CN201944984U - Energy-saving optimization control system of refrigerator room - Google Patents
Energy-saving optimization control system of refrigerator room Download PDFInfo
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- CN201944984U CN201944984U CN2010205587353U CN201020558735U CN201944984U CN 201944984 U CN201944984 U CN 201944984U CN 2010205587353 U CN2010205587353 U CN 2010205587353U CN 201020558735 U CN201020558735 U CN 201020558735U CN 201944984 U CN201944984 U CN 201944984U
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- 238000005457 optimization Methods 0.000 title abstract description 10
- XLYOFNOQVPJJNP-UHFFFAOYSA-N water Substances O XLYOFNOQVPJJNP-UHFFFAOYSA-N 0.000 claims abstract description 129
- 238000001816 cooling Methods 0.000 claims abstract description 53
- 238000005265 energy consumption Methods 0.000 claims abstract description 46
- 238000004891 communication Methods 0.000 claims abstract description 28
- 239000000498 cooling water Substances 0.000 claims description 45
- 238000012544 monitoring process Methods 0.000 claims description 4
- JEGUKCSWCFPDGT-UHFFFAOYSA-N h2o hydrate Chemical compound O.O JEGUKCSWCFPDGT-UHFFFAOYSA-N 0.000 claims description 2
- 238000005057 refrigeration Methods 0.000 abstract description 3
- 238000013178 mathematical model Methods 0.000 abstract 1
- 238000000034 method Methods 0.000 description 16
- 238000007710 freezing Methods 0.000 description 10
- 230000008014 freezing Effects 0.000 description 10
- 238000001704 evaporation Methods 0.000 description 6
- 238000004378 air conditioning Methods 0.000 description 5
- 239000008400 supply water Substances 0.000 description 5
- 230000001105 regulatory effect Effects 0.000 description 4
- 238000010521 absorption reaction Methods 0.000 description 3
- 230000005540 biological transmission Effects 0.000 description 3
- 230000005494 condensation Effects 0.000 description 3
- 238000009833 condensation Methods 0.000 description 3
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- 238000005259 measurement Methods 0.000 description 3
- 238000013459 approach Methods 0.000 description 2
- 239000002826 coolant Substances 0.000 description 2
- 230000005611 electricity Effects 0.000 description 2
- 238000004134 energy conservation Methods 0.000 description 2
- 230000017525 heat dissipation Effects 0.000 description 2
- 230000033228 biological regulation Effects 0.000 description 1
- 238000012937 correction Methods 0.000 description 1
- 230000007812 deficiency Effects 0.000 description 1
- 230000008030 elimination Effects 0.000 description 1
- 238000003379 elimination reaction Methods 0.000 description 1
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Abstract
The utility model relates to an energy-saving optimization control system of a refrigerator room, which comprises an industrial control computer. A flow sensor, a temperature sensor, an outdoor humiture sensor, a three-phase active power transducer, a water pump frequency converter and a cooling tower fan frequency converter are respectively connected with a programmable controller which is communicated with the industrial control computer through the industrial Ethernet. An RS485 communication interface module is connected with a water chilling unit and communicated with the industrial control computer via the ModBus protocol. By establishing a mathematical model showing the relationship between the energy consumptions and operation parameters of each piece of equipment in the refrigerator room, coupled with the real-time refrigeration load and weather parameters, to adjust the running state of each piece of equipment, the energy-saving optimization control system in the utility model is enabled to achieve the lowest energy consumption by the running of the whole refrigerator room on the premise that the refrigeration load is satisfied.
Description
Technical field:
The utility model relates to a kind of energy conserving system and method, particularly the refrigerator room system.
Background technology:
In whole building energy consumption, the energy consumption of air-conditioning system is occupied very big ratio, generally about 40~50%.And in the energy consumption of air-conditioning system, refrigerator room equipment (comprising handpiece Water Chilling Units, chilled water pump, cooling water pump and cooling tower) accounts for 60%~70%.One is adopted in the electric office building that freezes, and cold source of air conditioning (refrigerator room)-handpiece Water Chilling Units, annual electricity consumption freezing and cooling water pump and cooling tower account for 30~35% of the annual electricity consumption of whole building.
Refrigerating operaton process in the air-conditioning system is: handpiece Water Chilling Units prepares the chilled water of uniform temperature, be transported to end-equipment by chilled water pump, carry out heat exchange, the heat in the absorption chamber with room air, remove redundant moisture in the room air simultaneously, to satisfy the requirement of indoor environment.Temperature raises behind the heat in the chilled water absorption chamber, again by recycling after the handpiece Water Chilling Units cooling.The heat that handpiece Water Chilling Units produces when work (is mainly the heat of chilled water from indoor absorption, the heat that own loss is produced when also comprising handpiece Water Chilling Units work) then absorbs by recirculated cooling water, be transported to cooling tower and outdoor air by cooling water pump and carry out heat, wet exchange, finally distribute in atmospheric environment.
Therefore, how to save the refrigerator room energy consumption substantially the energy consumption that reduces monolithic architecture is had great important, in the prior art, what have can adopt lower chilled water supply water temperature and less chilled-water flow, this moment, the energy consumption of handpiece Water Chilling Units was higher, but the energy consumption of chilled water pump is lower, perhaps adopts higher chilled water supply water temperature and bigger chilled-water flow.Equally, for the requirement of exerting oneself of identical handpiece Water Chilling Units, can select to make it to be operated under the lower condensing pressure, this moment, the energy consumption of handpiece Water Chilling Units was lower, but because lower condensing pressure needs higher cooling water flow, thereby the energy consumption of cooling water pump is higher; Perhaps opposite, adopt the handpiece Water Chilling Units energy consumption higher and working method that the cooling water pump energy consumption is lower does not have.Therefore, do not have a power-economizing method of relatively optimizing.
In the prior art, some method is perhaps feasible under stable laboratory condition, but in actual moving process, because all devices in the refrigerator room all is in continuous running status, cooling load and weather parameters also can change at any time, this parameter actual value that will cause gathering acquisition has not regulation, adjusting energy consumption model by said method can't be optimized energy consumption model, even may produce a contrary effect, it is unpractical therefore seeking the highest operating point of whole freezing calculator room equipment operational efficiency by said method in actual motion.In addition, in the prior art, do not set up the cooling tower heat exchange models simultaneously, this will inevitably reduce the effect of its energy consumption control.
The utility model content:
In order to overcome the deficiencies in the prior art, the utility model provides a kind of refrigerator room energy saving optimizing control system and method, can improve device greatly the air-conditioning system refrigerator room is optimized energy-conservation control effect, saves the refrigerator room energy consumption substantially.
A kind of refrigerator room energy saving optimizing control system that provides according to the utility model, comprise industrial control computer, Programmable Logic Controller, RS485 communication interface module, flow sensor, temperature sensor, outdoor temperature humidity sensor, three phases active power transmitter, differential pressure pick-up, the pump variable frequency device, cooling tower fan frequency converter, motor-driven valve and switching value actuator, handpiece Water Chilling Units; Wherein: flow sensor, temperature sensor, outdoor temperature humidity sensor, three phases active power transmitter, pump variable frequency device and cooling tower fan frequency converter are connected with Programmable Logic Controller respectively, Programmable Logic Controller is by EPA and industrial control computer communication, and the RS485 communication interface module is connected with handpiece Water Chilling Units by ModBus agreement and industrial control computer communication; Described temperature sensor is respectively applied for monitoring chilled water confession/return water temperature, cooling water confession/return water temperature, the outdoor temperature humidity sensor is used to monitor outdoor air dry-bulb temperature and relative humidity, discharge when flow sensor is used to monitor water pump operation, the three phases active power transmitter is used to monitor handpiece Water Chilling Units, the operation energy consumption of water pump and cooling tower, it is poor that differential pressure pickup is used to monitor the terminal temperature difference side pressure, described Programmable Logic Controller and described RS485 communication interface module are used for gathering in real time the data that described sensor obtains, described industrial computer be used to preserve described data and with send the operation control instruction.
Refrigerator room energy saving optimizing control system according to the utility model provides also has following attached technical characterictic:
The outdoor temperature humidity sensor is arranged near the outdoor cooling tower air inlet, chilled water is separately installed with temperature sensor on the return main, cooling water is gone up mounting temperature sensor respectively for the return main, on chilled water water supply or the return main flow sensor is installed, cooling water or return main go up flow sensor are installed, chilled water is equipped with differential pressure pick-up between the return main, the evaporator of every handpiece Water Chilling Units and condenser inlet, be separately installed with motor-driven valve and switching value actuator, every handpiece Water Chilling Units on every cooling tower feed pipe and the return pipe, every chilled water pump, every cooling water pump and every cooling tower are separately installed with the three phases active power transmitter.
The data of described Programmable Logic Controller collection comprise the data that flow sensor, temperature sensor, outdoor temperature humidity sensor, three phases active power transmitter and differential pressure pick-up are obtained, described Programmable Logic Controller sends to industrial control computer with above-mentioned data, and the time interval that described industrial control computer is set is preserved described data one by one.Wherein, the supply and return water temperature of cooling water is detected by temperature sensor, be sent to industrial computer by Programmable Logic Controller, in addition, handpiece Water Chilling Units itself also has the sensor of one group of cooling water supply and return water temperature, its data directly are sent to industrial computer by the RS485 interface, and the supply and return water temperature of chilled water is identical therewith.
Described RS485 communication interface module carries out data acquisition to chilled water supply and return water temperature, cooling water supply and return water temperature, condensation temperature, condensing pressure, evaporating temperature, the evaporating pressure parameter of handpiece Water Chilling Units at least, with ModBus agreement and industrial control computer communication and transmit the data message of described handpiece Water Chilling Units, and, promptly preserve data by group by certain time interval by time sequence preservation.
Described industrial control computer is handled the data message that Programmable Logic Controller and RS485 communication interface module collect, minimum with whole freezing machine room energy consumption be object function, determine each equipment of refrigerator room in next optimization energy-saving run operating mode constantly, and give Programmable Logic Controller and RS485 communication interface module result transmission.
Described Programmable Logic Controller and RS485 communication interface module will be optimized the adjuster that operating condition is transferred to corresponding device, and each equipment is moved under the optimization operating condition.
The utility model has been considered influencing each other in the running of each equipment in the refrigerator room comprehensively, with the whole freezing machine room is whole, consider the optimal operating condition of each equipment comprehensively, seek the best of breed of each equipment in the refrigerator room, realize that refrigerator room runs on higher state, thereby the whole system energy consumption is minimum, realizes purpose of energy saving.
Description of drawings:
Fig. 1 is the structural representation of the utility model device embodiment.
Fig. 2 is the utility model method embodiment flow chart.
The specific embodiment:
As shown in Figure 1 and Figure 2, the utility model device embodiment comprises: industrial control computer 1, Programmable Logic Controller 2, RS485 communication interface module 3, flow sensor 4, temperature sensor 5, outdoor temperature humidity sensor 6, three phases active power transmitter 7, differential pressure pick-up 8, pump variable frequency device 9, cooling tower fan frequency converter 10, motor-driven valve and switching value actuator 11, handpiece Water Chilling Units 12.
According to the utility model, several flow sensors 4, plurality of temperature sensor 5 can be set, outdoor temperature humidity sensor 6, several three phases active power transmitters 7, differential pressure pick-up 8, several pump variable frequency devices 9 are connected with Programmable Logic Controller 2 respectively with several cooling tower fan frequency converters 10, Programmable Logic Controller 2 is by EPA and industrial control computer 1 communication, and RS485 communication interface module 3 is connected with unit by ModBus agreement and industrial control computer 1 communication.Outdoor temperature humidity sensor 6 places near the outdoor cooling tower air inlet, chilled water is installed a temperature sensor 5 respectively on the return main, cooling water is installed a temperature sensor 5 respectively on the return main, chilled water supplies water or the return main goes up flow sensor 4 of installation, cooling water or return main go up a flow sensor 4 are installed, chilled water is for differential pressure pick-up 8 is installed between the return main, every handpiece Water Chilling Units evaporator and condenser inlet, a motor-driven valve and switching value actuator 11 are installed, every handpiece Water Chilling Units respectively on every cooling tower feed pipe and the return pipe, every chilled water pump, every cooling water pump and every cooling tower are installed a three phases active power transmitter 7 respectively.
Described temperature sensor 5 is respectively applied for monitoring chilled water supply and return water temperature, and cooling water supplies
Return water temperature, outdoor temperature humidity sensor 6 is used to monitor outdoor air dry-bulb temperature and relative humidity, discharge when flow sensor 4 is used to monitor water pump operation, three phases active power transmitter 7 is used to monitor the operation energy consumption of handpiece Water Chilling Units, water pump and cooling tower, and it is poor that differential pressure pickup 8 is used to monitor the terminal temperature difference side pressure; Programmable Logic Controller 2 flow sensor 4, temperature sensor 5, outdoor temperature humidity sensor 6, three phases active power transmitter 7 and differential pressure pick-up 8 carry out data acquisition and send to industrial control computer 1, and preserve one by one by certain time interval; Parameters such as the chilled water supply and return water temperature of 3 pairs of handpiece Water Chilling Units of RS485 communication interface module, cooling water supply and return water temperature, condensation temperature, condensing pressure, evaporating temperature, evaporating pressure are carried out data acquisition, transmit these data messages of handpiece Water Chilling Units with ModBus agreement and industrial control computer 1 communication to it, and preserve by the time sequence; 1 pair of Programmable Logic Controller of industrial control computer 2 is handled with the data message that RS485 communication interface module 3 collects, minimum with whole freezing machine room energy consumption be object function, determine each equipment of refrigerator room in next optimization energy-saving run operating mode constantly, and give Programmable Logic Controller 2 and RS485 communication interface module 3 result transmission; Programmable Logic Controller 2 and RS485 communication interface module 3 will be optimized the adjuster that operating condition is transferred to corresponding device, satisfy under the prerequisite of cooling load, make each equipment energy-saving safety operating under the situation of whole freezing machine room total energy consumption minimum.
As shown in Figure 2, the utility model method implementing procedure specifies as follows:
At first, series actual measurement operational factor according to each equipment of refrigerator room, the operational factor of dispatching from the factory in conjunction with each equipment, set up the operational factor of each equipment and the Mathematical Modeling between the energy consumption, set up correction program simultaneously, in the present embodiment, the Mathematical Modeling of foundation is handpiece Water Chilling Units energy consumption model, chilled water pump energy consumption model, cooling water pump energy consumption model and cooling tower energy consumption model;
Secondly, industrial control computer obtains the chilled water supply and return water temperature of handpiece Water Chilling Units by the RS485 communication interface module, the cooling water supply and return water temperature, condensation temperature, condensing pressure, evaporating temperature, parameters such as evaporating pressure, obtain the outdoor dry-bulb temperature that sensor transmits by Programmable Logic Controller, relative humidity, the chilled water supply water temperature, the chilled water return water temperature, the cooling water temperature, the cooling water return water temperature, chilled-water flow, cooling water flow, the power of handpiece Water Chilling Units, the power of chilled water pump, the power of cooling water pump and the power of cooling tower are preserved these data one by one according to certain time interval; The time interval can be set to 2 minutes;
Next, after industrial control computer obtains the real-time running data of each equipment by RS485 communication interface module and Programmable Logic Controller, call the model tuning program energy consumption model of each equipment in the refrigerator room is carried out online real-time correction;
Then, industrial control computer is according to the real-time cooling load and the meteorologic parameter of monitoring, according to the handpiece Water Chilling Units of having proofreaied and correct, chilled water pump, the energy consumption model of cooling water pump and cooling tower, most effective with the whole freezing machine room as target, be about to the handpiece Water Chilling Units energy consumption model, the chilled water pump energy consumption model, each minimum of a value of cooling water pump energy consumption model and cooling tower energy consumption model is as target, be optimized the optimal operating condition that calculates each equipment of refrigerator room, simultaneously handpiece Water Chilling Units is carried out surge Forecast, when cold machine is about to face the surge threat, in advance handpiece Water Chilling Units is carried out surge protection by the operating point that changes handpiece Water Chilling Units, threaten the elimination back to recover original operating point automatically in surge;
At last, industrial control computer is transferred to handpiece Water Chilling Units and Programmable Logic Controller by the optimal operating condition that RS485 communication interface module and EPA calculate optimization, each equipment makes whole freezing machine room energy-saving run under the energy consumption of minimum by the operating mode operation of optimizing among the result;
In the present embodiment, the energy-conservation condition calculating model description of the optimization in the industrial control computer 1 is as follows:
P
chiller_plant=Min(P
chiller+P
CHWpump+P
CWpump+P
CTfan) (1)
Wherein:
In:
P
Chiller: handpiece Water Chilling Units energy consumption, kW;
n
Chiller: handpiece Water Chilling Units operation platform number;
Q
Nom: handpiece Water Chilling Units name cold, kW;
COP
Nom: handpiece Water Chilling Units name COP;
PLR
Adj: handpiece Water Chilling Units sub-load regulatory factor;
TEMP
Adj: the handpiece Water Chilling Units adjustment factor;
a
0, a
1, a
2: handpiece Water Chilling Units sub-load regulatory factor coefficient;
Q
Chiller: the actual cold of handpiece Water Chilling Units, kW;
b
0, b
1, b
2, b
3, b
4, b
5: handpiece Water Chilling Units adjustment factor coefficient;
T
CHWS: the chilled water supply water temperature, ℃; Handpiece Water Chilling Units adjustment factor coefficient
P
Pump: pump energy consumption, kW;
H
St.w: static pressure (only opposite opened system), mH
2O;
K: the coefficient relevant with pipeline characteristic curve;
Q
w: discharge, kg/s;
η
p: pump efficiency;
η
c: transmission efficiency;
η
m: electric efficiency;
P
VFD: frequency converter energy consumption, kW;
P
CHWpump: chilled water pump energy consumption, kW;
n
CHWpump: chilled water pump operation platform number;
c
J, j: the chilled water pump coefficient;
Q
W_CHWpump: chilled water pump flow, kg/s;
P
CWpump: cooling water pump energy consumption, kW;
d
K, k: the cooling water pump coefficient;
Q
W_CWpump: cooling water pump flow, kg/s;
n
CWpump: cooling water pump operation platform number;
P
CTfan: cooling tower energy consumption, kW;
n
CTfan: cooling tower operation platform number;
e
L, l: the cooling tower coefficient;
Q
Air_CTfan: cooling tower air quantity, kg/s;
Q
Rej: cooling tower rate of heat dissipation, kW;
m
w: cooling water flow, kg/s;
m
a: air mass flow, kg/s;
T
CWS: the cooling water temperature, ℃;
T
Wb, i: air ' s wet bulb temperature, ℃;
Formula (1) is most effective as object function with the whole freezing machine room, formula (2) is the efficiency model of handpiece Water Chilling Units, formula (3) is the sub-load regulatory factor in the handpiece Water Chilling Units efficiency model, and formula (4) is the adjustment factor in the handpiece Water Chilling Units efficiency model, the coefficient a in the formula
0, a
1, a
2, b
0, b
1, b
2, b
3, b
4, b
5Obtain according to the sample data regression fit of handpiece Water Chilling Units operation characteristic in conjunction with producer, formula (5), (6), (7) are the efficiency models of water pump, the coefficient c in the formula
J, j, d
K, kThe a series of operation flows of water pump and the corresponding energy consumption that obtain according to actual measurement, and in conjunction with cold machine producer respective sample are returned by nonlinear multivariable and to obtain, and formula (8) is the efficiency model of cooling tower, the coefficient e in the formula
L, lThe a series of operation air quantity of cooling tower fan and the corresponding energy consumption that obtain according to actual measurement, and in conjunction with cold machine producer respective sample, obtain by the nonlinear multivariable recurrence, formula (9) is the relation between the wet-bulb temperature of cooling tower rate of heat dissipation and air quantity, the water yield, coolant water temperature and air by cooling tower, coefficient x in the formula
1, x
2, x
3Under a series of surrounding air wet and dry bulb temperature conditions, the corresponding relation of the heat exchange amount of air quantity, cooling water flow, coolant water temperature and cooling tower by the cooling tower fan in conjunction with the respective sample data of cooling tower producer, is returned by nonlinear multivariable and to obtain.
After utilizing above-mentioned model to set up virtual system, just can find out the running status that refrigerator room is in peak efficiency by the global optimizing algorithm.The input of this global optimization approach comprises: real-time cooling load and meteorologic parameter.Should also be noted that the setting of part limit value simultaneously.At first every kind of equipment all has its maximum working capacity and operation platform number in the refrigerator room; Secondly each equipment in the refrigerator room all is connected in a kind of specific mode with other equipment, influences each other in the running, and for example cold machine, water pump and cooling tower must move simultaneously can realize process of refrigerastion; In addition, quality and energy balance also are the conditions that this global optimization approach must be considered, for example in system's running, the cooling water inflow of the cooling water pump of flowing through, cooling tower and condenser must equate that the heat dissipation capacity of cooling tower should be substantially equal to refrigeration duty and cold acc power sum.
Be optimized when calculating, algorithm should monitor real-time cooling load and meteorologic parameter, with as initial conditions, the relevant limit condition of mentioning with preamble is as constraint, and is most effective as object function with the whole freezing machine room.Here adopt a kind of high efficiency method,, seek combination of optimized operation equipment and the combination of optimal device setting value according to the virtual system model of setting up.In case search out this optimum combination, they will be applied to actual refrigerator room, run on state efficiently to guarantee actual refrigerator room.
The a certain operating mode of pilot process is an example:
For example: certain time point, the real operating mode of certain refrigerator room is: cold board number now moves a handpiece Water Chilling Units, a chilled water pump, a cooling water pump, a cooling tower, handpiece Water Chilling Units name cold Q
Nom, 1Be 7032kW, handpiece Water Chilling Units name COP
Nom, 1Be 5.1.The actual cold Q of handpiece Water Chilling Units
ChillerBe 4922kW, 7 ℃ of chilled water supply water temperatures, 29 ℃ of cooling water temperature, handpiece Water Chilling Units sub-load regulatory factor coefficient a
0=0.13547, a
1=0.75320, a
3=0.10684; Handpiece Water Chilling Units adjustment factor coefficient b
0=0.68874, b
1=-0.0043184, b
2=0.0010723, b
3=0.0014989, b
4=0.0004789, b
5=-0.0010965.The chilled water pump converting operation, chilled-water flow 235kg/s; The cooling water pump converting operation, cooling water flow 279kg/s; Chilled water pump coefficient c
0,1=38.001, c
1,1=0.17599, c
2,1=-0.00014970, c
3,1=2.6998 * 10
-7The cooling water pump coefficient d
0,1=0.014346, d
1,1=-0.00010675, d
2,1=0.0, d
3,1=0.0000015552; Cooling tower is the single speed cooling tower, and cooling tower fan power frequency operation is at 50Hz, and the cooling tower fan power is rated power 42kW.According to foundation Mathematical Modeling, draw:
TEMP
adj=0.68874-0.0043184×7+0.0010723×7×7+0.0014989×29
+0.0004789×29×29-0.0010965×7×29
=0.935
P
CHWpump=38.001+0.17599×235-0.0001497×235×235
+2.6998×10
-7×235×235×235
=74.6kW
P
CWpump=0.014346-0.00010675×279
+0.0000015552×279×279×279
=33.8kW
P
CTfan=42kW
The total energy consumption of refrigerator room is under this operating condition:
P
chiller_plant=921+74.6+33.8+42
=1071.4kW
After obtaining the refrigerator room total energy consumption of this operating mode, system optimizing control is used identical method and is calculated under this real-time cooling load and the meteorologic parameter condition, various device is at the refrigerator room total energy consumption of different operating conditions, final definite optimum operating condition, be that its total energy consumption is the minimum of a value of the refrigerator room total energy consumption of all operating modes, realize this optimum operating condition then, reach purpose of energy saving.
The foregoing description is the usefulness of explanation the utility model only, and is not to be to restriction of the present utility model, and the those of ordinary skill in relevant field on this basis, can also be made numerous variations and improvement project, and not break away from spirit of the present utility model and protection domain.In these claims, wish to have comprised all these changes and the improvement project that meets the utility model essence and scope.
Claims (3)
1. refrigerator room energy saving optimizing control system, it is characterized in that: comprise industrial control computer (1), Programmable Logic Controller (2), RS485 communication interface module (3), flow sensor (4), temperature sensor (5), outdoor temperature humidity sensor (6), three phases active power transmitter (7), differential pressure pick-up (8), pump variable frequency device (9), cooling tower fan frequency converter (10), motor-driven valve and switching value actuator (11), handpiece Water Chilling Units (12); Wherein: flow sensor (4), temperature sensor (5), outdoor temperature humidity sensor (6), three phases active power transmitter (7), pump variable frequency device (9) and cooling tower fan frequency converter (10) are connected with Programmable Logic Controller (2) respectively, Programmable Logic Controller (2) is by EPA and industrial control computer (1) communication, and RS485 communication interface module (3) is connected with handpiece Water Chilling Units by ModBus agreement and industrial control computer (1) communication; Described temperature sensor (5) is respectively applied for monitoring chilled water supply and return water temperature, the cooling water supply and return water temperature, outdoor temperature humidity sensor (6) is used to monitor outdoor air dry-bulb temperature and relative humidity, the discharge of flow sensor (4) when being used to monitor water pump operation, three phases active power transmitter (7) is used to monitor handpiece Water Chilling Units, the operation energy consumption of water pump and cooling tower, it is poor that differential pressure pickup (8) is used to monitor the terminal temperature difference side pressure, described Programmable Logic Controller (2) and described RS485 communication interface module (3) are used for gathering in real time the data that described sensor obtains, described industrial computer (1) be used to preserve described data and with send the operation control instruction.
2. refrigerator room energy saving optimizing control system according to claim 1, it is characterized in that: outdoor temperature humidity sensor (6) is arranged near the outdoor cooling tower air inlet, chilled water is separately installed with temperature sensor (5) on the return main, cooling water is gone up mounting temperature sensor (5) respectively for the return main, on chilled water water supply or the return main flow sensor (4) is installed, cooling water or return main go up flow sensor (4) are installed, chilled water is equipped with differential pressure pick-up (8) between the return main, the evaporator of every handpiece Water Chilling Units and condenser inlet, be separately installed with motor-driven valve and switching value actuator (11), every handpiece Water Chilling Units on every cooling tower feed pipe and the return pipe, every chilled water pump, every cooling water pump and every cooling tower are separately installed with three phases active power transmitter (7).
3. refrigerator room energy saving optimizing control system according to claim 2, it is characterized in that: the data that described Programmable Logic Controller (2) is gathered comprise the data that flow sensor (4), temperature sensor (5), outdoor temperature humidity sensor (6), three phases active power transmitter (7) and differential pressure pick-up (8) are obtained, described Programmable Logic Controller (2) sends to industrial control computer (1) with above-mentioned data, and described industrial control computer (1) is preserved described data one by one by the time interval of setting.
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Cited By (6)
Publication number | Priority date | Publication date | Assignee | Title |
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CN101968250A (en) * | 2010-10-13 | 2011-02-09 | 日滔贸易(上海)有限公司 | Energy-saving optimized control system and method for refrigerator room |
CN102607137A (en) * | 2012-04-11 | 2012-07-25 | 太仓荣文合成纤维有限公司 | Humidity control device and humidity control method of side-blow air conditioning system |
CN103528294A (en) * | 2013-09-27 | 2014-01-22 | 王慧文 | Energy efficiency processing method and system for refrigerating system |
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CN103277875B (en) * | 2013-06-21 | 2017-02-08 | 上海能誉科技发展有限公司 | Energy-saving control system for refrigeration plant room |
CN108224675A (en) * | 2017-12-29 | 2018-06-29 | 北京世纪互联宽带数据中心有限公司 | A kind of method and apparatus for reducing power consumption |
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2010
- 2010-10-13 CN CN2010205587353U patent/CN201944984U/en not_active Expired - Lifetime
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CN101968250A (en) * | 2010-10-13 | 2011-02-09 | 日滔贸易(上海)有限公司 | Energy-saving optimized control system and method for refrigerator room |
CN101968250B (en) * | 2010-10-13 | 2012-12-05 | 濠信节能科技(上海)有限公司 | Energy-saving optimized control system and method for refrigerator room |
CN102607137A (en) * | 2012-04-11 | 2012-07-25 | 太仓荣文合成纤维有限公司 | Humidity control device and humidity control method of side-blow air conditioning system |
CN103277875B (en) * | 2013-06-21 | 2017-02-08 | 上海能誉科技发展有限公司 | Energy-saving control system for refrigeration plant room |
CN103528294A (en) * | 2013-09-27 | 2014-01-22 | 王慧文 | Energy efficiency processing method and system for refrigerating system |
CN103528294B (en) * | 2013-09-27 | 2015-09-16 | 王慧文 | A kind of efficiency processing method of refrigeration system and system |
CN104460615A (en) * | 2014-11-19 | 2015-03-25 | 北京百度网讯科技有限公司 | Method and device for controlling operation of data center auto-control systems |
CN108224675A (en) * | 2017-12-29 | 2018-06-29 | 北京世纪互联宽带数据中心有限公司 | A kind of method and apparatus for reducing power consumption |
CN108224675B (en) * | 2017-12-29 | 2020-04-10 | 北京世纪互联宽带数据中心有限公司 | Method and device for reducing power consumption |
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