running along the track.
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o No need of storage of coal and water that in turn reduces the maintenance cost as well
as the saving of high-grade coal.
o Electric energy drawn from the supply distribution system is sufficient to maintain the
common necessities of locomotives such as fans and lights; therefore, there is no need
of providing additional generators.
o The maintenance and running costs are comparatively low.
o The speed control of the electric motor is easy.
o Regenerative braking is possible so that the energy can be fed back to the supply
system during the braking period.
o In electric traction system, in addition to the mechanical braking, electrical braking can
also be used that reduces the wear on the brake shoes, wheels, etc.
o Electrically operated vehicles can withstand for overloads, as the system is capable of
drawing more energy from the system.
In addition to the above advantages, the electric traction system suffers from the
following drawbacks:
In olden days, first traction system was introduced by Britain in 1890 (600-V DC
track). Electrification system was employed for the first traction vehicle. This
traction system was introduced in India in the year 1925 and the first traction
system employed in India was from Bombay VT to Igatpuri and Pune, with 1,500-
V DC supply. This DC supply can be obtained for traction from substations
equipped with rotary converters. Development in the rectifiers leads to the
replacement of rotary converters by mercury arc rectifiers. But nowadays further
development in the technology of semiconductors, these mercury arc valves are
replaced by solid-state semiconductors devices due to fast traction system was
introduced on 3,000-V DC. Further development in research on traction system by
French international railways was suggested that, based on relative merits and
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SYSTEM OF TRACTION
Traction system is normally classified into two types based on the type of energy
given as input to drive the system and they are:
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Self-contained locomotives
Advantages
o As these are no overhead distribution system, initial cost is low.
o Easy speed control is possible.
o Power loss in speed control is very low
o Time taken to bring the locomotive into service is less.
o In this system, high acceleration and braking retardation can be obtained compared to
steam locomotives.
o The overall efficiency is high compared to steam locomotives.
Disadvantages
This system of traction is used in road vehicles such as heavy lorries and buses.
These vehicles are capable of handling overloads. At the same time, this system
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provides fine and smooth control so that they can run along roads without any
jerking.
Battery drives
Vehicles in electrical traction system that receives power from over head
distribution network fed or substations with suitable spacing. Based on the
available supply, these groups of vehicles are further subdivided into:
1. System operating with DC supply. Ex: tramways, trolley buses, and railways.
2. System operating with AC supply. Ex: railways.
In case if the available supply is DC, then the necessary propelling power can be
obtained for the vehicles from DC system such as tram ways, trolley buses, and
railways.
Tramways: Tramways are similar to the ordinary buses and cars but only the
difference is they are able to run only along the track. Operating power supply for
the tramways is 500-V DC tramways are fed from single overhead conductor acts
as positive polarity that is fed at suitable points from either power station or
substations and the track rail acts as return conductor.
The equipment used in tramways is similar to that used in railways but with
small output not more than 40–50 kW. Usually, the tramways are provided with
two driving axels to control the speed of the vehicles from either ends. The main
drawback of tramways is they have to run along the guided routes only. Rehostatic
and mechanical brakings can be applied to tramways. Mechanical brakes can be
applied at low speeds for providing better saturation where electric braking is
ineffective, during the normal service. The erection and maintenance costs of
tramways are high since the cost of overhead distribution structure is costlier and
sometimes, it may cause a source of danger to other road users.
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Trolley buses: The main drawback of tramways is, running along the track is
avoided in case of trolley buses. These are electrically operated vehicles, and are
fed usually 600-V DC from two overhead conductors, by means of two collectors.
Even though overhead distribution structure is costlier, the trolley buses are
advantageous because, they eliminate the necessity of track in the roadways.
Nowaday, based on the available supply, the track electrification system are
categorized into.
1. DC system.
2. Single-phase AC system.
3. Three-phase AC system.
4. Composite system.
1 DC system
In this system of traction, the electric motors employed for getting necessary
propelling torque should be selected in such a way that they should be able to
operate on DC supply. Examples for such vehicles operating based on DC system
are tramways and trolley buses. Usually, DC series motors are preferred for
tramways and trolley buses even though DC compound motors are available where
regenerative braking is desired. The operating voltages of vehicles for DC track
electrification system are 600, 750, 1,500, and 3,000 V. Direct current at 600–750
V is universally employed for tramways in the urban areas and for many suburban
and main line railways, 1,500–3,000 V is used. In some cases, DC supply for
traction motor can be obtained from substations equipped with rotary converters to
convert AC power to DC. These substations receive AC power from 3-φ high-
voltage line or single-phase overhead distribution network. The operating voltage
for traction purpose can be justified by the spacing between stations and the type of
traction motors available. Theses substations are usually automatic and remote
controlled and they are so costlier since they involve rotary converting equipment.
The DC system is preferred for suburban services and road transport where stops
are frequent and distance between the stops is small.
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2 Single-phase AC system
In this system of track electrification, usually AC series motors are used for getting
the necessary propelling power. The distribution network employed for such
traction systems is normally 15–25 kV at reduced frequency of 163⅔ Hz or 25 Hz.
The main reason of operating at reduced frequencies is AC series motors that are
more efficient and show better performance at low frequency. These high voltages
are stepped down to suitable low voltage of 300–400 V by means of step-down
transformer. Low frequency can be obtained from normal supply frequency with
the help of frequency converter. Low-frequency operation of overhead
transmission line reduces the line reactance and hence the voltage drops directly
and single-phase AC system is mainly preferred for main line services where the
cost of overhead structure is not much importance moreover rapid acceleration and
retardation is not required for suburban services.
3 Three-phase AC system
In this system of track electrification, 3-φ induction motors are employed for
getting the necessary propelling power. The operating voltage of induction motors
is normally 3,000–3,600-V AC at either normal supply frequency or 16⅔-Hz
frequency.
Usually 3-φ induction motors are preferable because they have simple and robust
construction, high operating efficiency, provision of regenerative braking without
placing any additional equipment, and better performance at both normal and
seduced frequencies. In addition to the above advantages, the induction motors
suffer from some drawbacks; they are low-starting torque, high-starting current,
and the absence of speed control. The main disadvantage of such track
electrification system is high cost of overhead distribution structure. This
distribution system consists of two overhead wires and track rail for the third phase
and receives power either directly from the generating station or through
transformer substation.
Three-phase AC system is mainly adopted for the services where the output
power required is high and regeneration of electrical energy is possible.
4 Composite system
As the above track electrification system have their own merits and demerits, 1-
φ AC system is preferable in the view of distribution cost and distribution voltage
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can be stepped up to high voltage with the use of transformers, which reduces the
transmission losses. Whereas in DC system, DC series motors have most desirable
features and for 3-φ system, 3-φ induction motor has the advantage of automatic
regenerative braking. So, it is necessary to combine the advantages of the DC/AC
and 3-φ/1-φ systems. The above cause leads to the evolution of composite system.
1. Single-phase to DC system.
2. Single-phase to three-phase system or kando system.
Single-phase to DC system
In this system, the advantages of both 1-φ and DC systems are combined to get
high voltage for distribution in order to reduce the losses that can be achieved with
1-φ distribution networks, and DC series motor is employed for producing the
necessary propelling torque. Finally, 1-φ AC distribution network results minimum
cost with high transmission efficiency and DC series motor is ideally suited for
traction purpose. Normal operating voltage employed of distribution is 25 kV at
normal frequency of 50 Hz. This track electrification is employed in India.
In this system, 1-φ AC system is preferred for distribution network. Since single-
phase overhead distribution system is cheap and 3-φ induction motors are
employed as traction motor because of their simple, robust construction, and the
provision of automatic regenerative braking.
The voltage used for the distribution network is about 15–25 kV at 50 Hz. This
1-φ supply is converted to 3-φ supply through the help of the phase converters and
high voltage is stepped down transformers to feed the 3-φ induction motors.
Frequency converters are also employed to get high-starting torque and to achieve
better speed control with the variable supply frequency.
The general features of the electric motors used for traction purpose are:
1. Mechanical features.
2. Electrical features.
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Mechanical features
1. A traction motor must be mechanically strong and robust and it should be capable of
withstanding severe mechanical vibrations.
2. The traction motor should be completely enclosed type when placed beneath the
locomotive to protect against dirt, dust, mud, etc.
3. In overall dimensions, the traction motor must have small diameter, to arrange easily
beneath the motor coach.
4. A traction motor must have minimum weight so the weight of locomotive will
decrease. Hence, the load carrying capability of the motor will increase.
Electrical features
High-starting torque
A traction motor must have high-starting torque, which is required to start the
motor on load during the starting conditions in urban and suburban services.
Speed control
The speed control of the traction motor must be simple and easy. This is necessary
for the frequent starting and stopping of the motor in traction purpose.
Traction motors should be able to provide easy simple rehostatic and regenerative
braking subjected to higher voltages so that system must have the capability of
withstanding voltage fluctuations.
Temperature
The traction motor should have the capability of withstanding high temperatures
during transient conditions.
Overload capacity
The traction motor should have the capability of handling excessecive overloads.
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Parallel running
In traction work, more number of motors need to run in parallel to carry more load.
Therefore, the traction motor should have such speed–torque and current–torque
characteristics and those motors may share the total load almost equally.
Commutation
Traction motor should have the feature of better commutation, to avoid the
sparking at the brushes and commutator segments.
TRACTION MOTORS
No single motor can have all the electrical operating features required for traction.
But nowadays squirrel cage induction and synchronous motors are widely used
for traction because of the availability of reliable variable frequency semiconductor
inverters.
The squirrel cage induction motor has several advantages over the DC motors.
They are:
1. Robust construction.
2. Highly reliable.
3. Low maintenance and low cost.
4. High efficiency.
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Synchronous motor features lie in between the squirrel cage induction motor and
the DC motor. The main advantages of the synchronous motor over the squirrel
cage induction motor are:
1. The synchronous motors can be operated at leading power by varying the field
excitation.
2. Load commutated thyristor inverter is used in synchronous motors as compared to
forced commutation thyristor inverter in squirrel cage induction motors.
Even though such forced commutation reduces the weight and volume of induction
motor, the synchronous motor is less expensive.
1. DC series motor
1. DC series motor is having high-starting torque and having the capability of handling
overloads that is essential for traction drives.
2. These motors are having simple and robust construction.
3. The speed control of the series motor is easy by series parallel control.
4. Sparkless commutation is possible, because the increase in armature current increases
the load torque and decreases the speed so that the emf induced in the coils undergoing
commutation.
5. Series motor flux is proportional to armature current and torque. But armature current
is independent of voltage fluctuations. Hence, the motor is unaffected by the variations
in supply voltage.
6. We know that:
But the power output of the motor is proportional to the product of torque
and speed.
∴ Motor output
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That is motor input drawn from the source is proportional to the square
root of the torque. Hence, the series motor is having self-retaining
property.
7. If more than one motor are to be run in parallel, their speed–torque and current–torque
characteristics must not have wide variation, which may result in the unequal wear of driving
wheels.
2 DC shunt motor
From the characteristics of DC shunt motor, it is not suitable for traction purpose,
due to the following reasons:
1. DC shunt motor is a constant speed motor but for traction purpose, the speed of the
motor should vary with service conditions.
2. In case of DC shunt motor, the power output is independent of speed and is
proportional to torque. In case of DC series motor, the power output is proportional
to So that, for a given load torque, the shunt motor has to draw more power from
the supply than series motor.
3. For shunt motor, the torque developed is proportional to armature current (T ∝ Ia). So
for a given load torque motor has to draw more current from the supply.
4. The flux developed by shunt motor is proportional to shunt field current and hence
Example 9.1: A DC series motor drives a load. The motor takes a current of 13 A
and the speed is 620 rpm. The torque of the motor varies as the square of speed.
The field winding is shunted by a diverter of the same resistance as that of the field
winding, then determine the motor speed and current. Neglect all motor losses and
assume that the magnetic circuit is unsaturated.
Solution:
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I1 = Isel = Ia1 = 13 A.
After connecting field diverter, the field winding is shunted by the diverter of the
same refinance; so that:
According to given data, the torque varies as the square of the speed.
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All the losses are neglected, and assume that the supply voltage is constant.
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Solution:
N2 = 400 rpm.
Also T ∝ N2 (given)
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= V2 – 13.7(0.8) = V2 – 10.96.
∴ This is the new supply voltage required to raise the speed from 350 rpm to 400
rpm.
Solution:
IL1 = 20 A.
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as torque is constant
AC series motor
Practically, AC series motor is best suited for the traction purpose due to high-
starting torque (Fig. 9.1). When DC series motor is fed from AC supply, it works
but not satisfactorily due to some of the following reasons:
1. If DC series motor is fed from AC supply, both the field and the armature currents
reverse for every half cycle. Hence, unidirectional torque is developed at double frequency.
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2. Alternating flux developed by the field winding causes excessive eddy current loss,
which will cause the heating of the motor. Hence, the operating efficiency of the motor
will decrease.
3. Field winding inductance will result abnormal voltage drop and low power factor that
leads to the poor performance of the motor.
4. Induced emf and currents flowing through the armature coils undergoing commutation
will cause sparking at the brushes and commutator segments.
Hence, some modifications are necessary for the satisfactory operation of the DC
series motor on the AC supply and they are as follows:
1. In order to reduce the inductive reactance of the series field, the field winding of AC
series motor must be designed for few turns.
2. The decrease in the number of turns of the field winding reduces the load torque, i.e., if
field turns decrease, its mmf decrease and then flux, which will increase the speed, and
hence the torque will decrease. But in order to maintain constant load torque, it is
necessary to increase the armature turns proportionately.
3. If the armature turns increase, the inductive reactance of the armature would increase,
which can be neutralized by providing the compensating winding.
4. Magnetic circuit of an AC series motor should be laminated to reduce eddy current
losses.
5. Series motor should be operating at low voltage because high voltage low current
supply would require large number of turns to produce given flux.
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The operating characteristics of the AC series motor are similar to the DC series
motor. Weight of an AC series motor is one and a half to two times that of a DC
series motor. And operating voltage is limited to 300 V. They can be built up to the
size of several hundred kW for traction work.
At the time of starting operation, the power factor is low; so that, for a given
current, the torque developed by the AC motor is less compared to the DC motor.
Thus, the AC series motor is not suitable for suburban services with frequent stops
and preferred for main line service where high acceleration is not required.
The three-phase induction motors are generally preferred for traction purpose due
to the following advantages.
1. Low-starting torque.
2. High-starting current and complicated speed control system.
3. It is difficult to employ three-phase induction motor for a multiple-unit system used for
propelling a heavy train.
Three-phase induction motor draws less current when the motor is started at low
frequencies. When a three-phase induction motor is used, the cost of overhead
distribution system increases and it consists of two overhead conductors and track
rail for the third phase to feed power to locomotive, which is a complicated
overhead structure and if any person comes in contact with the third rail, it may
cause danger to him or her.
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The speed controller of induction motor becomes smooth and easy with the use
of thyristorized inverter circuits to get variable frequency supply that can be used
to control the speed of three-phase induction motor.
It is a special type of induction motor that gives linear motion instead of rotational
motion, as in the case of a conventional motor.
In case of linear induction motor, both the movement of field and the movement
of the conductors are linear.
A linear induction motor consists of 3-φ distributed field winding placed in slots,
and secondary is nothing but a conducting plate made up of either copper or
aluminum as shown in Fig. .
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The field system may be either single primary or double primary system. In
single primary system, a ferro magnetic plate is placed on the other side of the
copper plate; it is necessary to provide low reluctance path for the magnetic flux.
When primary is excited by 3-φ AC supply, according to mutual induction, the
induced currents are flowing through secondary and ferro magnetic plate. Now, the
ferro magnetic plate energized and attracted toward the primary causes to unequal
air gap between primary and secondary as shown in Fig. 9.2(a). This drawback can
be overcome by double primary system as shown in Fig. 9.2(b). In this system, two
primaries are placed on both the sides of secondary, which will be shorter in length
compared to the other depending upon the use of the motor.
When the operating distance is large, the length of the primary is made shorter
than the secondary because it is not economical to place very large 3-φ primary.
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Generally, the short secondary form of system is preferred for limited operating
distance, as shown in
When 3-φ primary winding is excited by giving 3-φ AC supply, magnetic field is
developed rotating at linear synchronous speed, Vs.
Vs = 2τ f m/s,
Note: here, the synchronous speed does not depend upon the number of poles but
depends upon the pole pitch and the supply frequency.
The flux developed by the field winding pulls the rotor same as to the direction of
the magnetic field linearly, which will reduce relative speed between field and
rotor plate. If the speed of the rotor plate is equal to the magnetic field, then the
field would be stationary when viewed from the rotor plate. If rotor plate is rotating
at a speed more than linear synchronous, the direction of a force would be
reversed, which causes regenerative braking.
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Advantages
1. Simple in construction.
2. Low initial cost.
3. Maintenance cost is low.
4. Maximum speed is not limited due centrifugal forces.
5. Better power to weight ratio.
Disadvantages
1. High cost of providing collector system.
2. Poor efficiency and low power factor, due to high currents drawn by the motor because
of large air gap.
Applications
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o Electromagnetic pumps.
Synchronous motor
The synchronous motor is one type of AC motor working based upon the principle
of magnetic lacking. It is a constant speed motor running from no-load to full load.
The construction of the synchronous motor is similar to the AC generator;
armature winding is excited by giving three-phase AC supply and field winding is
excited by giving DC supply. The synchronous motor can be operated at leading
and lagging power factors by varying field excitation.
o High efficiency.
o Low-initial cost.
o Power factor improvement of three-phase AC industrial circuits.
BRAKING
If at any time, it is required to stop an electric motor, then the electric supply must
be disconnected from its terminals to bring the motor to rest. In this method, even
though supply is cut off, the motor continue to rotate for long time due to inertia.
In some cases, there is delay in bringing the other equipment. So that, it is
necessary to bring the motor to rest quickly. The process of bringing the motor to
rest within the pre-determined time is known as braking.
Braking applied to bring the motor to rest position is of two types and they are:
1. Electric braking.
2. Mechanical braking.
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Electric braking
In this process of braking, the kinetic energy of the rotating parts of the motor is
converted into electrical energy which in turn is dissipated as heat energy in a
resistance or in sometimes, electrical energy is returned to the supply. Here, no
energy is dissipated in brake shoes.
Mechanical braking
In this process of braking, the kinetic energy of the rotating parts is dissipated in
the form of heat by the brake shoes of the brake lining that rubs on a wheel of
vehicle or brake drum.
Disadvantages
In addition to the above advantages, the electric braking suffers from the following
disadvantages.
o During the braking period, the traction motor acts generator and electric brakes can
almost stop the motor but it cannot hold stationary. Hence, it is necessary to employ
mechanical braking in addition to electric braking.
o Traction motor has to work as a generator during braking period. So that, motor has to
select in such a way that it should have suitable braking characteristics.
o The initial cost of the electric braking equipment is costlier.
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Electric braking can be applied to the traction vehicle, by any one of the following
methods, namely:
1. Plugging.
2. Rehostatic braking.
3. Regenerative braking.
Plugging
In this method of braking, the electric motor is reconnected to the supply in such a
way that it has to develop a torque in opposite direction to the movement of the
rotor. Now, the motor will decelerates until zero speed is zero and then accelerates
in opposite direction. Immediately, it is necessary to disconnect the motor from the
supply as soon as system comes to rest.
The main disadvantage of this method is that the kinetic energy of the rotating
parts of the motor is wasted and an additional amount of energy from the supply is
required to develop the torque in reverse direction, i.e., in this method, the motor
should be connected to the supply during braking. This method can be applied to
both DC and AC motors.
Pulling is nothing but reverse current braking. This method of braking can be
applied to both DC shunt and DC series motors by reversing either the current
through armature or the field winding in order to produce the torque in apposite
direction, but not both. The connection diagrams for both DC shunt and DC series
motors during normal and braking periods are given as follows.
The connection diagram for normal running conditions of both DC shunt and DC
series motors are shown in Figs. 9.4 (a) and 9.5 (a). The back emf developed by the
motor is equal in magnitude and same as to the direction of terminal or supply
voltage. During the braking, the armatures of both shunt and series motors are
reversed as shown in Fig. 9.4 (b) and Fig. 9.5 (b). Now, the back emf developed by
the motor direction of terminal voltage. A high resistance ‘R’ is connected in series
with the armature to limit high-starting current during the braking period.
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where V is the supply voltage, Eb is the back emf, and Ra is the armature resistance.
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where and .
We know that, in case of series motor flux (φ) developed by the winding is
depending the current flowing through it.
During the normal operating condition, the rotating magnetic field developed by
the stator and the rotation of rotor are in the same direction. But during the braking
period, plugging is applied to an induction motor by reversing any two phases of
the three phases of stator winding in order to change the direction of the rotating
magnetic field as shown in Fig. 9.6. So that, the rotating magnetic filed and the
rotor will be rotating in opposite direction. So that, the relative speed between emf
and rotor is nearly twice the synchronous speed Ns –(–Ns) = 2Ns.
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But the voltage induced in the rotor (E2) is proportional to the slip (S ) × stator
voltage (V):
∴ E2 ∝ SV.
So, the rotor voltage during the braking period is twice the normal voltage. To
avoid the damage of the rotor winding, it should be provided with additional
insulation, to withstand the high induced voltage.
The rotation of the magnetic field in the reverse direction produce torque in
reverse direction; thereby applying the brakes to the motor. The braking of
induction motor can be analyzed by the torque–slip characteristics shown in Fig.
9.7.
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The characteristic curve for the rotor current and the rotor voltage with the
variation of the slip is shown in Fig. 9.8.
Normally, the stator winding of the synchronous motor is fed with 3-φ AC supply
to produce the rotating magnetic field that induces stator poles. And, the field
winding is excited by giving the DC supply thereby inducing the rotor poles. At
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any instant, the stator poles gets locked with the rotor poles and the synchronous
motor rotating at the synchronous speed. In this method of plugging applied to
synchronous motor, simply it is not possible to produce the counter torque during
the braking period by interchanging any two of three phases. This is due to the
magnetic locking of stator and rotor poles (Fig. 9.9).
In order to develop the counter torque, the rotor of synchronous motor should be
provided with damper winding. The EMF induced in the damper winding
whenever there is any change, i.e., the reversal of the direction of the stator field.
Now, according to Lenz's law, the emf induced in the damper winding opposes the
change which producing it. This emf induced in the damper winding produces the
circulating current to produce the torque in the reverse direction. This torque is
known as braking torque. This braking torque helps to bring the motor to rest.
In this method of braking, the electric motor is disconnected from the supply
during the braking period and is reconnected across same electrical resistance. But
field winding is continuously excited from the supply in the same direction. Thus,
during the starts working as generator during the braking period and all the kinetic
energy of the rotating parts is converted into electric energy and is dissipated
across the external resistance.
One of the main advantages of the rehostatic braking is electrical energy is not
drawn by the motor during braking period compared to plugging. The rehostatic
braking can be applied to various DC and AC motors.
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The rheostatic braking can be applied to both DC shunt and DC series motors, by
disconnecting the armature from the supply and reconnecting it across and external
resistance. This is required to dissipate the kinetic energy of all rotating parts
thereby brining the motor to rest.
DC shunts motor
Figure 9.10 shows the connection diagram of the DC shunt motor during both
normal and braking conditions. In case of DC shunt motor, both armature and field
windings are connected across the DC supply, as shown in Fig. 9.10 (a.)
During the braking period, the armature is disconnected from the supply and
field winding is continuously excited by the supply in the same direction, as shown
in Fig. 9.10 (b). The kinetic energy of all rotating parts is dissipated in the resistor
‘R’ now the machine starts working as generator. Now, braking developed is
proportional to the product of the field and the armature currents. But the shunt
motor flux remains constant, so the braking torque is proportional to armature
current at low-speeds braking torque is less and in order to maintain constant
braking torque, the armature is gradually disconnected. Hence, the armature
current remains same thereby maintaining the uniform braking torque.
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DC series motor
In case of DC series motor, both the field and armature windings are connected
across the resistance after disconnecting the same from the supply; current
directions of both the field and armatures are reversed. This results in the
production of torque in same direction as before. So, in order to produce the
braking torque only the direction of current in the armature has to be reversed. The
connection diagram of DC series is shown in Fig. 9.11.
If more than one motor has to be used as in electric traction. All motors can be
connected in equalizer connection as shown in Fig. 9.12. In this connection, one
machine is excited by the armature current of another machine.
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where Eb is the back emf developed, R is the external resistance, and Ra is the
armature resistance.
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DC series motor
1. During the braking period, the motor acts as generator by reversing the direction of
current flowing through the armature, but at the same time, the current flowing through the
field winding is also reversed; hence, there is no retarding torque. And, a short-circuit
condition will set up both back emf and supply voltage will be added together. So that, during
the braking period, it is necessary to reverse the terminals of field winding.
2. Some sort of compensating equipment must be incorporated to take care of large
change in supply voltage.
On doing some modifications during the braking period, the regenerative braking
can be applied to DC series motor. Any one of the following methods is used.
If one or more series motors are running in parallel, during the braking period, the
field windings, of all series motors, are connected across the supply in series with
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The main advantage of this method is, all armatures are connected in parallel and
current supplied to one machine is sufficient to excite the field windings of all the
machines, and the energy supplied by remaining all the machines is fed back to the
supply system, during the braking period.
Method-II
In this method, the exciter is provided to excite the field windings of the series
machine during the regenerative braking period. This is necessary to avoid the
dissipation of energy or the loss of power in the external resistance.
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energy to the main lines. A stabilizing resistance is used to control the braking
torque (Figs. 9.16 and 9.17).
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Method-III
In this method, the armature of exciter is connected in series. With the field
winding of series machine, this combination is connected across the stabilizing
resistance.
Here, the current flowing through stabilizing resistance is the sum of exciter
current and regenerated current by the series machines.
During the braking period, the regenerated current increases the voltage drop
across the stabilizing resistance, which will reduce the voltage across the armature
circuit and cause the reduction of the exciter current of the series machine field
winding. Hence, the traction motors operating as series generators.
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The main advantage of the induction motor is during the braking period; no need
of placing external resistance in the rotor circuit. The speed during the braking
remains almost constant and independent of the gradient and the weight of the
train.
This regenerative braking applied to an induction motor can save 20% of the
total energy leads the reduction of operating cost.
From the phasor diagram, the vector difference of and gives voltage across
iron-cored reactor RE1. Now, the armature current Ia lags by 90°. And, the
braking torque developed the series machine will be proportional to Ia cosφ. And,
the power returned to the supply is also proportional Ia cosφ. So that, proper phase
angle must be obtained for efficient braking effect arise in the regenerative braking
applied to an AC series motor are:
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o During the regenerative braking, the braking torque is proportional to the operating
power factor. In order to operate the series motor at high power factor field, winding
must be excited separately from other auxiliary devices.
o Proper phase-shifting device must be incorporated to ensure correct phase angle.
Normally, at the time of starting, the excessive current drawn by the electric motor
from the main supply causes to the effects. So that, it is necessary to reduce the
current drawn by the traction motor for its smooth control such as:
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Control of DC motors
At the time of starting, excessive current is drawn by the traction motor when rated
voltage is applied across its terminals. During the starting period, the current drawn
by the motor is limited to its rated current. This can be achieved by placing a
resistance in series with the armature winding. This is known as starting resistance;
it will be cut off during the normal running period thereby applying rated voltage
across its armature terminals. By the resistance of stating resistor, there is
considerable loss of energy takes place in it.
∴ At the time of switching on, the back emf developed by the motor Eb = 0.
where Vs is the voltage drop across starting resistance and IaRa is the voltage drop in
armature.
At the end of accelerating period, the total starting resistance will be cut off from
the armature then:
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2. Various drops during staring and running with negligible armature resistance.
When armature resistance is neglected Ra = 0 and ‘t’ is the time in seconds for
starting, then total energy supplied is, VaIat watts-sec and the energy wasted in the
starting resistance at the time of starting can be calculated from Fig. 9.21(b) as:
That is whatever the electrical energy supplied to the motor, half of the energy is
wasted during the starting resistor.
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AUXILIARY EQUIPMENT
Motor–generator set
Battery
It is very important to use the battery as a source of energy for pantograph, to run
auxiliary compressor, to operate air blast circuit breaker, etc. The capacity of
battery used in the locomotive is depending on the vehicle. Normally, the battery
may be charged by a separate rectifier.
Rectifier unit
If the track electrification system is AC motors and available traction motors are
DC motors, then rectifiers are to be equipped with the traction motors to convert
AC supply to DC to feed the DC traction motors.
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Transformer or autotransformer
All the driving motors are connected to the driving axle through a gear
arrangement, with ratios of 4:1 or 6:1.
TRANSMISSION OF DRIVE
Drive is a system used to create the movement of electric train. The electric
locomotives are specially designed to have springs between the driving axles and
the main body. This arrangement of springs reduces the damage not only to the
track wings but also to the hammer blows.
The power developed by the armature of the traction motors must be transferred
to the driving axels through pinion and gear drive. There are several methods by
which power developed by the armature can be transferred to the driving wheel.
Gearless drive
Direct drive
It is a simple drive. The armatures of the electric motors are mounted directly on
the driving axle with the field attached to the frame of locomotive. In this system,
the poles of electric motors should be flat so that the armature can be able to move
freely without affecting of the operation. Here, the size of the armatures of the
traction motor is limited by the diameter of the driving wheels. The arrangement of
direct drive is shown in fig,
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Quill is nothing but a hallow shaft. Driving axle is surrounded by the hollow shaft
attached by springs. The armature of the motor is mounted on a quill. The speed
and the size of the armature are limited by the diameter of the driving wheels.
Geared drive
In this drive, the armature of the traction motor is attached to the driving wheel
through the gear wheel system. Now, the power developed by the armature is
transferred to the driving wheel through the gear system. Here, gear drive is
necessary to reduce the size of the motor for given output at high speeds (Fig.
9.33). The gear ratio of the system is usually 3–5:1.
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In this drive, a special link is provided between the gear wheel and driving wheel,
which provides more flexibility of the system.
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UNIT-7,8
Electric Traction-II,III
INTRODUCTION
The movement of trains and their energy consumption can be most conveniently
studied by means of the speed–distance and the speed–time curves. The motion of
any vehicle may be at constant speed or it may consist of periodic acceleration and
retardation. The speed–time curves have significant importance in traction. If the
frictional resistance to the motion is known value, the energy required for motion
of the vehicle can be determined from it. Moreover, this curve gives the speed at
various time instants after the start of run directly.
TYPES OF SERVICES
There are mainly three types of passenger services, by which the type of traction
system has to be selected, namely:
In the main line service, the distance between two stops is usually more than 10
km. High balancing speeds should be required. Acceleration and retardation are not
so important.
Urban service
In the urban service, the distance between two stops is very less and it is less than 1
km. It requires high average speed for frequent starting and stopping.
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Suburban service
In the suburban service, the distance between two stations is between 1 and 8 km.
This service requires rapid acceleration and retardation as frequent starting and
stopping is required.
The curve that shows the instantaneous speed of train in kmph along the ordinate
and time in seconds along the abscissa is known as ‘speed–time’ curve.
The curve that shows the distance between two stations in km along the ordinate
and time in seconds along the abscissa is known as ‘speed–distance’ curve.
The area under the speed–time curve gives the distance travelled during, given
time internal and slope at any point on the curve toward abscissa gives the
acceleration and retardation at the instance, out of the two speed–time curve is
more important.
Typical speed–time curve of a train running on main line service is shown in Fig.
10.1. It mainly consists of the following time periods:
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During this period, the traction motor accelerate from rest. The curve ‘OA’
represents the constant accelerating period. During the instant 0 to T1, the current is
maintained approximately constant and the voltage across the motor is gradually
increased by cutting out the starting resistance slowly moving from one notch to
the other. Thus, current taken by the motor and the tractive efforts are practically
constant and therefore acceleration remains constant during this period. Hence, this
period is also called as notch up accelerating period or rehostatic accelerating
period. Typical value of acceleration lies between 0.5 and 1 kmph. Acceleration is
denoted with the symbol ‘α’.
Acceleration on speed-curve
During the running period from T1 to T2, the voltage across the motor remains
constant and the current starts decreasing, this is because cut out at the instant ‘T1’.
According to the characteristics of motor, its speed increases with the decrease in
the current and finally the current taken by the motor remains constant. But, at the
same time, even though train accelerates, the acceleration decreases with the
increase in speed. Finally, the acceleration reaches to zero for certain speed, at
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which the tractive effort excreted by the motor is exactly equals to the train
resistance. This is also known as decreasing accelerating period. This period is
shown by the curve ‘AB’.
The train runs freely during the period T2 to T3 at the speed attained by the train at
the instant ‘T2’. During this speed, the motor draws constant power from the supply
lines. This period is shown by the curve BC.
Coasting period
This period is from T3 to T4, i.e., from C to D. At the instant ‘T3’ power supply to
the traction, the motor will be cut off and the speed falls on account of friction,
windage resistance, etc. During this period, the train runs due to the momentum
attained at that particular instant. The rate of the decrease of the speed during
coasting period is known as coasting retardation. Usually, it is denoted with the
symbol ‘βc’.
Braking period
Braking period is from T4 to T5, i.e., from D to E. At the end of the coasting period,
i.e., at ‘T4’ brakes are applied to bring the train to rest. During this period, the speed
of the train decreases rapidly and finally reduces to zero.
In main line service, the free-running period will be more, the starting and
braking periods are very negligible, since the distance between the stops for the
main line service is more than 10 km.
In suburban service, the distance between two adjacent stops for electric train is
lying between 1 and 8 km. In this service, the distance between stops is more than
the urban service and smaller than the main line service. The typical speed–time
curve for suburban service is shown in Fig. 10.2.
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The speed–time curve for urban service consists of three distinct periods. They
are:
1. Acceleration.
2. Coasting.
3. Retardation.
The speed–time curve urban or city service is almost similar to suburban service
and is shown in Fig. 10.3.
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In this service also, there is no free-running period. The distance between two
stop is less about 1 km. Hence, relatively short coasting and longer braking period
is required. The relative values of acceleration and retardation are high to achieve
moderately high average between the stops. Here, the small coasting period is
included to save the energy consumption. The acceleration for the urban service
lies between 1.6 and 4 kmphp. The coasting retardation is about 0.15 kmphp and
the braking retardation is lying between 3 and 5 kmphp. Some typical values of
various services are shown in Table. 10.1.
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SOME DEFINITIONS
Crest speed
The maximum speed attained by the train during run is known as crest speed. It is
denoted with ‘Vm’.
Average speed
It is the mean of the speeds attained by the train from start to stop, i.e., it is defined
as the ratio of the distance covered by the train between two stops to the total time
of rum. It is denoted with ‘Va’.
where Va is the average speed of train in kmph, D is the distance between stops in
km, and T is the actual time of run in hours.
Schedule speed
The ratio of the distance covered between two stops to the total time of the run
including the time for stop is known as schedule speed. It is denoted with the
symbol ‘Vs’.
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Schedule time
It is defined as the sum of time required for actual run and the time required for
stop.
1. Crest speed.
2. The duration of stops.
3. The distance between the stops.
4. Acceleration.
5. Braking retardation.
Crest speed
It is the maximum speed of train, which affects the schedule speed as for fixed
acceleration, retardation, and constant distance between the stops. If the crest speed
increases, the actual running time of train decreases. For the low crest speed of
train it running so, the high crest speed of train will increases its schedule speed.
Duration of stops
If the duration of stops is more, then the running time of train will be less; so that,
this leads to the low schedule speed.
Thus, for high schedule speed, its duration of stops must be low.
If the distance between the stops is more, then the running time of the train is less;
hence, the schedule speed of train will be more.
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Acceleration
If the acceleration of train increases, then the running time of the train decreases
provided the distance between stops and crest speed is maintained as constant.
Thus, the increase in acceleration will increase the schedule speed.
Breaking retardation
High breaking retardation leads to the reduction of running time of train. These
will cause high schedule speed provided the distance between the stops is small.
o The acceleration and retardation periods of the simplified curve is kept same as to that
of the actual curve.
o The running and coasting periods of the actual speed–time curve are replaced by the
constant periods.
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Let D be the distance between the stops in km, T be the actual running time of train
in second, α be the acceleration in km/h/sec, β be the retardation in km/h/sec, Vm be
the maximum or the crest speed of train in km/h, and Va be the average speed of
train in km/h. From the Fig. 10.4:
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Area under the trapezoidal speed–time curve gives the total distance between the
two stops (D).
∴ The distance between the stops (D) = area under triangle OAE + area of
rectangle ABDE + area of triangle DBC
Now:
The distance travelled during free-running period = average speed × time of free
running
The distance travelled during retardation period = average speed × time for
retardation
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By considering positive sign, we will get high values of crest speed, which is
practically not possible, so negative sign should be considered:
Quadrilateral speed–time curve for urban and suburban services for which the
distance between two stops is less. The assumption for simplified quadrilateral
speed–time curve is the initial acceleration and coasting retardation periods are
extended, and there is no free-running period. Simplified quadrilateral speed–time
curve is shown in Fig. 10.5.
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Let V1 be the speed at the end of accelerating period in km/h, V2 be the speed at
the end of coasting retardation period in km/h, and βc be the coasting retardation in
km/h/sec.
= the area of triangle PQU + the area of rectangle UQRS + the area of
triangle TRS.
But, the distance travelled during acceleration = average speed × time for
acceleration
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The distance travelled during breaking retardation = average speed × time for
breaking retardation
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Example 10.1: The distance between two stops is 1.2 km. A schedule speed of 40
kmph is required to cover that distance. The stop is of 18-s duration. The values of
the acceleration and retardation are 2 kmphp and 3 kmphp, respectively. Then,
determine the maximum speed over the run. Assume a simplified trapezoidal
speed–time curve.
Solution:
Retardation β = 3 kmphp.
= 108 – 18
= 90 s.
where
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Example 10.2: The speed–time curve of train carries of the following parameters:
Then, determine the distance between two stations, the average, and the schedule
speeds.
Solution:
Acceleration period t1 = 20 s.
= 720 s.
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D = D1 + D2 + D3
= 0.36 + 26 + 0.362
= 26.724 km.
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Solution:
Retardation β = 3 km/hr/s.
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Example 10.4: The distance between two stops is 5 km. A train has schedule
speed of 50 kmph. The train accelerates at 2.5 kmphps and retards 3.5 kmphps and
the duration of stop is 55 s. Determine the crest speed over the run assuming
trapezoidal speed–time curve.
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Solution:
Example 10.5: A train is required to run between two stations 1.5 km apart at an
average speed of 42 kmph. The run is to be made to a simplified quadrilateral
speed–time curve. If the maximum speed is limited to 65 kmph, the acceleration to
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2.5, kmphps, and the casting and braking retardation to 0.15 kmphs and 3 kmphs,
respectively. Determine the duration of acceleration, costing, and braking periods.
Solution:
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Example 10.6: A train has schedule speed of 32 kmph over a level track distance
between two stations being 2 km. The duration of stop is 25 s. Assuming the
braking retardation of 3.2 kmphps and the maximum speed is 20% grater than the
average speed. Determine the acceleration required to run the service.
Solution:
Distance D = 2 km.
Duration of stop = 25 s.
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Example 10.7: A suburban electric train has a maximum speed of 75 kmph. The
schedule speed including a station stop of 25 s is 48 kmph. If the acceleration is 2
kmphps, the average distance between two stops is 4 km. Determine the value of
retardation.
Solution:
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Solution:
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D1 + D2 = D - D3
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Example 10.9: An electric train has an average speed of 40 kmph on a level track
between stops 1,500 m apart. It is accelerated at 2 kmphps and is braked at 3
kmphps. Draw the speed–time curve for the run.
Solution:
where
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Fig. P.10.1
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Solution:
Maximum speed Vm = α t1
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It is the effective force acting on the wheel of locomotive, necessary to propel the
train is known as ‘tractive effort’. It is denoted with the symbol Ft. The tractive
effort is a vector quantity always acting tangential to the wheel of a locomotive. It
is measured in newton.
The net effective force or the total tractive effort (Ft) on the wheel of a
locomotive or a train to run on the track is equals to the sum of tractive effort:
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Let T is the torque exerted by the motor in N-m, Fp is tractive effort at the edge
of the pinion in Newton,Ft is the tractive effort at the wheel, D is the diameter of
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the driving wheel, d1 and d2 are the diameter of pinion and gear wheel, respectively,
and η is the efficiency of the power transmission for the motor to the driving axle.
The tractive effort at the edge of the pinion transferred to the wheel of locomotive
is:
From Equation (10.8), the tractive effort required for train propulsion is:
Ft = Fa + Fg + Fr,
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where Fa is the force required for linear and angular acceleration, Fg is the force
required to overcome the gravity, and Fr is the force required to overcome the
resistance to the motion.
F = ma.
Equation (10.12) holds good only if the accelerating body has no rotating parts.
Owing to the fact that the train has rotating parts such as motor armature, wheels,
axels, and gear system. The weight of the body being accelerated including the
rotating parts is known as effective weight or accelerating weight. It is denoted
with ‘We’. The accelerating weight ‘(We)’ is much higher (about 8–15%) than the
dead weight (W) of the train. Hence, these parts need to be given angular
acceleration at the same time as the whole train is accelerated in linear direction.
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When the train is running at uniform speed on a level track, it has to overcome the
opposing force due to the surface friction, i.e., the friction at various parts of the
rolling stock, the fraction at the track, and also due to the wind resistance. The
magnitude of the frictional resistance depends upon the shape, size, and condition
of the track and the velocity of the train, etc.
Let ‘r’ is the specific train resistance in N/ton of the dead weight and ‘W’ is the
dead weight in ton.
When the train is moving on up gradient as shown in Fig. 10.7, the gravity
component of the dead weight opposes the motion of the train in upward direction.
In order to prevent this opposition, the tractive effort should be acting in upward
direction.
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This is due to when the train is moving on up a gradient, the tractive effort
showing Equation (10.17)will be required to oppose the force due to gravitational
force, but while going down the gradient, the same force will be added to the total
tractive effort.
∴ The total tractive effort required for the propulsion of train Ft = Fa + Fr ± Fg:
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If ‘η’ is the efficiency of the gear transmission, then the power output of
motors, :
The energy input to the motors is called the energy consumption. This is the energy
consumed by various parts of the train for its propulsion. The energy drawn from
the distribution system should be equals to the energy consumed by the various
parts of the train and the quantity of the energy required for lighting, heating,
control, and braking. This quantity of energy consumed by the various parts of
train per ton per kilometer is known as specific energy consumption. It is
expressed in watt hours per ton per km.
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Energy output is the energy required for the propulsion of a train or vehicle is
mainly for accelerating the rest to velocity ‘Vm’, which is the energy required to
overcome the gradient and track resistance to motion.
Energy required for accelerating the train from rest to its crest speed ‘Vm'
Energy required for overcoming the gradient and tracking resistance to motion
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where Ft′ is the tractive effort required to overcome the gradient and track
resistance, W is the dead weight of train, r is the track resistance, and G is the
percentage gradient.
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Factors that affect the specific energy consumption are given as follows.
For a given schedule speed, the specific energy consumption will accordingly be
less for more acceleration and retardation.
Maximum speed
For a given distance between the stops, the specific energy consumption increases
with the increase in the speed of train.
From the specific energy consumption, it is clear that both gradient and train
resistance are proportional to the specific energy consumption. Normally, the
coefficient of adhesion will be affected by the running of train, parentage gradient,
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condition of track, etc. for the wet and greasy track conditions. The value of the
coefficient of adhesion is much higher compared to dry and sandy conditions.
IMPORTANT DEFINITIONS
1 Dead weight
2 Accelerating weight
It is the effective weight of train that has angular acceleration due to the rotational
inertia including the dead weight of the train. It is denoted by ‘We’.
This effective train is also known as accelerating weight. The effective weight of
the train will be more than the dead weight. Normally, it is taken as 5–10% of
more than the dead weight.
3 Adhesive weight
The total weight to be carried out on the drive in wheels of a locomotive is known
as adhesive weight.
4 Coefficient of adhesion
It is defined as the ratio of the tractive effort required to propel the wheel of a
locomotive to its adhesive weight.
Ft ∝ W
= μW,
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Example 10.11: A 250-ton motor coach having four motors each developing
6,000 N-m torque during acceleration, starts from rest. If the gradient is 40 in
1,000, gear ration is 4, gear transmission efficiency is 87%, wheel radius is 40 cm,
train resistance is 50 N/ton, the addition of rotational inertia is 12%. Calculate the
time taken to attain a speed of 50 kmph. If the line voltage is 3,000-V DC and the
efficiency of motors is 85%. Find the current during notching period.
Solution:
Gear ratio r = 4.
Or, D = 0.8 m.
But,
Ft = 277.8 We α + 98.1 WG + Wr
∴ α = 1.285 kmphps.
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The time taken for the train to attain the speed of 50 kmph:
Example 10.12: An electric train of weight 250 ton has eight motors geared to
driving wheels, each is 85 cm diameter. The tractive resistance is of 50/ton. The
effect of rotational inertia is 8% of the train weight, the gear ratio is 4–1, and the
gearing efficiency is 85% determine. The torque developed by each motor to
accelerate the train to a speed of 50 kmph in 30 s up a gradient of 1 in 200.
Solution:
Gear ratio r = 4.
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We = 1.10 × W
= 126,815.7+12,262.5+12,500
= 151,578.2 N.
Example 10.13: A tram car is equipped with two motors that are operating in
parallel, the resistance in parallel. The resistance of each motor is 0.5 Ω. Calculate
the current drawn from the supply mains at 450 V when the car is running at a
steady-state speed of 45 kmph and each motor is developing a tractive effort of
1,600 N. The friction, windage, and other losses may be assumed as 3,000 W per
motor.
Solution:
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= 108.78 A.
Solution:
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The power delivered by the locomotive on up gradient track with the DC series
motors:
Example 10.15: A train weighting 450 ton has speed reduced by the regenerative
braking from 50 to 30 kmph over a distance of 2 km on down gradient of 1.5%.
Calculate the electrical energy and the overage power returned to the line tractive
resistance is 50 N/ton. And, allow the rotational inertia of 10% and the efficiency
conversion 80%.
Solution:
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Gradient G = 1.5%
Efficiency η = 0.8.
Ft = Wr – 98.1 WG
= -43,717.5 N.
The energy available while moving down the gradient a distance of 2 km is:
= 32.7775 kW-hr.
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Solution:
= Wr – 98.1 WG
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= –65,790 N.
The power fed into the line = power available × efficiency of conversion
= 913.75 × 0.8
= 731 kW.
Solution:
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= 161,923.2 N.
βc = 0.449 kmphps
V2 = Vm – βcV2
= 66 – 0.449 × 65
= 36.815 kmph.
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Solution:
= 2,530 ton.
Regenerative period t = 5 × 60
= 300 s.
= 0.01072 We
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= 32,545.92
= 32.54 kW-hr.
= Wr – 98.1 WG
= –112,815.
The energy available on the account of moving down the gradient over a distance
of 2,500 m:
= 88.707 kW-hr.
= 88.707 kW-hr.
Solution:
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Solution:
Time of acceleration t1 = 30 s.
Time of coasting t2 = 45 s.
Time of braking t3 = 20 s.
Gradient G = 1%.
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=–305.58 W βc + 98.1 W + 50 W.
βc = 0.4846 kmphps.
V2 = Vm – βct2
= 66 – 0.4846 × 45
= 44.193 kmph.
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Solution:
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Accelerating period t1 = 30 s.
Ft = 27.88 We α + 98.1 WG + Wr
= 109,904.28 N.
2.
Example 10.22: Calculate the energy consumption if a maximum speed of 12
m/sec and for a given run of 1,500 m, an acceleration of 0.36 m/s2 desired. The
tractive resistance during acceleration is 0.052 N/kg and during the coasting is 6.12
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N/1,000 kg. Allow a 10% of rotational inertia, the efficiency of the equipment
during the acceleration period is 60%. Assume quadrilateral speed–time curve.
Solution:
= 0.448 W N.
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Example 10.23: A 100-ton weight train has a rotational inertia of 10%. This train
has to be run between two stations that are 3 km a part and has an average speed of
50 km/hr. The acceleration and the retardation during braking are 2 kmphps and 3
kmphps, respectively. The percentage gradient between these two stations is 1%
and the train is to move up the incline the track resistance is 50 N/ton, then
determine:
Solution:
The accelerating weight of the train, We = 1.1 × W = 1.1 × 100 = 110 ton.
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The train is moving a uniform down gradient of 1% and the tractive resistance of
50 N/ton. The rotational resistance is 10% of the dead weight, the duration of the
stop is 20 s and the overall efficiency of the transmission the gear and the motor as
80%. Calculate its schedule speed and specific energy consumption.
Solution:
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= 2 × 30 = 60 kmph.
Tractive effort:
βc = – 0.157 kmphps
V2 = Vm – βct2
= 60 – (–0.517 × 40)
= 66.28 kmph.
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Example 10.25: The schedule speed of a electric train is 40 kmph. The distance
between two stations is 3 km with each stop is of 30 s duration. Assuming the
acceleration and the retardation to be 2 and 3 kmphps, respectively. The dead
weight of the train is 20 ton. Assume the rotational inertia is 10% to the dead
weight and the track resistance is 40 N/ton. Calculate:
Solution:
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where:
Ft = 277.8We × α + Wr
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= 277.8 × 1.1 × 20 × 2 + 20 × 40
= 13,023.2 N.
D1 = 3 – 0.112
= 2.88 km.
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While the train is moving on the down gradients or level track, the KE acquired
by the rotating parts is converted into the electrical energy, which is fed back to the
supply system. The amount of energy fed back to the system is depending on the
following factors.
Consider the initial and final speeds of the train during regenerative braking
are V1 and V2 in KMPH, and the effective weight of the train is We tons.
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If r is the train resistance in N/ton, then the energy lost to overcome the resistance
to the motion and friction, windage losses:
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1. In regenerative breaking, a part of the energy stored by the rotating parts is converted
into the electrical energy and is fed back to the supply. This will lead to the minimum
consumption of energy, thereby saving the operating cost.
2. High breaking retardation can be obtained during regenerative breaking.
3. Time taken to bring the vehicle to rest is less compared to the other breakings; so that,
the running time of the vehicle is considerably reduced.
4. The wear on the brake shoes and tyre is reduced, which increases the life of brake shoe
and tyre.
Disadvantages
In addition to the above advantages, this method suffers from the following
disadvantages.
Example 10.26: A 450-ton train travels down gradient of 1 in 75 for 110 s during
which its speed is reduced from 70 to 55 kmph. By the regenerative braking,
determine the energy returned to the lines if the reactive resistance is 4.5 kg/ton
and the allowance for the rotational inertia is 7% and the overall efficiency of the
motor is 80%.
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Solution:
= 483.75 ton.
= 44.145 N-m/ton
= 9,904.782 W-hr
= 9.904 kW-hr.
= Wr – 98.1 WG
= 19,865.25 – 58,860
= –38,994.75 N.
As the train is moving in downward gradient, so that the tractive effort will provide
additional energy to the system. The energy available when the train moves over a
gradient is given as:
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= 2,588.495 – 15,979.713
= 20.68 kW-hr.
= 0.8 × (20.68+9.904)
= 24.467 kW-hr.
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