WO2017024596A1 - 一种多单元永磁同步电机智能协同控制系统及方法 - Google Patents
一种多单元永磁同步电机智能协同控制系统及方法 Download PDFInfo
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02P—CONTROL OR REGULATION OF ELECTRIC MOTORS, ELECTRIC GENERATORS OR DYNAMO-ELECTRIC CONVERTERS; CONTROLLING TRANSFORMERS, REACTORS OR CHOKE COILS
- H02P21/00—Arrangements or methods for the control of electric machines by vector control, e.g. by control of field orientation
- H02P21/24—Vector control not involving the use of rotor position or rotor speed sensors
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02K—DYNAMO-ELECTRIC MACHINES
- H02K1/00—Details of the magnetic circuit
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02K—DYNAMO-ELECTRIC MACHINES
- H02K11/00—Structural association of dynamo-electric machines with electric components or with devices for shielding, monitoring or protection
- H02K11/30—Structural association with control circuits or drive circuits
- H02K11/33—Drive circuits, e.g. power electronics
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02K—DYNAMO-ELECTRIC MACHINES
- H02K3/00—Details of windings
- H02K3/04—Windings characterised by the conductor shape, form or construction, e.g. with bar conductors
- H02K3/28—Layout of windings or of connections between windings
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02M—APPARATUS FOR CONVERSION BETWEEN AC AND AC, BETWEEN AC AND DC, OR BETWEEN DC AND DC, AND FOR USE WITH MAINS OR SIMILAR POWER SUPPLY SYSTEMS; CONVERSION OF DC OR AC INPUT POWER INTO SURGE OUTPUT POWER; CONTROL OR REGULATION THEREOF
- H02M5/00—Conversion of ac power input into ac power output, e.g. for change of voltage, for change of frequency, for change of number of phases
- H02M5/40—Conversion of ac power input into ac power output, e.g. for change of voltage, for change of frequency, for change of number of phases with intermediate conversion into dc
- H02M5/42—Conversion of ac power input into ac power output, e.g. for change of voltage, for change of frequency, for change of number of phases with intermediate conversion into dc by static converters
- H02M5/44—Conversion of ac power input into ac power output, e.g. for change of voltage, for change of frequency, for change of number of phases with intermediate conversion into dc by static converters using discharge tubes or semiconductor devices to convert the intermediate dc into ac
- H02M5/453—Conversion of ac power input into ac power output, e.g. for change of voltage, for change of frequency, for change of number of phases with intermediate conversion into dc by static converters using discharge tubes or semiconductor devices to convert the intermediate dc into ac using devices of a triode or transistor type requiring continuous application of a control signal
- H02M5/458—Conversion of ac power input into ac power output, e.g. for change of voltage, for change of frequency, for change of number of phases with intermediate conversion into dc by static converters using discharge tubes or semiconductor devices to convert the intermediate dc into ac using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only
- H02M5/4585—Conversion of ac power input into ac power output, e.g. for change of voltage, for change of frequency, for change of number of phases with intermediate conversion into dc by static converters using discharge tubes or semiconductor devices to convert the intermediate dc into ac using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only having a rectifier with controlled elements
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02M—APPARATUS FOR CONVERSION BETWEEN AC AND AC, BETWEEN AC AND DC, OR BETWEEN DC AND DC, AND FOR USE WITH MAINS OR SIMILAR POWER SUPPLY SYSTEMS; CONVERSION OF DC OR AC INPUT POWER INTO SURGE OUTPUT POWER; CONTROL OR REGULATION THEREOF
- H02M7/00—Conversion of ac power input into dc power output; Conversion of dc power input into ac power output
- H02M7/02—Conversion of ac power input into dc power output without possibility of reversal
- H02M7/04—Conversion of ac power input into dc power output without possibility of reversal by static converters
- H02M7/06—Conversion of ac power input into dc power output without possibility of reversal by static converters using discharge tubes without control electrode or semiconductor devices without control electrode
- H02M7/08—Conversion of ac power input into dc power output without possibility of reversal by static converters using discharge tubes without control electrode or semiconductor devices without control electrode arranged for operation in parallel
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02M—APPARATUS FOR CONVERSION BETWEEN AC AND AC, BETWEEN AC AND DC, OR BETWEEN DC AND DC, AND FOR USE WITH MAINS OR SIMILAR POWER SUPPLY SYSTEMS; CONVERSION OF DC OR AC INPUT POWER INTO SURGE OUTPUT POWER; CONTROL OR REGULATION THEREOF
- H02M7/00—Conversion of ac power input into dc power output; Conversion of dc power input into ac power output
- H02M7/42—Conversion of dc power input into ac power output without possibility of reversal
- H02M7/44—Conversion of dc power input into ac power output without possibility of reversal by static converters
- H02M7/48—Conversion of dc power input into ac power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode
- H02M7/53—Conversion of dc power input into ac power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal
- H02M7/537—Conversion of dc power input into ac power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only, e.g. single switched pulse inverters
- H02M7/5387—Conversion of dc power input into ac power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only, e.g. single switched pulse inverters in a bridge configuration
- H02M7/53871—Conversion of dc power input into ac power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only, e.g. single switched pulse inverters in a bridge configuration with automatic control of output voltage or current
- H02M7/53875—Conversion of dc power input into ac power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only, e.g. single switched pulse inverters in a bridge configuration with automatic control of output voltage or current with analogue control of three-phase output
- H02M7/53876—Conversion of dc power input into ac power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only, e.g. single switched pulse inverters in a bridge configuration with automatic control of output voltage or current with analogue control of three-phase output based on synthesising a desired voltage vector via the selection of appropriate fundamental voltage vectors, and corresponding dwelling times
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02P—CONTROL OR REGULATION OF ELECTRIC MOTORS, ELECTRIC GENERATORS OR DYNAMO-ELECTRIC CONVERTERS; CONTROLLING TRANSFORMERS, REACTORS OR CHOKE COILS
- H02P25/00—Arrangements or methods for the control of AC motors characterised by the kind of AC motor or by structural details
- H02P25/16—Arrangements or methods for the control of AC motors characterised by the kind of AC motor or by structural details characterised by the circuit arrangement or by the kind of wiring
- H02P25/22—Multiple windings; Windings for more than three phases
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02P—CONTROL OR REGULATION OF ELECTRIC MOTORS, ELECTRIC GENERATORS OR DYNAMO-ELECTRIC CONVERTERS; CONTROLLING TRANSFORMERS, REACTORS OR CHOKE COILS
- H02P6/00—Arrangements for controlling synchronous motors or other dynamo-electric motors using electronic commutation dependent on the rotor position; Electronic commutators therefor
- H02P6/14—Electronic commutators
- H02P6/15—Controlling commutation time
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02P—CONTROL OR REGULATION OF ELECTRIC MOTORS, ELECTRIC GENERATORS OR DYNAMO-ELECTRIC CONVERTERS; CONTROLLING TRANSFORMERS, REACTORS OR CHOKE COILS
- H02P6/00—Arrangements for controlling synchronous motors or other dynamo-electric motors using electronic commutation dependent on the rotor position; Electronic commutators therefor
- H02P6/28—Arrangements for controlling current
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02M—APPARATUS FOR CONVERSION BETWEEN AC AND AC, BETWEEN AC AND DC, OR BETWEEN DC AND DC, AND FOR USE WITH MAINS OR SIMILAR POWER SUPPLY SYSTEMS; CONVERSION OF DC OR AC INPUT POWER INTO SURGE OUTPUT POWER; CONTROL OR REGULATION THEREOF
- H02M7/00—Conversion of ac power input into dc power output; Conversion of dc power input into ac power output
- H02M7/02—Conversion of ac power input into dc power output without possibility of reversal
- H02M7/04—Conversion of ac power input into dc power output without possibility of reversal by static converters
- H02M7/12—Conversion of ac power input into dc power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode
- H02M7/21—Conversion of ac power input into dc power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal
- H02M7/217—Conversion of ac power input into dc power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only
- H02M7/219—Conversion of ac power input into dc power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode using devices of a triode or transistor type requiring continuous application of a control signal using semiconductor devices only in a bridge configuration
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02M—APPARATUS FOR CONVERSION BETWEEN AC AND AC, BETWEEN AC AND DC, OR BETWEEN DC AND DC, AND FOR USE WITH MAINS OR SIMILAR POWER SUPPLY SYSTEMS; CONVERSION OF DC OR AC INPUT POWER INTO SURGE OUTPUT POWER; CONTROL OR REGULATION THEREOF
- H02M7/00—Conversion of ac power input into dc power output; Conversion of dc power input into ac power output
- H02M7/42—Conversion of dc power input into ac power output without possibility of reversal
- H02M7/44—Conversion of dc power input into ac power output without possibility of reversal by static converters
- H02M7/48—Conversion of dc power input into ac power output without possibility of reversal by static converters using discharge tubes with control electrode or semiconductor devices with control electrode
- H02M7/4815—Resonant converters
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02B—CLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO BUILDINGS, e.g. HOUSING, HOUSE APPLIANCES OR RELATED END-USER APPLICATIONS
- Y02B70/00—Technologies for an efficient end-user side electric power management and consumption
- Y02B70/10—Technologies improving the efficiency by using switched-mode power supplies [SMPS], i.e. efficient power electronics conversion e.g. power factor correction or reduction of losses in power supplies or efficient standby modes
Definitions
- the invention belongs to the technical field of power electronics and electric drive, and particularly relates to a multi-unit permanent magnet synchronous motor intelligent cooperative control system and method.
- High-power electric drive system occupies an important position in industrial production, and is widely used in large-scale mine upgrading, large-scale ship main propulsion, and megawatt-class wind power generation.
- the existing high-power electric drive system adopts a single-circuit structure, the voltage level is high, the system has no redundancy, and the reliability is low.
- the rectification part of the system mostly adopts the uncontrollable rectification mode, the power factor is low, and there is a large reactive power transmission loss. It is easy to generate low frequency subharmonics in the unbalanced power supply network environment, and it is difficult to optimize the reactive power. control.
- the system inverter part adopts the hard switching mode, and there is a large amount of switching loss, especially when the switching frequency of the power device increases and the power increases.
- mechanical sensors are often used to detect the rotor position of the motor, the system cost is high, the reliability is low, and the maintenance workload is large.
- the traditional permanent magnet motor stator manufacturing adopts the integral processing method, which brings difficulties in manufacturing, transportation, installation and maintenance of high-voltage motors, high cost of inverters and low reliability.
- the present invention provides a multi-unit permanent magnet synchronous motor intelligent cooperative control system and method for solving the problem of energy loss and reactive power loss of a hard switching circuit in a high-power electric drive system, and solving multi-unit coordinated control and Fault-tolerant control problems, solve the problem of difficult installation, transportation and maintenance of the motor, realize the optimization of the overall energy, and achieve the purpose of improving the utilization efficiency of the electric energy.
- a multi-unit permanent magnet synchronous motor intelligent cooperative control system comprising a double parallel PWM rectifier circuit, further comprising a first permanent magnet motor cooperative control unit, a second permanent magnet motor cooperative control unit, a third permanent magnet motor cooperative control unit and a plurality of The unit permanent magnet synchronous motor, wherein the first permanent magnet motor cooperative control unit, the second permanent magnet motor cooperative control unit and the third permanent magnet motor cooperative control unit coordinately control three of the multi-unit permanent magnet synchronous motors by means of parallel connection Stator unit.
- the first permanent magnet motor cooperative control unit, the second permanent magnet motor cooperative control unit and the third permanent magnet motor cooperative control unit have the same structure, and each comprises a driving and amplifying circuit, a control unit and an inverter unit, and the control The unit realizes coordinated control of the multi-unit permanent magnet synchronous motor by mutual communication.
- the control unit includes a distributed collaborative controller and a current control and speed estimating unit, wherein
- the A-phase, B-phase, and C-phase current detection signals for collecting the input ends of the motor, and the estimated values of the rotor speeds obtained according to the collected A-phase, B-phase, and C-phase current detection signals are simultaneously sent to each control unit for distributed coordination. Controller; and Receiving the output value of the distributed cooperative controller, obtaining the direct-axis voltage reference value and the cross-axis voltage reference value in the two-phase stationary coordinate system according to the above output value, and then obtaining the PWM signal by using the space vector pulse width modulation, and obtaining the PWM signal Transmitting to the inverter unit through the driving and amplifying circuit;
- the communication structure of three control units is described by using a method for constructing an undirected graph, and the communication association matrix of each control unit is obtained according to the constructed undirected graph, and the rotor speed is estimated according to the estimated value of the rotor speed.
- the value and the overall communication association matrix of the control unit construct the error function, set the real matrix and the real number term, and obtain the output value of the distributed cooperative controller according to the constructed error function.
- the multi-cell permanent magnet synchronous motor has a stator of 27 slots and 30 poles, and each unit has 9 slots and 10 poles, and each stator unit shares a rotor; the rotor is a permanent magnet built-in tangential type; each unit motor
- the winding adopts a double-layer fractional slot winding with a pitch of 1, and the internal winding of each unit motor adopts a star connection.
- the control method using the multi-unit permanent magnet synchronous motor intelligent cooperative control system comprises the following steps:
- Step 1 the first permanent magnet motor cooperative control unit, the second permanent magnet motor cooperative control unit and the third permanent magnet motor cooperative control unit simultaneously collect the A phase, B phase, and C phase current detection signals at the motor input end;
- Step 2 The first permanent magnet motor cooperative control unit, the second permanent magnet motor cooperative control unit and the third permanent magnet motor cooperative control unit simultaneously obtain PWM according to the collected phase A, phase B, and C phase current detection signals. signal;
- Step 3 According to the PWM signal, the frequency and amplitude of the output stator voltage are changed, and the coordinated control of the motor speed of each unit is realized.
- the coordinated control described in step 2 includes the following steps:
- Step 2-1 Obtain an estimated rotor speed according to the A phase, B phase, and C phase current detection signals, and simultaneously send to each control unit to realize mutual communication of the three control units;
- Step 2-2 describe the communication structure of the three control units by using the method of constructing an undirected graph
- Step 2-3 Obtain a communication association matrix of the control unit as a whole according to the constructed undirected graph, and construct an error function according to the rotor speed estimation value, the set rotor speed value set by the user, and the communication correlation matrix of the control unit as a whole;
- Step 2-4 setting a real matrix and a real number, and obtaining an output value according to the constructed error function
- Step 2-5 obtaining a direct-axis voltage reference value and a cross-axis voltage reference value in a two-phase stationary coordinate system according to the above output value, and then obtaining a PWM signal by using space vector pulse width modulation.
- the rotor speed estimation value obtained according to the A phase, B phase, and C phase current detection signals described in step 2-1 includes the following steps:
- Step 2-1-1 performing analog-to-digital conversion on the received current detection signal, and performing Clark coordinate transformation and Park coordinate transformation on the converted A-phase, B-phase, and C-phase current signals according to the initial phase angle value of the rotor.
- Two-phase rotating coordinate system Straight axis current and cross shaft current;
- Step 2-1-2 the cross-axis current is passed through a band-pass filter to obtain a high-frequency component of the cross-axis current, and the high-frequency component of the cross-axis current is multiplied by the sinusoidal high-frequency signal to obtain a cross-axis current of the separable phase angle error signal. a high frequency component and passing it through a low pass filtering process to obtain a current signal containing only phase angle errors;
- Step 2-1-3 Obtain a rotor speed estimation value by using a PI control algorithm, and obtain an estimated rotor phase angle by integrating the above rotor speed estimation value.
- the communication association matrix described in step 2-3 is a symmetric matrix, and the number of rows and columns of the matrix is 3, and the elements in the matrix have a value of 0 or 1.
- the error function is: the difference between a certain control unit rotor speed estimation value and other control unit rotor speed estimation value multiplied by the coefficient, plus the control unit rotor speed estimation value and design
- the difference between the given rotor speed values is multiplied by the coefficient;
- the difference between the rotor cell speed estimate of one of the control units and the rotor speed estimate of the other control unit is multiplied by a coefficient, which is the communication correlation matrix Elements.
- the output value described in steps 2-4 is solved by multiplying the error function by the real matrix and the real term, and then summing with the set rotor given velocity value; the real matrix is a 1 ⁇ 2 real vector .
- Step 2-5-1 using the output value as the reference current of the cross-axis current
- Step 2-5-2 obtaining the direct-axis current and the fundamental cross-axis current through the low-pass filtering process of the obtained direct-axis current and the cross-axis current;
- Step 2-5-3 comparing the fundamental axis current and the cross-axis current reference amount to obtain the cross-axis current error value, and comparing the fundamental-axis direct-axis current with the direct-axis current reference amount to obtain a direct-axis current. difference;
- Step 2-5-4 using the PI control algorithm to calculate the cross-axis current error value and the straight-axis current error value respectively, and obtain the cross-axis voltage reference value and the straight-axis voltage reference value, and the straight-axis voltage reference value and the high-frequency
- the voltage signal values are summed to obtain a direct-axis voltage reference value including the high-frequency signal;
- Step 2-5-5 according to the estimated value of the rotor phase angle of the motor, carry out the Park inverse coordinate transformation on the reference value of the cross-axis voltage and the direct-axis voltage reference value of the high-frequency signal, and obtain the direct-axis voltage reference in the two-phase stationary coordinate system.
- the value and the cross-axis voltage reference value are then used to obtain the PWM signal using space vector pulse width modulation.
- the invention relates to a multi-unit permanent magnet synchronous motor intelligent cooperative control system.
- the invention adopts a parallel structure of a low-voltage multi-permanent magnet motor cooperative control unit to realize low-voltage high-power, low-speed large torque control and system redundancy control; double Parallel PWM rectifier circuit structure, when the system is in an unbalanced power supply network environment, two sets of PWM rectifiers are used to control the positive and negative sequence currents respectively, and the closed-loop control of the positive and negative sequence currents reduces the reactive loss and harmonics.
- the inverter unit adopts a resonant pole type three-phase soft-switching inverter circuit, which improves the utilization of the DC bus voltage, greatly reduces the switching loss of the device at high frequencies; uses current control and speed estimation in the control of permanent magnet motor
- the unit can accurately estimate the speed and phase angle information of the rotor, and has low cost and high reliability.
- the controlled object is a multi-unit permanent magnet synchronous motor, which solves the problems of difficulty in installation, transportation and maintenance of the motor in the high-power electric drive system.
- FIG. 1 is a structural block diagram of an intelligent cooperative control system for a multi-unit permanent magnet synchronous motor according to an embodiment of the present invention
- FIG. 2 is a schematic diagram of a dual parallel PWM rectifier circuit according to an embodiment of the present invention
- FIG. 3 is a block diagram showing the internal structure of a first permanent magnet motor cooperative control unit, a second permanent magnet motor cooperative control unit, and a third permanent magnet motor cooperative control unit according to an embodiment of the present invention
- FIG. 4 is a circuit diagram of a resonant pole type soft switch inverter circuit according to an embodiment of the present invention
- FIG. 5 is a schematic diagram of an internal structure of a control unit according to an embodiment of the present invention.
- FIG. 6 is a schematic structural view of a multi-unit permanent magnet synchronous motor according to an embodiment of the present invention.
- FIG. 7 is a star-shaped diagram of a slot of a 27-slot 30-pole monopole permanent magnet motor and a 9-slot 10-pole unit permanent magnet motor according to an embodiment of the present invention, wherein (a) is a 27-slot 30-pole integral permanent magnet motor slot potential Star map, Figure (b) is a 9-slot 10-pole permanent magnet motor slot potential star map;
- FIG. 8 is a development view of a winding of a 27-slot 30-pole multi-unit permanent magnet synchronous motor according to an embodiment of the present invention
- FIG. 9 is a flowchart of an intelligent cooperative control method using a multi-unit permanent magnet synchronous motor according to an embodiment of the present invention.
- FIG. 10 is a block diagram of a sensorless control system for a multi-cell permanent magnet synchronous motor according to an embodiment of the present invention
- FIG. 11 is an undirected view of a construction of an embodiment of the present invention.
- Figure 12 is a graph showing the speed estimation values of the respective cooperative control units according to an embodiment of the present invention.
- the multi-unit permanent magnet synchronous motor intelligent cooperative control system in the embodiment of the present invention comprises a dual parallel PWM rectifier circuit 1 , a first permanent magnet motor cooperative control unit 2 , a second permanent magnet motor cooperative control unit 3 , a third permanent magnet motor cooperative control unit 4 and a multi-unit permanent magnet synchronous motor 5, wherein the first permanent magnet motor cooperative control unit 2, the second permanent magnet motor cooperative control unit 3, and the third permanent magnet motor cooperative control unit 4 pass Coordinated control of three stator units of the multi-unit permanent magnet synchronous motor 5 in a parallel connection manner;
- the dual parallel PWM rectifier circuit 1 is used for converting 380V AC power into DC power with adjustable voltage.
- the circuit diagram is shown in FIG. 2, and two sets of three-phase voltage type PWM rectifier structures are adopted to connect the neutral point of the AC power source.
- the integrated control scheme of positive and negative sequence current, voltage and power is formed, which solves the control problem of parallel PWM rectification structure under unbalanced power supply network environment;
- the first permanent magnet motor cooperative control unit, the second permanent magnet motor cooperative control unit and the third permanent magnet motor cooperative control unit have the same structure, as shown in FIG. 3, each includes a driving and amplifying circuit and a control unit. And an inverter unit, wherein the control unit realizes coordinated control of the multi-unit permanent magnet synchronous motor by mutual communication;
- control unit adopts a DSP of the TMS320F28335 model as a core, plus a communication module, an A/D sampling module and a pulse generation module, and the inverter unit adopts a resonant pole type three-phase soft switch inverter circuit (see application).
- the inverter unit adopts a resonant pole type three-phase soft switch inverter circuit (see application). No. 200910010240.9 patent), as shown in Figure 4, each of the three-phase circuits has its own resonant inductor. This design can improve the utilization of the DC bus voltage, reduce the switching loss of the device, and reduce the production cost;
- the control unit includes a distributed cooperative controller and a current control and speed estimating unit, wherein the current control and speed estimating unit is configured to collect the A phase, the B phase, and the C phase of the motor input end.
- the current detection signal is sent to the distributed cooperative controller of each control unit simultaneously according to the collected A phase, B phase, and C phase current detection signals; and the output value of the distributed cooperative controller is received.
- the direct-axis voltage reference value and the cross-axis voltage reference value in the two-phase stationary coordinate system are obtained, and then the PWM signal is obtained by using space vector pulse width modulation, and the obtained PWM signal is sent to the inverter through the driving and amplifying circuit.
- the distributed collaborative controller is used to describe the communication structure of the three control units by constructing an undirected graph, and obtain the communication association matrix of each control unit according to the constructed undirected graph, and estimate the rotor speed according to the Set the rotor speed and the communication association matrix of the control unit as a whole, construct an error function, set the real matrix and The real number, and according to the constructed error function, the output value of the distributed collaborative controller is obtained.
- the multi-unit permanent magnet synchronous motor with double-layer fractional slot winding structure with a pitch of 1 greatly improves the slot full rate of the motor, and is more suitable for mechanical automatic winding in industrial production, and
- the number of pole pairs of the rotor is large, and the built-in tangential form of the rotor magnetic circuit is used, which provides the possibility of realizing the multi-pole and small-slot permanent magnet synchronous motor.
- FIG. 6 A schematic diagram of a multi-unit permanent magnet synchronous motor is shown in FIG. 6 , which adopts a 27-slot 30-pole three-phase permanent magnet synchronous motor; in the figure, Cell 1 represents a stator unit 1 , Cell 2 represents a stator unit 2 , and Cell 3 represents a stator unit 3 ;
- n is the number of phases of the stator winding of the motor, and b and c are the numerator and denominator of q, respectively;
- the integer part of all the fractions obtained above is added to 1 in order, and the last integer is an integer, which is 0, 1, 1, 1, 2, 2, 2, 3,3,3,3; then subtract the previous item from the previous item in the resulting series, and the resulting series is the optimal cycle number sequence, which is 1,0,0,1,0,0,1 ,0,0,0;
- this winding sequence is the first layer winding of the fractional slot winding, arranged as: AaACcCBbB;
- a, b and c represent the reverse insertion of the coil; when the double-layer winding is used, the first layer winding is shifted to the right by one slot and then reversed to obtain the arrangement of the second layer winding;
- a control method is implemented by using a multi-unit permanent magnet synchronous motor intelligent cooperative control system.
- the method flow chart is shown in FIG. 9 and includes the following steps:
- Step 1 the first permanent magnet motor cooperative control unit, the second permanent magnet motor cooperative control unit and the third permanent magnet motor cooperative control unit simultaneously collect the A phase, B phase, and C phase current detection signals at the motor input end;
- three current sensors are used to simultaneously collect the A phase, B phase, and C phase current signals of the motor input end, and the current signal is sent to the first permanent magnet motor cooperative control unit and the second permanent magnet motor cooperative control unit.
- a third permanent magnet motor cooperative control unit is used to simultaneously collect the A phase, B phase, and C phase current signals of the motor input end, and the current signal is sent to the first permanent magnet motor cooperative control unit and the second permanent magnet motor cooperative control unit.
- a third permanent magnet motor cooperative control unit is used to simultaneously collect the A phase, B phase, and C phase current signals of the motor input end, and the current signal is sent to the first permanent magnet motor cooperative control unit and the second permanent magnet motor cooperative control unit.
- a third permanent magnet motor cooperative control unit is used to simultaneously collect the A phase, B phase, and C phase current signals of the motor input end, and the current signal is sent to the first permanent magnet motor cooperative control unit and the second permanent magnet motor cooperative control unit.
- a third permanent magnet motor cooperative control unit is used to simultaneously collect the A phase, B phase, and C phase
- Step 2 The first permanent magnet motor cooperative control unit, the second permanent magnet motor cooperative control unit and the third permanent magnet motor cooperative control unit simultaneously obtain PWM according to the collected phase A, phase B, and C phase current detection signals.
- the signal includes the following steps:
- FIG. 10 is a block diagram of a sensorless control system for a multi-unit permanent magnet synchronous motor. Referring to FIG. 10, taking the internal control process of the first permanent magnet motor cooperative control unit as an example, the specific steps of the cooperative control in step 2 are explained. :
- Step 2-1 Obtain an estimated rotor speed based on the A-phase, B-phase, and C-phase current detection signals i a1 , i b1 , and i c1 . And simultaneously transmitting to each control unit (the first permanent magnet motor cooperative control unit, the second permanent magnet motor cooperative control unit and the third permanent magnet motor cooperative control unit) to realize mutual communication of the three control units;
- Step 2-1-1 performing analog-to-digital conversion on the received current detection signals i a1 , i b1 , i c1 , and performing Clark on the converted A-phase, B-phase, and C-phase current signals according to the initial phase angle value of the rotor.
- Coordinate transformation and Park coordinate transformation obtaining the direct axis current i d and the quadrature axis current i q under the two-phase rotating coordinate system dq;
- the first permanent magnet motor cooperative control unit, the second permanent magnet motor cooperative control unit and the third permanent magnet motor cooperative control unit are used to obtain the internal stator winding resistance value and the rotor initial phase of each unit of the motor.
- Angle value set the rotor given speed value ⁇ * and inject high frequency voltage signal value V inj cos ⁇ h t;
- Step 2-1-2 the cross-axis current i q is obtained by band pass filtering to obtain the high-frequency component of the cross-axis current.
- the above-mentioned high-frequency component of the AC current Multiplying the sinusoidal high-frequency signal sin ⁇ h t to obtain the high-frequency component of the cross-axis current of the separable phase angle error signal And Obtaining a current signal ⁇ containing only phase angle errors by low-pass filtering;
- V inj represents the amplitude of the injected high-frequency voltage signal
- ⁇ h represents the frequency of the injected high-frequency voltage signal
- L 0 represents the half-difference inductance, which is half of the difference between the q-axis equivalent inductance and the d-axis equivalent inductance
- L 1 represents the average inductance, which is half of the q-axis equivalent inductance and the d-axis equivalent inductance and value
- ⁇ represents the phase angle error signal
- Step 2-1-3 Obtain the rotor speed estimation value by PI control algorithm.
- the rotor phase velocity estimation value is obtained by integral operation to obtain the rotor phase angle estimation value.
- Step 2-2 describe the communication structure of the three control units by using the method of constructing an undirected graph
- the first permanent magnet motor cooperative control unit, the second permanent magnet motor cooperative control unit and the third permanent magnet motor cooperative control unit all adopt a full duplex communication mode, so the undirected graph is used for distributed control.
- the communication structure is described.
- the first permanent magnet motor cooperative control unit, the second permanent magnet motor cooperative control unit and the third permanent magnet motor cooperative control unit in the system are respectively defined as three nodes ⁇ 1 , ⁇ 2 , ⁇ 3 ;
- Step 2-3 Obtain a communication association matrix of the control unit as a whole according to the constructed undirected graph, and construct an error function according to the rotor speed estimation value, the set rotor speed value set by the user, and the communication correlation matrix of the control unit as a whole;
- the adjacency matrix of the system is:
- ⁇ denotes the communication association matrix between the two control units, that is, the adjacency matrix of the undirected graph;
- Step 2-4 setting a real matrix and a real number, and obtaining an output value according to the constructed error function
- u i represents the output value of the internal distributed cooperative controller of the i-th control unit
- c is a real value
- K is a 1 ⁇ 2 real number vector
- ⁇ min ( ⁇ G) matrix ⁇ G represents a minimum value of the real part characteristic matrix ⁇ G is:
- Step 2-5 Obtain a direct-axis voltage reference value and a cross-axis voltage reference value in a two-phase stationary coordinate system according to the output value, and then obtain a PWM signal by using space vector pulse width modulation, including the following steps:
- Step 2-5-1 the output value u i is taken as the cross-axis current reference quantity i qref ;
- Step 2-5-2 the obtained direct-axis current i d and the cross-axis current i q are obtained by low-pass filtering to obtain a fundamental straight-axis current i db and a fundamental-wave quadrature current i qb ;
- Step 2-5-3 comparing the fundamental axis current i qb with the cross-axis current reference quantity i qref to obtain the cross-axis current error value i qe , and the fundamental-axis direct-axis current i db and the direct-axis current reference quantity i dref (takes a value of 0) is compared to obtain a straight-axis current error value i de ;
- Step 2-5-4 using the PI control algorithm to calculate the cross-axis current error value i qe and the straight-axis current error value i de respectively, and obtain the cross-axis voltage reference value u qref and the straight-axis voltage reference value u dref , and
- the straight-axis voltage reference value u dref is summed with the high-frequency voltage signal value V inj cos ⁇ h t to obtain a direct-axis voltage reference value u dh containing the high-frequency signal;
- Step 2-5-5 based on the motor rotor phase angle estimate Performing Park inverse coordinate transformation on the cross-axis voltage reference value u qref and the direct-axis voltage reference value u dh containing the high-frequency signal to obtain the direct-axis voltage reference value u ⁇ ref and the cross-axis voltage reference value u ⁇ ref in the two-phase stationary coordinate system Entering u ⁇ ref and u ⁇ ref into the SVPWM module, which generates a PWM signal;
- Step 3 changing the frequency and amplitude of the output stator voltage according to the PWM signal, thereby achieving coordinated control of the rotational speed of each unit motor;
- the PWM signal is controlled by the driving and amplifying circuit to control the inverter unit 1 to output a corresponding three-phase sinusoidal waveform, thereby controlling the stator unit 1 of the motor.
- Unit speed estimate Corresponding curve. It can be seen from the figure that the velocity estimation of the three units at the beginning is zero. Under the action of the distributed cooperative controller, the velocity estimates of the three units tend to be consistent after 4 s. Through the respective distributed cooperative controllers, each unit generates three synchronous rotating magnetic fields with speed synchronization without using the speed sensor, thereby realizing integrated coordinated control of the motor speed.
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Abstract
Description
Claims (10)
- 一种多单元永磁同步电机智能协同控制系统,其特征在于,包括双并联PWM整流电路、第一永磁电机协同控制单元、第二永磁电机协同控制单元、第三永磁电机协同控制单元和多单元永磁同步电机,其中,第一永磁电机协同控制单元、第二永磁电机协同控制单元和第三永磁电机协同控制单元通过并联连接的方式协调控制多单元永磁同步电机的三个定子单元。
- 根据权利要求1所述的多单元永磁同步电机智能协同控制系统,其特征在于,所述的第一永磁电机协同控制单元、第二永磁电机协同控制单元和第三永磁电机协同控制单元结构相同,均包括驱动与放大电路、控制单元和逆变单元,所述的控制单元通过相互通信实现多单元永磁同步电机的协同控制。
- 根据权利要求2所述的多单元永磁同步电机智能协同控制系统,其特征在于,所述的控制单元包括分布式协同控制器和电流控制与速度估算单元,其中,电流控制与速度估算单元:用于采集电机输入端的A相、B相、C相电流检测信号,根据采集的A相、B相、C相电流检测信号,获得的转子速度估计值同时发送至每个控制单元的分布式协同控制器中;并接收分布式协同控制器的输出值,根据上述输出值获得两相静止坐标系下的直轴电压参考值和交轴电压参考值,再采用空间矢量脉宽调制获得PWM信号,将获得的PWM信号通过驱动与放大电路发送至逆变单元中;分布式协同控制器:用于采用构建无向图的方法对三个控制单元的通信结构进行描述,根据所构建的无向图获得各个控制单元整体的通信关联矩阵,并根据转子速度估计值、设置的转子给定速度值和控制单元整体的通信关系矩阵,构建误差函数,设置实数矩阵和实数项,并根据构建的误差函数,求得分布式协同控制器的输出值。
- 根据权利要求1所述的多单元永磁同步电机智能协同控制系统,其特征在于,所述的多单元永磁同步电机,其定子为27槽30极分瓣式结构,每单元为9槽10极,各定子单元共享一个转子;其转子为永磁内置切向式;每单元电机绕组采用节距为1的双层分数槽绕组,各单元电机内部绕组采用星形连接方式。
- 采用权利要求1所述的多单元永磁同步电机智能协同控制系统进行的控制方法,其特征在于,包括以下步骤:步骤1、第一永磁电机协同控制单元、第二永磁电机协同控制单元和第三永磁电机协同控制单元同时采集电机输入端的A相、B相、C相电流检测信号;步骤2、第一永磁电机协同控制单元、第二永磁电机协同控制单元和第三永磁电机协同控制单元同时根据所采集的A相、B相、C相电流检测信号,协调控制获得PWM信号;步骤3、根据PWM信号改变输出定子电压的频率和幅值,实现各单元电机转速的协同控制。
- 根据权利要求5所述的控制方法,其特征在于,步骤2所述的协调控制,包括以下步骤:步骤2-1、根据A相、B相、C相电流检测信号获得转子速度估计值,并同时发送至每个控制单元中实现三个控制单元的相互通信;步骤2-2、采用构建无向图的方法对三个控制单元的通信结构进行描述;步骤2-3、根据所构建的无向图获得控制单元整体的通信关联矩阵,并根据转子速度估计值、用户设定的转子给定速度值和控制单元整体的通信关联矩阵,构建误差函数;步骤2-4、设置实数矩阵和实数项,并根据构建的误差函数,获得输出值;步骤2-5、根据上述输出值获得两相静止坐标系下的直轴电压参考值和交轴电压参考值,再采用空间矢量脉宽调制获得PWM信号。
- 根据权利要求6所述的控制方法,其特征在于,步骤2-1所述的根据A相、B相、C相电流检测信号获得的转子速度估计值,包括以下步骤:步骤2-1-1、将接收到的电流检测信号进行模数转换,并根据转子初始相角值对转换后的A相、B相、C相电流信号进行Clark坐标变换和Park坐标变换,获得两相旋转坐标系下的直轴电流和交轴电流;步骤2-1-2、将交轴电流通过带通滤波处理获得交轴电流高频分量,将上述交轴电流高频分量与正弦高频信号相乘,获得可分离相角误差信号交轴电流高频分量,并将其通过低通滤波处理获得仅含相角误差的电流信号;步骤2-1-3、采用PI控制算法获得转子速度估计值,将上述转子速度估计值通过积分运算获得转子相角估计值。
- 根据权利要求6所述的控制方法,其特征在于,步骤2-3所述的通信关联矩阵为对称矩阵,该矩阵的行数和列数均为3,矩阵中的元素取值为0或1,当控制单元两两之间能够通信时,元素值为1,否则为0;所述的误差函数为:某一控制单元转子速度估计值与其他控制单元转子速度估计值之间的差值乘以系数,加上该控制单元转子速度估计值与设定的转子给定速度值之间差值乘以系数;所述的某一控制单元转子速度估计值与其他控制单元转子速度估计值之间的差值乘以系数,该系数为通信关联矩阵中的元素。
- 根据权利要求6所述的控制方法,其特征在于,步骤2-4所述的输出值,求解方式为:误差函数乘以实数矩阵和实数项,再与设定的转子给定速度值求和;所述的实数矩阵为一个1×2的实数向量。
- 根据权利要求6所述的控制方法,其特征在于,步骤2-5所述的根据上述输出值获得两相静止坐标系下的直轴电压参考值和交轴电压参考值,包括以下步骤:步骤2-5-1、将输出值作为交轴电流参考量;步骤2-5-2、将获得的直轴电流和交轴电流通过低通滤波处理获得基波直轴电流和基波交轴电流;步骤2-5-3、将基波交轴电流与交轴电流参考量比较作差,获得交轴电流误差值,将基波直轴电流与直轴电流参考量比较作差,获得直轴电流误差值;步骤2-5-4、采用PI控制算法分别对交轴电流误差值和直轴电流误差值进行计算,获得交轴电压参考值和直轴电压参考值,并将直轴电压参考值与高频电压信号值求和,获得含高频信号的直轴电压参考值;步骤2-5-5、根据电机转子相角估计值,对交轴电压参考值和含高频信号的直轴电压参考值进行Park反坐标变换,获得两相静止坐标系下的直轴电压参考值和交轴电压参考值,再采用空间矢量脉宽调制获得PWM信号。
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Cited By (4)
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CN114337223A (zh) * | 2021-12-29 | 2022-04-12 | 新疆金风科技股份有限公司 | 零序电流抑制方法及装置、风电变流器、介质和机组 |
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Citations (4)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US20080067984A1 (en) * | 2006-09-20 | 2008-03-20 | Honeywell International, Inc. | Starter-generator operable with multiple variable frequencies and voltages |
CN202261126U (zh) * | 2011-09-22 | 2012-05-30 | 西北工业大学 | 一种用于多台无刷直流电机协调控制的装置 |
CN102969860A (zh) * | 2012-10-26 | 2013-03-13 | 华中科技大学 | 一种多相无刷双馈电机以及变频控制系统 |
CN103472312A (zh) * | 2013-09-29 | 2013-12-25 | 哈尔滨工业大学 | 交流永磁电机铁心损耗测试方法 |
Family Cites Families (12)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JPH0644125B2 (ja) * | 1985-04-15 | 1994-06-08 | キヤノン株式会社 | カメラのためのモ−ド設定表示装置 |
JPH072037B2 (ja) * | 1989-07-03 | 1995-01-11 | 日本オーチス・エレベータ株式会社 | エレベータ駆動用のインバータ制御装置 |
JP3251628B2 (ja) * | 1992-03-06 | 2002-01-28 | 三菱電機株式会社 | エレベーターの速度制御装置 |
EP1575156B1 (en) * | 2004-02-16 | 2015-06-17 | Vacon Oyj | Synchronization of parallel-connected inverter units or frequency converters |
CN1705204A (zh) * | 2004-05-31 | 2005-12-07 | 中原工学院 | 转子逆变器供电多三相绕线异步电动机 |
JP4517994B2 (ja) * | 2005-09-29 | 2010-08-04 | トヨタ自動車株式会社 | 充電制御装置および電動車両 |
FI118875B (fi) * | 2006-09-26 | 2008-04-15 | Vacon Oyj | Invertterien rinnankytkentä |
CN101478258B (zh) | 2009-01-21 | 2010-11-17 | 东北大学 | 一种谐振极型三相软开关逆变电路 |
EP2270970B1 (en) * | 2009-07-02 | 2012-04-04 | Converteam Technology Ltd | Control methods for the synchronisation of parallel-connected power converters operating in accordance with a pulse width modulation (PWM) strategy |
US8374011B2 (en) * | 2010-08-20 | 2013-02-12 | Magnetek, Inc. | Method and apparatus for boosting DC bus voltage |
CN104753406A (zh) * | 2013-12-30 | 2015-07-01 | 南京理工大学常熟研究院有限公司 | 一种多电机协同控制方法 |
CN104242768B (zh) * | 2014-09-11 | 2016-01-20 | 天津大学 | 一种应用于多电机控制系统的有限状态模型预测控制方法 |
-
2015
- 2015-08-07 CN CN201510478313.2A patent/CN105007014B/zh not_active Expired - Fee Related
- 2015-08-14 WO PCT/CN2015/086955 patent/WO2017024596A1/zh active Application Filing
- 2015-08-14 US US15/528,751 patent/US10171020B2/en not_active Expired - Fee Related
Patent Citations (4)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US20080067984A1 (en) * | 2006-09-20 | 2008-03-20 | Honeywell International, Inc. | Starter-generator operable with multiple variable frequencies and voltages |
CN202261126U (zh) * | 2011-09-22 | 2012-05-30 | 西北工业大学 | 一种用于多台无刷直流电机协调控制的装置 |
CN102969860A (zh) * | 2012-10-26 | 2013-03-13 | 华中科技大学 | 一种多相无刷双馈电机以及变频控制系统 |
CN103472312A (zh) * | 2013-09-29 | 2013-12-25 | 哈尔滨工业大学 | 交流永磁电机铁心损耗测试方法 |
Non-Patent Citations (2)
Title |
---|
NAGAISHI, M. ET AL.: "Failure Characteristics of Motor System Using Distributed Inverter for PMSM", POWER ELECTRICS AND APPLICATIONS, 2009. EPE'09. 13 TH EUROPEAN CONFERENCE ON, 10 September 2009 (2009-09-10), XP031541196 * |
ZHAO, PINZHI ET AL.: "Multi-unit Motor Parallel Drive System for Electric Vehicle Application", 2008 IEEE VEHICLE POWER AND PROPULSION CONFERENCE, 5 September 2008 (2008-09-05), XP031363288 * |
Cited By (6)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
CN111082682A (zh) * | 2019-12-23 | 2020-04-28 | 湖北文理学院 | 基于lcl滤波的电压型pwm整流器的协同控制系统及方法 |
CN113147421A (zh) * | 2021-03-26 | 2021-07-23 | 武汉路特斯汽车有限公司 | 车辆的控制方法、装置及计算机可读存储介质 |
CN113147421B (zh) * | 2021-03-26 | 2022-08-19 | 武汉路特斯汽车有限公司 | 车辆的控制方法、装置及计算机可读存储介质 |
CN114337223A (zh) * | 2021-12-29 | 2022-04-12 | 新疆金风科技股份有限公司 | 零序电流抑制方法及装置、风电变流器、介质和机组 |
CN114337431A (zh) * | 2021-12-31 | 2022-04-12 | 上海儒竞智控技术有限公司 | 永磁同步电机磁链辨识方法、系统、介质及终端 |
CN114337431B (zh) * | 2021-12-31 | 2023-06-27 | 上海儒竞智控技术有限公司 | 永磁同步电机磁链辨识方法、系统、介质及终端 |
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CN105007014A (zh) | 2015-10-28 |
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US20170324361A1 (en) | 2017-11-09 |
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