WO2014115247A1 - System controller, facility management system, demand control method, and program - Google Patents

System controller, facility management system, demand control method, and program Download PDF

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Publication number
WO2014115247A1
WO2014115247A1 PCT/JP2013/051205 JP2013051205W WO2014115247A1 WO 2014115247 A1 WO2014115247 A1 WO 2014115247A1 JP 2013051205 W JP2013051205 W JP 2013051205W WO 2014115247 A1 WO2014115247 A1 WO 2014115247A1
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WO
WIPO (PCT)
Prior art keywords
air
demand
unit
power consumption
air conditioning
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PCT/JP2013/051205
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French (fr)
Japanese (ja)
Inventor
中村 慎二
正之 小松
忠昭 坂本
Original Assignee
三菱電機株式会社
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Application filed by 三菱電機株式会社 filed Critical 三菱電機株式会社
Priority to JP2014558316A priority Critical patent/JP5936714B2/en
Priority to PCT/JP2013/051205 priority patent/WO2014115247A1/en
Publication of WO2014115247A1 publication Critical patent/WO2014115247A1/en

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    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06QINFORMATION AND COMMUNICATION TECHNOLOGY [ICT] SPECIALLY ADAPTED FOR ADMINISTRATIVE, COMMERCIAL, FINANCIAL, MANAGERIAL OR SUPERVISORY PURPOSES; SYSTEMS OR METHODS SPECIALLY ADAPTED FOR ADMINISTRATIVE, COMMERCIAL, FINANCIAL, MANAGERIAL OR SUPERVISORY PURPOSES, NOT OTHERWISE PROVIDED FOR
    • G06Q50/00Systems or methods specially adapted for specific business sectors, e.g. utilities or tourism
    • G06Q50/06Electricity, gas or water supply
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F11/00Control or safety arrangements
    • F24F11/30Control or safety arrangements for purposes related to the operation of the system, e.g. for safety or monitoring
    • F24F11/46Improving electric energy efficiency or saving
    • FMECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
    • F24HEATING; RANGES; VENTILATING
    • F24FAIR-CONDITIONING; AIR-HUMIDIFICATION; VENTILATION; USE OF AIR CURRENTS FOR SCREENING
    • F24F2140/00Control inputs relating to system states
    • F24F2140/60Energy consumption

Definitions

  • the present invention relates to a demand control technology for an air conditioner.
  • Patent Literature 1 calculates the total power consumption of all outdoor units at the present time, compares the calculated total power consumption with the target power consumption, obtains a required power reduction amount, and calculates the power reduction amount for each outdoor unit.
  • Devices have been proposed that determine the amount of power saved for each outdoor unit by apportioning in proportion to the power consumption ratio of the unit.
  • the present invention has been made to solve such a problem, and provides a system controller or the like that can reliably save energy and prevent a decrease in comfort in demand control for a plurality of air conditioner outdoor units.
  • the purpose is to do.
  • a system controller provides: A target demand information storage unit for storing target demand information in which target demands for a plurality of predetermined time zones are set for each of a plurality of air conditioning outdoor units; A power consumption collection unit that collects the power consumption of each of the air-conditioning outdoor units; For each air conditioner outdoor unit, for each time zone, calculate the predicted power consumption in the time zone based on the corresponding power consumption, the calculated predicted power consumption, and the corresponding target demand, A first process for acquiring an excess or deficiency status of the air conditioning load based on the calculation, a surplus power amount of each of the air-conditioning outdoor units having a margin in the air conditioning load, and a total sum of all the surplus power amounts calculated 2, the third process of allocating the total amount of surplus power to the air conditioner outdoor unit for which the air conditioning load is insufficient, and the air conditioner for which the air conditioning load is insufficient according to the distribution result For an outdoor unit, adjust the corresponding target demand in the direction of increasing, and for the air
  • Embodiment 1 It is a figure showing the whole equipment management system composition concerning Embodiment 1 of the present invention.
  • Embodiment 1 it is a figure which shows the connection aspect of an electric power measurement apparatus.
  • 3 is a flowchart illustrating a procedure of demand adjustment processing according to the first embodiment.
  • Embodiment 2 It is a figure which shows an example of the load change time information of Embodiment 2. It is a figure which shows an example of the latest load change information of Embodiment 2.
  • 9 is a flowchart illustrating a procedure of a processing part for calculating a surplus power amount in the demand adjustment process according to the second embodiment. It is a figure which shows the memory content of the data storage part with which the system controller which concerns on Embodiment 3 of this invention is provided. It is a figure which shows an example of the schedule information of Embodiment 3.
  • 14 is a flowchart illustrating a procedure of a processing part for calculating a surplus power amount in the demand adjustment process of the third embodiment.
  • FIG. 1 is a diagram showing an overall configuration of a facility management system according to Embodiment 1 of the present invention.
  • This equipment management system is a system for managing the operation of an air conditioner (outdoor unit 2, indoor unit 3) installed in an office building, for example, as shown in FIG.
  • Each of which includes a plurality of indoor units 3a to 3c, remote controllers 4a to 4c, and power measuring devices 7a to 7c.
  • the system controller 1 and each of the outdoor units 2a to 2c are connected via a communication line 5 so that they can communicate with each other.
  • the outdoor unit 2a and each indoor unit 3a are connected via a communication line 6a so that they can communicate with each other.
  • the outdoor unit 2b and each indoor unit 3b are connected so as to be able to communicate with each other via a communication line 6b.
  • the outdoor unit 2c and each indoor unit 3c are connected to a communication line. They are connected so as to be able to communicate with each other via 6c.
  • the outdoor unit 2a and each indoor unit 3a are connected by a refrigerant pipe for circulating the refrigerant.
  • the outdoor unit 2b and each indoor unit 3b, and the outdoor unit 2c and each indoor unit 3c are also connected by separate refrigerant pipes.
  • the system controller 1 is connected to the power measuring devices 7a to 7c through the communication line 8.
  • the power measuring devices 7a to 7c are connected to the power supply lines 9a to 9c, respectively, and calculate a power value by acquiring a current value and a voltage value.
  • the outdoor units 2a to 2c receive power supply from the power supply lines 9a to 9c, respectively. Therefore, the power values calculated by the power measuring devices 7a to 7c respectively indicate the power consumption amounts of the outdoor units 2a to 2c.
  • Each of the power measuring devices 7a to 7c transmits data (power consumption data) including the calculated power consumption amount to the system controller 1 at a predetermined timing (for example, every one minute).
  • Each indoor unit 3 performs a driving operation based on an operation signal from the corresponding remote controller 4. Specifically, the indoor unit 3 switches the operation mode such as cooling, heating, dehumidification, and blowing in accordance with the operation signal, and performs an operation of blowing out air at a set temperature with a set air volume. Each indoor unit 3 transmits data indicating the operating state changed based on the operation signal from the corresponding remote controller 4 to the corresponding outdoor unit 2.
  • each outdoor unit 2 When each outdoor unit 2 receives the data indicating the operation state as described above from the corresponding indoor unit 3, the outdoor unit 2 transmits the data to the system controller 1, and the source indoor unit 3 can operate in the operation state. As described above, the operating state of each part (compressor, condenser, expansion valve, evaporator, etc.) constituting the own machine is changed. Each outdoor unit 2 transmits data indicating the operation state after the change of the own unit to the system controller 1.
  • each indoor unit 3 also changes the operation state according to control data from the system controller 1 (sent via the corresponding outdoor unit 2).
  • each outdoor unit 2 is controlled by the system controller 1 so as not to exceed a preset target demand, as will be described in detail later.
  • the system controller 1 comprehensively controls and manages the air conditioners (each outdoor unit 2 and each indoor unit 3). As shown in FIG. 3, the system controller 1 includes a display unit 10, an operation receiving unit 20, a first communication unit 30, a second communication unit 40, a data storage unit 50, and a control unit 60.
  • the display unit 10 includes, for example, a liquid crystal display and the like, and displays various information regarding each outdoor unit 2 and each indoor unit 3 such as a user operation screen and a monitoring screen under the control of the control unit 60. I do.
  • the operation receiving unit 20 includes, for example, a keyboard, a mouse, a keypad, a touch pad, a touch panel, and the like, receives an input operation from the user, and sends a signal related to the received input operation to the control unit 60.
  • the first communication unit 30 communicates with each outdoor unit 2 connected via the communication line 5 according to a predetermined communication method.
  • the second communication unit 40 performs data communication according to a predetermined communication method with each power measurement device 7 connected via the communication line 8.
  • the data storage unit 50 includes a readable / writable non-volatile semiconductor memory such as a flash memory, a hard disk drive, or the like.
  • the data storage unit 50 stores information, programs, and the like for controlling each outdoor unit 2 and each indoor unit 3.
  • the data storage unit 50 stores air conditioner information 51 and a program 52.
  • the air conditioner information 51 is information for controlling each air conditioner (each outdoor unit 2 and each indoor unit 3), and includes, for example, control management information 510 and target demand information 511. As shown in FIG. 4, the control management information 510 stores records in which device addresses are associated with operating state information for the number of installed air conditioners.
  • Equipment address is a communication address assigned to each air conditioner.
  • the operation state information is information indicating the current operation state of the air conditioner, such as an operation mode such as operating / stopped, thermo-on / thermo-off, cooling / heating / air blowing, set temperature, set humidity, and the like.
  • the target demand information 511 is information in which the target demand of each outdoor unit 2 is set. As shown in FIG. 5, the target demand information 511 associates a device address with a target demand (unit: kWh) for each time slot obtained by dividing a day by a predetermined time (in this example, 30 minutes). Records are stored for the number of outdoor units 2 installed.
  • the program 52 is a computer program executed by the control unit 60, and includes a power consumption collection program 520, an air conditioning control program 521, and a demand adjustment program 522.
  • the power consumption collection program 520 is a program describing a program for collecting the power consumption amount of each outdoor unit 2.
  • the air conditioning control program 521 is a program describing normal operation control for each air conditioner (outdoor unit 2, indoor unit 3).
  • the air conditioning control program 521 describes a process for displaying a monitoring screen and accepting designation of a controlled air conditioner and an operation instruction from the user via the monitoring screen.
  • the air conditioning control program 521 describes a process for generating control data in accordance with an operation instruction received from a user and transmitting the generated control data to a designated air conditioner.
  • the air conditioning control program 521 also includes a description of processing for demand controlling each outdoor unit 2.
  • the demand adjustment program 522 is a process (demand adjustment process) for adjusting the target demand (see FIG. 5) preset for each outdoor unit 2 according to the excess or deficiency of the air conditioning load of each outdoor unit 2. It is a written program. The demand adjustment process will be described later.
  • the control unit 60 includes a CPU (Central Processing Unit), a ROM (Read Only Memory), a RAM (Random Access Memory), etc., which are not shown. Functionally, the control unit 60 includes a power consumption collection unit 61, an air conditioning control unit 62, and a demand adjustment unit 63. Each of these functions of the control unit 60 is realized by the CPU executing each of the above programs stored in the data storage unit 50.
  • a CPU Central Processing Unit
  • ROM Read Only Memory
  • RAM Random Access Memory
  • the power consumption collection unit 61 executes processing based on the power consumption collection program 520.
  • the power consumption collection unit 61 receives the power consumption data transmitted from each power measurement device 7 through the second communication unit 40 as described above. Then, the power consumption collecting unit 61 generates data by adding the reception time and the device address of the outdoor unit 2 corresponding to the transmission source power measuring device 7 to the received power consumption data, and the data storage unit 50 Are stored sequentially.
  • the data which matched the outdoor unit 2 and the electric power measurement apparatus 7 shall be beforehand memorize
  • the air conditioning control unit 62 executes processing based on the air conditioning control program 521.
  • the air conditioning control unit 62 executes processing similar to that of this type of conventional system controller, for example, processing for controlling the operation of the air conditioner according to the operation instruction received from the user via the monitoring screen.
  • the air conditioner control unit 62 receives the data indicating the above-described operation state transmitted from the air conditioner via the first communication unit 30, the operation state corresponding to the control management information 510 based on the received data. Update the information content.
  • the air conditioning control unit 62 also performs demand control for each outdoor unit 2.
  • the air-conditioning control unit 62 determines each outdoor unit 2 in the demand time zone from the target demand information 511 at the start times of the time zones (hereinafter referred to as demand time zones) divided as described above. Read the target demand. And the air-conditioning control part 62 controls the driving capability of each outdoor unit 2 so that the power consumption of each outdoor unit 2 does not exceed each target demand.
  • the target demand of each outdoor unit 2 can be appropriately adjusted by the demand adjusting unit 63 according to whether the air conditioning load of each outdoor unit 2 is excessive or insufficient.
  • the air conditioning load refers to an amount of energy necessary for air conditioning at a target temperature set by a user or the like. For the outdoor unit 2 whose target demand is adjusted by the demand adjusting unit 63, the air conditioning control unit 62 performs demand control at the adjusted target demand in the demand time zone.
  • the demand adjustment unit 63 executes processing based on the demand adjustment program 522 (demand adjustment processing).
  • the demand adjusting unit 63 sets the target demand corresponding to each outdoor unit 2 based on the target demand information 511 and the excess / deficiency status of the air conditioning load of each outdoor unit 2 in the demand time zone for each demand time zone. adjust.
  • FIG. 6 is a flowchart showing a procedure of demand adjustment processing executed by the demand adjustment unit 63.
  • the demand adjustment process is started when a predetermined time (for example, 5 minutes) elapses from the start time of each demand time slot.
  • the demand adjusting unit 63 initializes the total surplus power by setting 0 (step S101).
  • the total surplus power amount is a power amount obtained by adding the power amount (room power amount) of the outdoor unit 2 having a surplus air conditioning load in the demand time zone.
  • the demand adjustment unit 63 calculates the predicted power consumption in the demand time zone for each outdoor unit 2 (step S102). At this time, the demand adjustment unit 63 uses the power consumption data sent from the power measuring devices 7 at intervals of 1 minute from the start time of the demand time zone to the current time (for example, 5 minutes), The predicted power consumption of each outdoor unit 2 is calculated. Note that there is no limitation on the method of predicting the power consumption, and various known techniques can be employed.
  • the demand adjustment unit 63 selects one of all the outdoor units 2 (step S103), and determines whether or not the air conditioning load is insufficient for the selected outdoor unit 2 (step S104). . More specifically, the demand adjustment unit 63 compares the target demand in the demand time zone of the outdoor unit 2 set in the target demand information 511 with the previously calculated predicted power consumption of the outdoor unit 2. However, when the predicted power consumption is equal to or greater than the target demand, it is determined that the air conditioning load of the outdoor unit 2 is insufficient. On the other hand, when the predicted power consumption is smaller than the target demand, it is determined that the air conditioning load of the outdoor unit 2 is not insufficient.
  • step S104 when the air conditioning load of the selected outdoor unit 2 is insufficient (step S104; YES), the demand adjusting unit 63 temporarily stores information indicating that the air conditioning load of the outdoor unit 2 is insufficient. (Step S105).
  • the demand adjustment unit 63 determines whether there is a margin in the air conditioning load of the outdoor unit 2 (step S106). Specifically, when the target demand is larger than a value obtained by adding a preset threshold (room threshold) to the predicted power consumption of the outdoor unit 2 calculated previously, the demand adjusting unit 63 It is determined that the air conditioning load of the machine 2 has a margin.
  • a preset threshold room threshold
  • the margin threshold is not limited to a fixed value, and can be set by any of various methods. For example, a value of 10% of the target demand may be used as the margin threshold.
  • the demand adjustment unit 63 calculates a surplus power amount of the outdoor unit 2 (step S107).
  • the marginal power amount is obtained by subtracting the predicted power consumption amount and the margin threshold value from the target demand. Then, the demand adjustment unit 63 adds the calculated marginal power amount of the outdoor unit 2 to the total marginal power amount (step S108).
  • the demand adjustment unit 63 determines whether or not the air conditioning load has been confirmed for all the outdoor units 2 (step S109). When there is an outdoor unit 2 whose air conditioning load has not been confirmed (step S109; NO), the process of the demand adjustment unit 63 returns to step S103. On the other hand, when the confirmation of the air conditioning load for all the outdoor units 2 has been completed (step S109; YES), the demand adjusting unit 63 distributes the total surplus power amount to all the outdoor units 2 that have insufficient air conditioning load. (Step S110).
  • the distribution method at this time is arbitrary. For example, it may be distributed evenly, or may be distributed according to a distribution ratio calculated based on a weight set in advance for each outdoor unit 2.
  • weighting may be set according to the ratio (rated ratio) of the target demand to the rated value of the outdoor unit 2. That is, the weighting is increased for the outdoor unit 2 having a larger rated ratio than others. This is because the outdoor unit 2 having a large rating ratio is highly likely to be responsible for air conditioning in an area where more comfort is emphasized.
  • the demand adjustment unit 63 changes the target demand of the outdoor unit 2 that provided the surplus power (step S111). That is, the demand adjustment unit 63 reduces the amount of surplus power that provides the target demand of the outdoor unit 2 that provided the surplus power. In addition, the demand adjustment unit 63 changes the target demand of the outdoor unit 2 to which the distribution of the total surplus power is provided (Step S112). That is, the demand adjustment unit 63 increases the target demand of the outdoor unit 2 to which the distribution of the total surplus power amount is provided by the provided power amount.
  • each outdoor unit 2 is operation-controlled so as to be equal to or less than a preset target demand for each demand time zone.
  • a preset target demand for each demand time zone it is possible to reliably realize energy saving in the entire equipment management system.
  • the target demand is appropriately adjusted in a direction in which the excess or deficiency of the air conditioning load of each outdoor unit 2 is eliminated, it is possible to prevent a decrease in comfort.
  • the above-described demand adjustment process is executed once in each demand time slot, but may be executed a plurality of times. In this case, for example, it is preferable to repeatedly execute at regular time intervals (for example, 5 minutes). In this way, by adjusting the target demand multiple times in one demand time zone, the condition of the air conditioning load of each outdoor unit 2 can be reflected in the target demand more accurately, and the maintenance of comfort can be further improved. Strengthened.
  • the air conditioning load is reduced in the current process for the outdoor unit 2 that provided the surplus power in the process before the previous time.
  • the supplied amount of power may be collected from the outdoor unit 2 that previously provided a part or all of the surplus amount of power.
  • Embodiment 2 of the present invention will be described.
  • symbol is attached
  • FIG. 7 is a diagram showing storage contents of the data storage unit 50 provided in the system controller 1 of the present embodiment.
  • load characteristic information 512 In the air conditioner information 51 stored in the data storage unit 50, load characteristic information 512, load change time information 513, and latest load change information 514 are newly added. Has been.
  • the load characteristic information 512 is information in which the relationship between the load level and the power consumption of the outdoor unit 2 corresponding to each indoor unit 3 is set. As shown in FIG. 8, the load characteristic information 512 includes the device address of the indoor unit 3, the load level of the indoor unit 3, the power consumption during heating of the corresponding outdoor unit 2, and the corresponding outdoor unit 2. A plurality of records in which the power consumption during cooling is associated with each other are stored.
  • the load change time information 513 is information in which the time required for the load level change is set for each indoor unit 3. As shown in FIG. 9, the load change time information 513 includes the device address of the indoor unit 3, the time required for the change from the load level 3 to 2, the time required for the change from the load level 2 to 1, and the load Records in which the time required to change from level 1 to OFF (thermo OFF) and the time required to change from OF to load level 1 (that is, thermo ON) are stored for the number of indoor units 2 installed. ing.
  • the load change time information 513 may be a fixed value set in advance, or automatically and appropriately by the air conditioning control unit 62 of the control unit 60 based on the history of the actual operation state of each indoor unit 2. It may be updated.
  • the latest load change information 514 As shown in FIG. 10, a record in which the device address of the indoor unit 3, the latest load level change content, and the change time are stored for the number of installed indoor units 2. Has been.
  • the setting content of the latest load change information 514 is updated by the air conditioning control unit 62 every time there is a change in the load level of any indoor unit 3.
  • the demand control unit 63 refers to the load characteristic information 512, the load change time information 513, and the latest load change information 514, thereby changing the load level of each indoor unit 3 and the accompanying power consumption.
  • the amount of increase is predicted, and the target demand is adjusted in consideration of the prediction result.
  • the demand adjustment process of the present embodiment is different from the first embodiment only in the process (step S107 in FIG. 6) for calculating the surplus power amount of the outdoor unit 2 having a sufficient air conditioning load.
  • Other processing portions are not different from those of the first embodiment.
  • the different processing parts will be described in detail.
  • FIG. 11 is a flowchart showing a procedure of an alternative process (room power amount calculation process) in step S107 of FIG. 6 in the demand adjustment process of the present embodiment.
  • the demand control unit 63 selects one of all the indoor units 3 connected to the outdoor unit 2 that has been determined that the air conditioning load has a margin in the determination of step S106 in FIG. S201).
  • the demand control unit 63 refers to the latest load change information 514 and determines whether or not the current load level of the selected indoor unit 3 is thermo OFF (step S202). When the current load level of the selected indoor unit 3 is not thermo OFF (step S202; NO), the processing of the demand control unit 63 proceeds to step S209.
  • the demand control unit 63 refers to the latest load change information 514 and acquires the time when the thermo is OFF. (Step S203). Further, the demand control unit 63 refers to the load change time information 513, acquires the time required for the change from the thermo OFF to the load level 1 (that is, the thermo ON), and obtains the next scheduled time for the thermo ON. (Step S204).
  • the demand control unit 63 determines whether or not the indoor unit 3 is thermo-ON by the next demand adjustment process based on the determined scheduled time (step S205). If the indoor unit 3 is not turned ON by the next demand adjustment process (step S205; NO), the process of the demand control unit 63 proceeds to step S209.
  • the demand control unit 63 refers to the load characteristic information 512 and loads level 1 of the indoor unit 3
  • the power consumption amount of the outdoor unit 3 is acquired (step S206).
  • the demand control unit 63 increases the predicted increase in power consumption due to the indoor unit 3 being thermo-ON based on the acquired power consumption and the time from the current time to the start of the next demand adjustment process. Minute (predicted increase in electric power) is calculated (step S207).
  • the demand control unit 63 adds the calculated predicted increase power amount to the predicted power consumption amount of the outdoor unit 2 calculated in step S102 of FIG. 6 (step S208).
  • step S209 it is determined whether or not the load level change prediction check has been completed for all the indoor units 3 connected to the outdoor unit 2.
  • the process of the demand adjustment unit 63 returns to step S201.
  • the demand control unit 63 calculates a surplus power amount based on the predicted power consumption amount (step S209). S210). More specifically, the demand control unit 63 calculates the marginal power amount by subtracting the predicted power consumption amount and the margin threshold value from the target demand of the outdoor unit 2.
  • thermo OFF a change in the load level of each indoor unit 3
  • the load level may change from thermo OFF to 1 (thermo ON). If predicted, the target demand is adjusted by taking into account the power consumption that increases accordingly.
  • each outdoor unit 2 can be demand-controlled using the target demand adjusted more accurately, and energy saving and comfort can be further improved.
  • the predicted increase in power consumption calculated for the corresponding outdoor unit 2 is calculated.
  • the change in the target load level is not limited to this. For example, even when the load level changes from 1 to 2 or from 2 to 3, the load level may be set as a processing target.
  • Embodiment 3 of the present invention will be described.
  • symbol is attached
  • FIG. 12 is a diagram showing storage contents of the data storage unit 50 provided in the system controller 1 of the present embodiment.
  • the air conditioner information 51 stored in the data storage unit 50 includes schedule information 515 instead of the load change time information 513 and the latest load change information 514.
  • the schedule information 515 is information in which the operation schedule of each indoor unit 3 is set. As illustrated in FIG. 13, the schedule information 515 stores a plurality of records in which the device address of the indoor unit 3, the operation switching time, the set temperature, the operation mode, and information indicating start or stop are associated with each other. Has been.
  • the air conditioning control unit 62 of this embodiment automatically controls the operation of the air conditioners (each outdoor unit 2 and each indoor unit 3) in accordance with the schedule set in the schedule information 515.
  • the demand control part 63 acquires the driving
  • the increase in power consumption accompanying the change is predicted, and the target demand is adjusted in consideration of the prediction result. .
  • the demand adjustment process of the present embodiment is different from the first and second embodiments only in the process (step S107 in FIG. 6) for calculating the surplus power amount of the outdoor unit 2 having a sufficient air conditioning load.
  • Other processing portions are not different from those of the first and second embodiments. Hereinafter, the different processing parts will be described in detail.
  • FIG. 14 is a flowchart showing a procedure of an alternative process (room power amount calculation process) in step S107 of FIG. 6 in the demand adjustment process of the present embodiment.
  • the demand control unit 63 selects one of all the indoor units 3 connected to the outdoor unit 2 that has been determined that the air conditioning load has a margin in the determination of step S106 in FIG. S301).
  • the demand control unit 63 refers to the schedule information 515 and determines whether or not the selected indoor unit 3 is stopped (step S302). When the selected indoor unit 3 is not stopped (step S302; NO), the process of the demand control unit 63 proceeds to step S307.
  • step S302 when the selected indoor unit 3 is stopped (step S302; YES), the demand control unit 63 obtains information related to the next operation from the schedule information 515, that is, the operation switching time, the set temperature, and the operation mode. Are acquired (step S303). And the demand control part 63 determines whether the driving
  • the demand control unit 63 consumes power by starting the operation of the indoor unit 3 as scheduled.
  • a predicted increase in amount is calculated (step S305).
  • the demand control unit 63 calculates the increase predicted electric energy based on the setting contents of the load characteristic information 512, information (set temperature, operation mode) in the next operation acquired from the schedule information 515, and the like. Then, the demand control unit 63 adds the calculated predicted increase power amount to the predicted power consumption amount of the outdoor unit 2 calculated in step S102 of FIG. 6 (step S306).
  • step S307 it is determined whether or not the confirmation of the operation state has been completed for all the indoor units 3 connected to the outdoor unit 2.
  • the process of the demand adjustment unit 63 returns to step S301.
  • the demand control unit 63 calculates the surplus power amount of the outdoor unit 2 based on the predicted power consumption amount. (Step S308). More specifically, the demand control unit 63 calculates the marginal power amount by subtracting the predicted power consumption amount and the margin threshold value from the target demand of the outdoor unit 2.
  • a change in the operation state of each indoor unit 3 is predicted from the setting contents of the schedule information 515, and the operation state changes from stop to start.
  • the target demand is adjusted in consideration of the power consumption that increases accordingly.
  • each outdoor unit 2 can be demand-controlled using the target demand adjusted with higher accuracy, and energy saving and comfort can be achieved. Can be further improved.
  • target demand information 511 For example, regarding various information (target demand information 511, load characteristic information 512, load change time information 513, latest load change information 514, schedule information 515) used in the demand adjustment processing of the first and second embodiments, If necessary, it may be edited as appropriate via the operation accepting unit 20 or the like.
  • the distribution method of such a program is arbitrary. For example, it can be read by a computer such as a flexible disk, a CD-ROM (Compact Disk Read-Only Memory), a DVD (Digital Versatile Disk), an MO (Magneto Optical Disk), or a memory card. It may be stored and distributed on a simple recording medium. Alternatively, the program may be stored in a disk device or the like included in a server device on a communication network such as the Internet, and the program may be distributed by superimposing the program on a carrier wave via the communication network. .
  • a computer such as a flexible disk, a CD-ROM (Compact Disk Read-Only Memory), a DVD (Digital Versatile Disk), an MO (Magneto Optical Disk), or a memory card. It may be stored and distributed on a simple recording medium. Alternatively, the program may be stored in a disk device or the like included in a server device on a communication network such as the Internet, and the program may be distributed by
  • 1 system controller 2a to 2c outdoor unit, 3a to 3c indoor unit, 4a to 4c remote control, 5, 6a to 6c, 8 communication line, 7a to 7c power measuring device, 9a to 9c power supply line, 10 display unit, 20 Operation acceptance unit, 30 first communication unit, 40 second communication unit, 50 data storage unit, 51 air conditioner information, 52 program, 60 control unit, 61 power consumption collection unit, 62 air conditioning control unit, 63 demand adjustment unit 510 control management information, 511 target demand information, 512 load characteristic information, 513 load change time information, 514 latest load change information, 515 schedule information, 520 power consumption collection program, 521 air conditioning control program, 522 demand adjustment program

Abstract

A power consumption acquisition unit (61) acquires the power consumption amount of each of a plurality of air-conditioning outdoor units. For each air-conditioning outdoor unit, a demand adjustment unit (63) calculates a predicted power consumption amount on the basis of the corresponding power consumption amount, and finds the state of sufficiency/insufficiency of air-conditioning load on the basis of the predicted power consumption amount that has been calculated and the corresponding target demand. Further, for an air-conditioning outdoor unit for which the air-conditioning load is insufficient, the demand adjustment unit (63) adjusts the corresponding target demand so as to increase the same, whereas for an air-conditioning outdoor unit for which there is leeway in air-conditioning load, the demand adjustment unit adjusts the corresponding target demand so as to decrease the same. An air-conditioning control unit (62) performs demand control on each of the air-conditioning outdoor units on the basis of the respective corresponding target demands.

Description

システムコントローラ、設備管理システム、デマンド制御方法及びプログラムSystem controller, facility management system, demand control method and program
 本発明は、空調機のデマンド制御技術に関する。 The present invention relates to a demand control technology for an air conditioner.
 従来より、ビル等に設置された複数の空調機の運転制御に関して、省エネルギー化を目的とした様々な技術が提案されている。例えば、特許文献1には、現時点の全室外機の合計消費電力を算出し、算出した合計消費電力と目標消費電力とを比較して必要な電力削減量を求め、この電力削減量を各室外機の消費電力の比率に応じて按分して、各室外機毎の節電量を求める装置が提案されている。 Conventionally, various technologies for energy saving have been proposed for operation control of a plurality of air conditioners installed in a building or the like. For example, Patent Literature 1 calculates the total power consumption of all outdoor units at the present time, compares the calculated total power consumption with the target power consumption, obtains a required power reduction amount, and calculates the power reduction amount for each outdoor unit. Devices have been proposed that determine the amount of power saved for each outdoor unit by apportioning in proportion to the power consumption ratio of the unit.
特開2007-218499号公報JP 2007-218499 A
 ところで、ビル等に設置されるマルチ式空調機においては、様々な要因により、室外機の消費電力は刻々変動することが知られている。このため、電力削減量を各室外機の消費電力の比率に応じて按分して、各室外機毎の節電量を求めるという上記の特許文献1に記載の技術では、消費電力の検出タイミングによっては、空調負荷が過不足状態となる室外機が発生し、快適性が損なわれる虞がある。 By the way, in a multi-type air conditioner installed in a building or the like, it is known that the power consumption of the outdoor unit fluctuates momentarily due to various factors. For this reason, in the technique described in Patent Document 1 in which the power reduction amount is apportioned according to the ratio of the power consumption of each outdoor unit and the power saving amount for each outdoor unit is obtained, depending on the detection timing of the power consumption There is a possibility that an outdoor unit in which the air conditioning load is excessive or insufficient occurs and the comfort is impaired.
 本発明は、かかる問題を解決するためになされたものであり、複数の空調室外機に対するデマンド制御において、省エネルギー化が確実に図れると共に、快適性の低下を防止することができるシステムコントローラ等を提供することを目的とする。 The present invention has been made to solve such a problem, and provides a system controller or the like that can reliably save energy and prevent a decrease in comfort in demand control for a plurality of air conditioner outdoor units. The purpose is to do.
 上記目的を達成するため、本発明に係るシステムコントローラは、
 複数の各空調室外機について、予め決められた複数の時間帯毎の目標デマンドが設定された目標デマンド情報を記憶する目標デマンド情報記憶部と、
 前記各空調室外機の消費電力量を収集する消費電力収集部と、
 前記時間帯毎に、前記各空調室外機について、対応する前記消費電力量に基づいて当該時間帯における予測消費電力量を算出し、算出した前記予測消費電力量と、対応する前記目標デマンドと、に基づいて空調負荷の過不足状況を取得する第1の処理と、前記空調負荷に余裕がある前記空調室外機それぞれの余裕電力量を算出し、算出した全ての前記余裕電力量を総計する第2の処理と、前記余裕電力量の総計を前記空調負荷が不足している前記空調室外機に配分する第3の処理と、前記配分結果に応じて、前記空調負荷が不足している前記空調室外機については、対応する前記目標デマンドを上げる方向で調整し、前記空調負荷に余裕がある前記空調室外機については、対応する前記目標デマンドを下げる方向で調整する第4の処理と、を含むデマンド調整処理を少なくとも1回実行するデマンド調整部と、
 前記各空調室外機に対して、それぞれ対応する前記目標デマンドに基づいて、デマンド制御を行う空調制御部と、を備える。
In order to achieve the above object, a system controller according to the present invention provides:
A target demand information storage unit for storing target demand information in which target demands for a plurality of predetermined time zones are set for each of a plurality of air conditioning outdoor units;
A power consumption collection unit that collects the power consumption of each of the air-conditioning outdoor units;
For each air conditioner outdoor unit, for each time zone, calculate the predicted power consumption in the time zone based on the corresponding power consumption, the calculated predicted power consumption, and the corresponding target demand, A first process for acquiring an excess or deficiency status of the air conditioning load based on the calculation, a surplus power amount of each of the air-conditioning outdoor units having a margin in the air conditioning load, and a total sum of all the surplus power amounts calculated 2, the third process of allocating the total amount of surplus power to the air conditioner outdoor unit for which the air conditioning load is insufficient, and the air conditioner for which the air conditioning load is insufficient according to the distribution result For an outdoor unit, adjust the corresponding target demand in the direction of increasing, and for the air-conditioning outdoor unit that has a margin in the air conditioning load, adjust the corresponding target demand in the direction of decreasing the fourth process, And demand-adjustment unit that executes at least once non-demand adjustment process,
An air conditioning control unit that performs demand control based on the corresponding target demand for each of the air conditioning outdoor units.
 本発明によれば、複数の空調室外機に対するデマンド制御において、省エネルギー化が確実に図れると共に、快適性の低下を防止することができる。 According to the present invention, in demand control for a plurality of air-conditioning outdoor units, energy saving can be ensured and a decrease in comfort can be prevented.
本発明の実施形態1に係る設備管理システムの全体構成を示す図である。It is a figure showing the whole equipment management system composition concerning Embodiment 1 of the present invention. 実施形態1において、電力計測装置の接続態様を示す図である。In Embodiment 1, it is a figure which shows the connection aspect of an electric power measurement apparatus. 本発明の実施形態1に係るシステムコントローラの構成を示すブロック図である。It is a block diagram which shows the structure of the system controller which concerns on Embodiment 1 of this invention. 実施形態1の制御管理情報の一例を示す図である。It is a figure which shows an example of the control management information of Embodiment 1. 実施形態1の目標デマンド情報の一例を示す図である。It is a figure which shows an example of the target demand information of Embodiment 1. 実施形態1のデマンド調整処理の手順を示すフローチャートである。3 is a flowchart illustrating a procedure of demand adjustment processing according to the first embodiment. 本発明の実施形態2に係るシステムコントローラが備えるデータ記憶部の記憶内容を示す図である。It is a figure which shows the memory content of the data storage part with which the system controller which concerns on Embodiment 2 of this invention is provided. 実施形態2の負荷特性情報の一例を示す図である。It is a figure which shows an example of the load characteristic information of Embodiment 2. 実施形態2の負荷変化時間情報の一例を示す図である。It is a figure which shows an example of the load change time information of Embodiment 2. 実施形態2の直近負荷変化情報の一例を示す図である。It is a figure which shows an example of the latest load change information of Embodiment 2. 実施形態2のデマンド調整処理において、余裕電力量を算出する処理部分の手順を示すフローチャートである。9 is a flowchart illustrating a procedure of a processing part for calculating a surplus power amount in the demand adjustment process according to the second embodiment. 本発明の実施形態3に係るシステムコントローラが備えるデータ記憶部の記憶内容を示す図である。It is a figure which shows the memory content of the data storage part with which the system controller which concerns on Embodiment 3 of this invention is provided. 実施形態3のスケジュール情報の一例を示す図である。It is a figure which shows an example of the schedule information of Embodiment 3. 実施形態3のデマンド調整処理において、余裕電力量を算出する処理部分の手順を示すフローチャートである。14 is a flowchart illustrating a procedure of a processing part for calculating a surplus power amount in the demand adjustment process of the third embodiment.
 以下、本発明の実施形態について図面を参照して詳細に説明する。 Hereinafter, embodiments of the present invention will be described in detail with reference to the drawings.
(実施形態1)
 図1は、本発明の実施形態1に係る設備管理システムの全体構成を示す図である。この設備管理システムは、例えば、オフィスビル内に設置された空調機(室外機2、室内機3)の動作管理を行うためのシステムであり、図1に示すように、システムコントローラ1と、室外機2a~2cと、それぞれ複数の室内機3a~3cと、リモコン4a~4cと、電力計測装置7a~7cと、を含んで構成される。
(Embodiment 1)
FIG. 1 is a diagram showing an overall configuration of a facility management system according to Embodiment 1 of the present invention. This equipment management system is a system for managing the operation of an air conditioner (outdoor unit 2, indoor unit 3) installed in an office building, for example, as shown in FIG. Each of which includes a plurality of indoor units 3a to 3c, remote controllers 4a to 4c, and power measuring devices 7a to 7c.
 システムコントローラ1と、室外機2a~2cの各々とは、通信線5を介して相互に通信可能となるように接続されている。室外機2aと、各室内機3aとは、通信線6aを介して相互に通信可能となるように接続されている。また、室外機2bと、各室内機3bとは、通信線6bを介して相互に通信可能となるように接続されており、同様に、室外機2cと、各室内機3cとは、通信線6cを介して相互に通信可能となるように接続されている。なお、図示はしないが、室外機2aと各室内機3aとは、冷媒を循環させるための冷媒配管により接続されている。同様に、室外機2bと各室内機3b及び室外機2cと各室内機3cについても、それぞれ別個の冷媒配管により接続されている。 The system controller 1 and each of the outdoor units 2a to 2c are connected via a communication line 5 so that they can communicate with each other. The outdoor unit 2a and each indoor unit 3a are connected via a communication line 6a so that they can communicate with each other. The outdoor unit 2b and each indoor unit 3b are connected so as to be able to communicate with each other via a communication line 6b. Similarly, the outdoor unit 2c and each indoor unit 3c are connected to a communication line. They are connected so as to be able to communicate with each other via 6c. Although not shown, the outdoor unit 2a and each indoor unit 3a are connected by a refrigerant pipe for circulating the refrigerant. Similarly, the outdoor unit 2b and each indoor unit 3b, and the outdoor unit 2c and each indoor unit 3c are also connected by separate refrigerant pipes.
 また、システムコントローラ1は、電力計測装置7a~7cと通信線8を介して接続する。電力計測装置7a~7cは、図2に示すように、それぞれ電力供給線9a~9cに接続し、電流値と電圧値を取得することで電力値を算出する。室外機2a~2cは、それぞれ、電力供給線9a~9cから電力の供給を受ける。したがって、電力計測装置7a~7cがそれぞれ算出する電力値は、室外機2a~2cそれぞれの消費電力量を示す。電力計測装置7a~7cの各々は、算出した消費電力量を含むデータ(消費電力データ)を所定のタイミング(例えば、1分間隔)でシステムコントローラ1に送信する。 Further, the system controller 1 is connected to the power measuring devices 7a to 7c through the communication line 8. As shown in FIG. 2, the power measuring devices 7a to 7c are connected to the power supply lines 9a to 9c, respectively, and calculate a power value by acquiring a current value and a voltage value. The outdoor units 2a to 2c receive power supply from the power supply lines 9a to 9c, respectively. Therefore, the power values calculated by the power measuring devices 7a to 7c respectively indicate the power consumption amounts of the outdoor units 2a to 2c. Each of the power measuring devices 7a to 7c transmits data (power consumption data) including the calculated power consumption amount to the system controller 1 at a predetermined timing (for example, every one minute).
 各室内機3は、対応するリモコン4からの操作信号に基づいた運転動作を行う。具体的には、室内機3は、かかる操作信号に従って、冷房、暖房、除湿、送風等の運転モードを切り替え、設定された温度の空気を設定された風量で吹き出す動作を行う。また、各室内機3は、対応するリモコン4からの操作信号に基づいて変更した動作状態を示すデータを対応する室外機2に送信する。 Each indoor unit 3 performs a driving operation based on an operation signal from the corresponding remote controller 4. Specifically, the indoor unit 3 switches the operation mode such as cooling, heating, dehumidification, and blowing in accordance with the operation signal, and performs an operation of blowing out air at a set temperature with a set air volume. Each indoor unit 3 transmits data indicating the operating state changed based on the operation signal from the corresponding remote controller 4 to the corresponding outdoor unit 2.
 各室外機2は、対応する室内機3から、上記のような動作状態を示すデータを受信すると、かかるデータをシステムコントローラ1に送信すると共に、当該動作状態で送信元の室内機3が稼働できるように、自機を構成する各部(コンプレッサ、凝縮器、膨張弁、蒸発器等)の動作状態を変更する。また、各室外機2は、自機の変更後の動作状態を示すデータをシステムコントローラ1に送信する。 When each outdoor unit 2 receives the data indicating the operation state as described above from the corresponding indoor unit 3, the outdoor unit 2 transmits the data to the system controller 1, and the source indoor unit 3 can operate in the operation state. As described above, the operating state of each part (compressor, condenser, expansion valve, evaporator, etc.) constituting the own machine is changed. Each outdoor unit 2 transmits data indicating the operation state after the change of the own unit to the system controller 1.
 また、各室内機3は、システムコントローラ1からの制御データ(対応する室外機2を経由して送られてくる)によっても、動作状態の変更を行う。 In addition, each indoor unit 3 also changes the operation state according to control data from the system controller 1 (sent via the corresponding outdoor unit 2).
 さらに、本発明においては、各室外機2は、詳細は後述するが、各々予め設定された目標デマンドを超えないように、システムコントローラ1によって、制御される。 Furthermore, in the present invention, each outdoor unit 2 is controlled by the system controller 1 so as not to exceed a preset target demand, as will be described in detail later.
 システムコントローラ1は、空調機(各室外機2及び各室内機3)を統括的に制御、管理する。図3に示すように、システムコントローラ1は、表示部10、操作受付部20、第1の通信部30、第2の通信部40、データ記憶部50及び制御部60を備える。 The system controller 1 comprehensively controls and manages the air conditioners (each outdoor unit 2 and each indoor unit 3). As shown in FIG. 3, the system controller 1 includes a display unit 10, an operation receiving unit 20, a first communication unit 30, a second communication unit 40, a data storage unit 50, and a control unit 60.
 表示部10は、例えば、液晶表示器等で構成され、制御部60の制御の下、ユーザ操作用の画面や、監視画面等、各室外機2及び各室内機3に関する様々な情報等の表示を行う。操作受付部20は、例えば、キーボード、マウス、キーパッド、タッチパッドやタッチパネル等で構成され、ユーザからの入力操作を受け付け、受け付けた入力操作に係る信号を制御部60に送出する。 The display unit 10 includes, for example, a liquid crystal display and the like, and displays various information regarding each outdoor unit 2 and each indoor unit 3 such as a user operation screen and a monitoring screen under the control of the control unit 60. I do. The operation receiving unit 20 includes, for example, a keyboard, a mouse, a keypad, a touch pad, a touch panel, and the like, receives an input operation from the user, and sends a signal related to the received input operation to the control unit 60.
 第1の通信部30は、通信線5を介して接続する各室外機2と所定の通信方式に則った通信を行う。第2の通信部40は、通信線8を介して接続する各電力計測装置7と所定の通信方式に則ったデータ通信を行う。 The first communication unit 30 communicates with each outdoor unit 2 connected via the communication line 5 according to a predetermined communication method. The second communication unit 40 performs data communication according to a predetermined communication method with each power measurement device 7 connected via the communication line 8.
 データ記憶部50は、フラッシュメモリ等の読み書き可能な不揮発性の半導体メモリやハードディスクドライブ等から構成される。データ記憶部50は、各室外機2及び各室内機3を制御するための情報やプログラム等を記憶する。具体的には、データ記憶部50には、空調機情報51と、プログラム52と、が記憶される。 The data storage unit 50 includes a readable / writable non-volatile semiconductor memory such as a flash memory, a hard disk drive, or the like. The data storage unit 50 stores information, programs, and the like for controlling each outdoor unit 2 and each indoor unit 3. Specifically, the data storage unit 50 stores air conditioner information 51 and a program 52.
 空調機情報51は、各空調機(各室外機2、各室内機3)を制御するための情報であり、例えば、制御管理情報510と、目標デマンド情報511と、を含む。制御管理情報510には、図4に示すように、機器アドレスと、運転状態情報とを対応付けたレコードが空調機の設置台数分格納されている。 The air conditioner information 51 is information for controlling each air conditioner (each outdoor unit 2 and each indoor unit 3), and includes, for example, control management information 510 and target demand information 511. As shown in FIG. 4, the control management information 510 stores records in which device addresses are associated with operating state information for the number of installed air conditioners.
 機器アドレスは、各空調機に割り振られた通信上のアドレスである。運転状態情報は、運転中/停止中、サーモオン/サーモオフ、冷房/暖房/送風などの運転モード、設定温度、設定湿度など、空調機の現在の運転状態を示す情報である。 Equipment address is a communication address assigned to each air conditioner. The operation state information is information indicating the current operation state of the air conditioner, such as an operation mode such as operating / stopped, thermo-on / thermo-off, cooling / heating / air blowing, set temperature, set humidity, and the like.
 目標デマンド情報511は、各室外機2の目標デマンドが設定された情報である。図5に示すように、目標デマンド情報511には、機器アドレスと、1日を所定時間(本例では、30分)で分割した各時間帯毎の目標デマンド(単位kWh)とを対応付けたレコードが室外機2の設置台数分格納されている。 The target demand information 511 is information in which the target demand of each outdoor unit 2 is set. As shown in FIG. 5, the target demand information 511 associates a device address with a target demand (unit: kWh) for each time slot obtained by dividing a day by a predetermined time (in this example, 30 minutes). Records are stored for the number of outdoor units 2 installed.
 図3に戻り、プログラム52は、制御部60によって実行されるコンピュータ・プログラムであり、消費電力収集プログラム520と、空調制御プログラム521と、デマンド調整プログラム522と、を含む。 3, the program 52 is a computer program executed by the control unit 60, and includes a power consumption collection program 520, an air conditioning control program 521, and a demand adjustment program 522.
 消費電力収集プログラム520は、各室外機2の消費電力量を収集するためのプログラムについて記述されたプログラムである。 The power consumption collection program 520 is a program describing a program for collecting the power consumption amount of each outdoor unit 2.
 空調制御プログラム521は、各空調機(室外機2、室内機3)に対する通常の動作制御について記述されたプログラムである。例えば、空調制御プログラム521には、監視画面を表示し、その監視画面を介して、ユーザから、制御対象の空調機の指定及び操作指示を受け付ける処理について記述されている。また、空調制御プログラム521には、ユーザから受け付けた操作指示などに従って制御データを生成し、指定された空調機に対して、生成した制御データを送信する処理について記述されている。また、空調制御プログラム521には、各室外機2をデマンド制御する処理についての記述もある。 The air conditioning control program 521 is a program describing normal operation control for each air conditioner (outdoor unit 2, indoor unit 3). For example, the air conditioning control program 521 describes a process for displaying a monitoring screen and accepting designation of a controlled air conditioner and an operation instruction from the user via the monitoring screen. The air conditioning control program 521 describes a process for generating control data in accordance with an operation instruction received from a user and transmitting the generated control data to a designated air conditioner. In addition, the air conditioning control program 521 also includes a description of processing for demand controlling each outdoor unit 2.
 デマンド調整プログラム522は、各室外機2に対して予め設定された目標デマンド(図5参照)を、各室外機2の空調負荷の過不足に応じて調整するための処理(デマンド調整処理)について記述されたプログラムである。デマンド調整処理については後述する。 The demand adjustment program 522 is a process (demand adjustment process) for adjusting the target demand (see FIG. 5) preset for each outdoor unit 2 according to the excess or deficiency of the air conditioning load of each outdoor unit 2. It is a written program. The demand adjustment process will be described later.
 制御部60は、何れも図示しないが、CPU(Central Processing Unit)、ROM(Read Only Memory)、RAM(Random Access Memory)等を備える。また、制御部60は、機能的には、消費電力収集部61と、空調制御部62と、デマンド調整部63と、を備える。制御部60のこれらの各機能は、CPUがデータ記憶部50に格納された上記の各プログラムを実行することで実現される。 The control unit 60 includes a CPU (Central Processing Unit), a ROM (Read Only Memory), a RAM (Random Access Memory), etc., which are not shown. Functionally, the control unit 60 includes a power consumption collection unit 61, an air conditioning control unit 62, and a demand adjustment unit 63. Each of these functions of the control unit 60 is realized by the CPU executing each of the above programs stored in the data storage unit 50.
 消費電力収集部61は、消費電力収集プログラム520に基づいた処理を実行する。消費電力収集部61は、前述したように各電力計測装置7から送られてくる消費電力データを第2の通信部40を介して受信する。そして、消費電力収集部61は、受信した消費電力データに、受信時刻と、送信元の電力計測装置7に対応する室外機2の機器アドレスと、を付加したデータを生成し、データ記憶部50に逐次格納する。なお、室外機2と、電力計測装置7とを対応付けたデータは、予めデータ記憶部50等に記憶されているものとする。 The power consumption collection unit 61 executes processing based on the power consumption collection program 520. The power consumption collection unit 61 receives the power consumption data transmitted from each power measurement device 7 through the second communication unit 40 as described above. Then, the power consumption collecting unit 61 generates data by adding the reception time and the device address of the outdoor unit 2 corresponding to the transmission source power measuring device 7 to the received power consumption data, and the data storage unit 50 Are stored sequentially. In addition, the data which matched the outdoor unit 2 and the electric power measurement apparatus 7 shall be beforehand memorize | stored in the data storage part 50 grade | etc.,.
 空調制御部62は、空調制御プログラム521に基づいた処理を実行する。空調制御部62は、従来のこの種のシステムコントローラと同様の処理、例えば、監視画面を介してユーザから受け付けた操作指示に従って空調機の運転動作を制御する処理を実行する。また、空調制御部62は、空調機から送信された上述の動作状態を示すデータを第1の通信部30を介して受信すると、受信したデータに基づいて、制御管理情報510の対応する運転状態情報の内容を更新する。 The air conditioning control unit 62 executes processing based on the air conditioning control program 521. The air conditioning control unit 62 executes processing similar to that of this type of conventional system controller, for example, processing for controlling the operation of the air conditioner according to the operation instruction received from the user via the monitoring screen. In addition, when the air conditioner control unit 62 receives the data indicating the above-described operation state transmitted from the air conditioner via the first communication unit 30, the operation state corresponding to the control management information 510 based on the received data. Update the information content.
 また、空調制御部62は、各室外機2に対してデマンド制御も行う。本実施形態では、空調制御部62は、前述のようにして分割した時間帯(以降、デマンド時間帯という。)の各開始時刻になると、目標デマンド情報511から当該デマンド時間帯における各室外機2の目標デマンドを読み出す。そして、空調制御部62は、各室外機2の消費電力量が、各々の目標デマンドを超えないように各室外機2の運転能力を制御する。但し、詳細は後述するが、各室外機2の目標デマンドは、デマンド調整部63により、各室外機2の空調負荷の過不足に応じて適宜調整され得る。空調負荷とは、ユーザ等によって設定された目標温度等により空調するために必要なエネルギー量等をいう。デマンド調整部63により目標デマンドが調整された室外機2については、空調制御部62は、当該デマンド時間帯において、その調整後の目標デマンドにてデマンド制御を行う。 The air conditioning control unit 62 also performs demand control for each outdoor unit 2. In the present embodiment, the air-conditioning control unit 62 determines each outdoor unit 2 in the demand time zone from the target demand information 511 at the start times of the time zones (hereinafter referred to as demand time zones) divided as described above. Read the target demand. And the air-conditioning control part 62 controls the driving capability of each outdoor unit 2 so that the power consumption of each outdoor unit 2 does not exceed each target demand. However, although the details will be described later, the target demand of each outdoor unit 2 can be appropriately adjusted by the demand adjusting unit 63 according to whether the air conditioning load of each outdoor unit 2 is excessive or insufficient. The air conditioning load refers to an amount of energy necessary for air conditioning at a target temperature set by a user or the like. For the outdoor unit 2 whose target demand is adjusted by the demand adjusting unit 63, the air conditioning control unit 62 performs demand control at the adjusted target demand in the demand time zone.
 デマンド調整部63は、デマンド調整プログラム522に基づいた処理(デマンド調整処理)を実行する。デマンド調整部63は、デマンド時間帯毎に、目標デマンド情報511と、当該デマンド時間帯における各室外機2の空調負荷の過不足状況と、に基づいて、各室外機2に対応する目標デマンドを調整する。 The demand adjustment unit 63 executes processing based on the demand adjustment program 522 (demand adjustment processing). The demand adjusting unit 63 sets the target demand corresponding to each outdoor unit 2 based on the target demand information 511 and the excess / deficiency status of the air conditioning load of each outdoor unit 2 in the demand time zone for each demand time zone. adjust.
 図6は、デマンド調整部63が実行するデマンド調整処理の手順を示すフローチャートである。デマンド調整処理は、各デマンド時間帯の開始時刻から所定時間(例えば、5分)経過すると開始される。 FIG. 6 is a flowchart showing a procedure of demand adjustment processing executed by the demand adjustment unit 63. The demand adjustment process is started when a predetermined time (for example, 5 minutes) elapses from the start time of each demand time slot.
 デマンド調整部63は、総余裕電力量に0を設定して初期化する(ステップS101)。総余裕電力量とは、当該デマンド時間帯において、空調負荷に余裕がある室外機2の余裕分の電力量(余裕電力量)を加算した電力量である。 The demand adjusting unit 63 initializes the total surplus power by setting 0 (step S101). The total surplus power amount is a power amount obtained by adding the power amount (room power amount) of the outdoor unit 2 having a surplus air conditioning load in the demand time zone.
 デマンド調整部63は、各室外機2について、当該デマンド時間帯における予測消費電力量を算出する(ステップS102)。この際、デマンド調整部63は、当該デマンド時間帯の開始時刻から現時点までの間(例えば、5分間)に、各電力計測装置7から1分間隔で送られてきた消費電力データを用いて、各室外機2の予測消費電力量を算出する。なお、消費電力量の予測の手法について限定はなく、周知の様々な技術が採用できる。 The demand adjustment unit 63 calculates the predicted power consumption in the demand time zone for each outdoor unit 2 (step S102). At this time, the demand adjustment unit 63 uses the power consumption data sent from the power measuring devices 7 at intervals of 1 minute from the start time of the demand time zone to the current time (for example, 5 minutes), The predicted power consumption of each outdoor unit 2 is calculated. Note that there is no limitation on the method of predicting the power consumption, and various known techniques can be employed.
 次に、デマンド調整部63は、全ての室外機2の中から1つを選択し(ステップS103)、選択した室外機2について、空調負荷が不足しているか否かを判定する(ステップS104)。より詳細には、デマンド調整部63は、目標デマンド情報511に設定されている当該室外機2の当該デマンド時間帯における目標デマンドと、先に算出した当該室外機2の予測消費電力量とを比較し、予測消費電力量が目標デマンド以上になっている場合、当該室外機2の空調負荷が不足していると判定する。一方、予測消費電力量が目標デマンドより小さい場合、当該室外機2の空調負荷は不足していないと判定する。 Next, the demand adjustment unit 63 selects one of all the outdoor units 2 (step S103), and determines whether or not the air conditioning load is insufficient for the selected outdoor unit 2 (step S104). . More specifically, the demand adjustment unit 63 compares the target demand in the demand time zone of the outdoor unit 2 set in the target demand information 511 with the previously calculated predicted power consumption of the outdoor unit 2. However, when the predicted power consumption is equal to or greater than the target demand, it is determined that the air conditioning load of the outdoor unit 2 is insufficient. On the other hand, when the predicted power consumption is smaller than the target demand, it is determined that the air conditioning load of the outdoor unit 2 is not insufficient.
 上記の判定の結果、選択した室外機2の空調負荷が不足している場合(ステップS104;YES)、デマンド調整部63は、当該室外機2の空調負荷が不足している旨の情報を一時的に保持する(ステップS105)。 As a result of the above determination, when the air conditioning load of the selected outdoor unit 2 is insufficient (step S104; YES), the demand adjusting unit 63 temporarily stores information indicating that the air conditioning load of the outdoor unit 2 is insufficient. (Step S105).
 一方、選択した室外機2の空調負荷が不足していない場合(ステップS104;NO)、デマンド調整部63は、当該室外機2の空調負荷に余裕があるか否かを判定する(ステップS106)。具体的には、デマンド調整部63は、当該目標デマンドが、先に算出した当該室外機2の予測消費電力量に予め設定された閾値(余裕閾値)を加算した値よりも大きい場合、当該室外機2の空調負荷に余裕があると判定する。例えば、目標デマンドが3.4kWhであり、余裕閾値が0.5kWhとすると、予測消費電力量が2.8kWhの場合では、当該室外機2の空調負荷に余裕があると判定し、予測消費電力量が3.0kWhの場合では、当該室外機2の空調負荷に余裕がないと判定する。なお、余裕閾値は、固定値に限定されず、任意の様々な手法により設定することができる。例えば、目標デマンドの10%の値を余裕閾値としてもよい。 On the other hand, when the air conditioning load of the selected outdoor unit 2 is not insufficient (step S104; NO), the demand adjustment unit 63 determines whether there is a margin in the air conditioning load of the outdoor unit 2 (step S106). . Specifically, when the target demand is larger than a value obtained by adding a preset threshold (room threshold) to the predicted power consumption of the outdoor unit 2 calculated previously, the demand adjusting unit 63 It is determined that the air conditioning load of the machine 2 has a margin. For example, when the target demand is 3.4 kWh and the margin threshold is 0.5 kWh, when the predicted power consumption is 2.8 kWh, it is determined that the air conditioning load of the outdoor unit 2 has a margin, and the predicted power consumption When the amount is 3.0 kWh, it is determined that there is no margin in the air conditioning load of the outdoor unit 2. Note that the margin threshold is not limited to a fixed value, and can be set by any of various methods. For example, a value of 10% of the target demand may be used as the margin threshold.
 上記の判定の結果、選択した室外機2の空調負荷に余裕がある場合(ステップS106;YES)、デマンド調整部63は、当該室外機2の余裕電力量を算出する(ステップS107)。余裕電力量は、目標デマンドから予測消費電力量及び余裕閾値を差し引くことで求められる。そして、デマンド調整部63は、総余裕電力量に算出した当該室外機2の余裕電力量を加算する(ステップS108)。 As a result of the above determination, when there is a margin in the air conditioning load of the selected outdoor unit 2 (step S106; YES), the demand adjustment unit 63 calculates a surplus power amount of the outdoor unit 2 (step S107). The marginal power amount is obtained by subtracting the predicted power consumption amount and the margin threshold value from the target demand. Then, the demand adjustment unit 63 adds the calculated marginal power amount of the outdoor unit 2 to the total marginal power amount (step S108).
 デマンド調整部63は、全ての室外機2に対して、空調負荷の確認が完了したか否かを判定する(ステップS109)。空調負荷が未確認の室外機2がある場合(ステップS109;NO)、デマンド調整部63の処理は、ステップS103に戻る。一方、全ての室外機2に対する空調負荷の確認が完了した場合(ステップS109;YES)、デマンド調整部63は、総余裕電力量を空調負荷が不足している全ての室外機2に対して配分する(ステップS110)。この際の配分の手法は任意である。例えば、均等に配分してもよいし、各室外機2に対して予め設定した重み付けに基づいて算出した配分比に従って配分してもよい。 The demand adjustment unit 63 determines whether or not the air conditioning load has been confirmed for all the outdoor units 2 (step S109). When there is an outdoor unit 2 whose air conditioning load has not been confirmed (step S109; NO), the process of the demand adjustment unit 63 returns to step S103. On the other hand, when the confirmation of the air conditioning load for all the outdoor units 2 has been completed (step S109; YES), the demand adjusting unit 63 distributes the total surplus power amount to all the outdoor units 2 that have insufficient air conditioning load. (Step S110). The distribution method at this time is arbitrary. For example, it may be distributed evenly, or may be distributed according to a distribution ratio calculated based on a weight set in advance for each outdoor unit 2.
 重み付けの場合、例えば、室外機2の定格値に対する目標デマンドの比率(定格比)に応じて重み付けが設定されてもよい。即ち、定格比が他と比べて大きい室外機2については、重み付けを大きくする。これは、定格比が大きい室外機2は、より快適性を重視されれるエリアにおける空調を担っている可能性が高いからである。 In the case of weighting, for example, weighting may be set according to the ratio (rated ratio) of the target demand to the rated value of the outdoor unit 2. That is, the weighting is increased for the outdoor unit 2 having a larger rated ratio than others. This is because the outdoor unit 2 having a large rating ratio is highly likely to be responsible for air conditioning in an area where more comfort is emphasized.
 そして、デマンド調整部63は、余裕電力量を提供した室外機2の目標デマンドを変更する(ステップS111)。即ち、デマンド調整部63は、余裕電力量を提供した室外機2の目標デマンドを提供した余裕電力量分引き下げる。また、デマンド調整部63は、総余裕電力量の配分が提供された室外機2の目標デマンドを変更する(ステップS112)。即ち、デマンド調整部63は、総余裕電力量の配分が提供された室外機2の目標デマンドを提供された電力量分引き上げる。 Then, the demand adjustment unit 63 changes the target demand of the outdoor unit 2 that provided the surplus power (step S111). That is, the demand adjustment unit 63 reduces the amount of surplus power that provides the target demand of the outdoor unit 2 that provided the surplus power. In addition, the demand adjustment unit 63 changes the target demand of the outdoor unit 2 to which the distribution of the total surplus power is provided (Step S112). That is, the demand adjustment unit 63 increases the target demand of the outdoor unit 2 to which the distribution of the total surplus power amount is provided by the provided power amount.
 以上説明したように、本発明の本実施形態に係る設備管理システムによれば、各室外機2は、各デマンド時間帯毎に、それぞれ予め設定した目標デマンド以下となるように動作制御されるため、設備管理システム全体における省エネルギー化を確実に実現できる。また、各室外機2の空調負荷の過不足が解消される方向で目標デマンドが適宜調整されるため、快適性の低下を防止することができる。 As described above, according to the facility management system according to the present embodiment of the present invention, each outdoor unit 2 is operation-controlled so as to be equal to or less than a preset target demand for each demand time zone. In addition, it is possible to reliably realize energy saving in the entire equipment management system. Moreover, since the target demand is appropriately adjusted in a direction in which the excess or deficiency of the air conditioning load of each outdoor unit 2 is eliminated, it is possible to prevent a decrease in comfort.
 なお、本実施形態では、上述したデマンド調整処理は、各デマンド時間帯において1回実行されるものであったが、複数回実行されても勿論構わない。この場合、例えば、一定時間(例えば、5分)間隔で繰り返し実行されるようにするのが好ましい。このように、一のデマンド時間帯で、目標デマンドの調整を複数回行うことで、より精度よく各室外機2の空調負荷の状況を目標デマンドに反映させることができ、快適性の維持がより強化される。 In the present embodiment, the above-described demand adjustment process is executed once in each demand time slot, but may be executed a plurality of times. In this case, for example, it is preferable to repeatedly execute at regular time intervals (for example, 5 minutes). In this way, by adjusting the target demand multiple times in one demand time zone, the condition of the air conditioning load of each outdoor unit 2 can be reflected in the target demand more accurately, and the maintenance of comfort can be further improved. Strengthened.
 また、上記のように一のデマンド時間帯でデマンド調整処理を複数回実行する場合、前回以前の処理にて、余裕電力量を提供している室外機2については、今回の処理で空調負荷が不足している場合、先に余裕電力量の一部又は全部を提供した室外機2から、提供した電力量分を回収するようにしてもよい。 In addition, when the demand adjustment process is executed a plurality of times in one demand time period as described above, the air conditioning load is reduced in the current process for the outdoor unit 2 that provided the surplus power in the process before the previous time. When the amount is insufficient, the supplied amount of power may be collected from the outdoor unit 2 that previously provided a part or all of the surplus amount of power.
 このように、元の設定になるべく戻るようにすることで、当初の目標デマンドの設定趣旨に沿ったデマンド制御が実現できる。 In this way, by returning as much as possible to the original setting, demand control in accordance with the purpose of setting the initial target demand can be realized.
(実施形態2)
 続いて、本発明の実施形態2について説明する。なお、実施形態1と共通する構成要素等については、同一の符号を付し、その説明を省略する。
(Embodiment 2)
Subsequently, Embodiment 2 of the present invention will be described. In addition, about the component etc. which are common in Embodiment 1, the same code | symbol is attached | subjected and the description is abbreviate | omitted.
 図7は、本実施形態のシステムコントローラ1が備えるデータ記憶部50の記憶内容を示す図である。この図から判るように、本実施形態では、データ記憶部50に記憶される空調機情報51において、負荷特性情報512と、負荷変化時間情報513と、直近負荷変化情報514と、が新たに追加されている。 FIG. 7 is a diagram showing storage contents of the data storage unit 50 provided in the system controller 1 of the present embodiment. As can be seen from this figure, in this embodiment, in the air conditioner information 51 stored in the data storage unit 50, load characteristic information 512, load change time information 513, and latest load change information 514 are newly added. Has been.
 負荷特性情報512は、各室内機3について、負荷レベルと対応する室外機2の消費電力量との関係が設定された情報である。図8に示すように、負荷特性情報512には、室内機3の機器アドレスと、室内機3の負荷レベルと、対応する室外機2の暖房時の消費電力量と、対応する室外機2の冷房時の消費電力量と、を対応付けたレコードが複数格納されている。 The load characteristic information 512 is information in which the relationship between the load level and the power consumption of the outdoor unit 2 corresponding to each indoor unit 3 is set. As shown in FIG. 8, the load characteristic information 512 includes the device address of the indoor unit 3, the load level of the indoor unit 3, the power consumption during heating of the corresponding outdoor unit 2, and the corresponding outdoor unit 2. A plurality of records in which the power consumption during cooling is associated with each other are stored.
 負荷変化時間情報513は、各室内機3について、負荷レベルの変化に要する時間が設定された情報である。図9に示すように、負荷変化時間情報513には、室内機3の機器アドレスと、負荷レベル3から2への変化に要する時間と、負荷レベル2から1への変化に要する時間と、負荷レベル1からOFF(サーモOFF)への変化に要する時間と、OFから負荷レベル1(即ち、サーモON)への変化に要する時間と、を対応付けたレコードが室内機2の設置台数分格納されている。負荷変化時間情報513は、予め設定された固定値であってもよいし、制御部60の空調制御部62により、各室内機2の実際の動作状態の履歴に基づいて、適宜、自動的に更新されるようにしてもよい。 The load change time information 513 is information in which the time required for the load level change is set for each indoor unit 3. As shown in FIG. 9, the load change time information 513 includes the device address of the indoor unit 3, the time required for the change from the load level 3 to 2, the time required for the change from the load level 2 to 1, and the load Records in which the time required to change from level 1 to OFF (thermo OFF) and the time required to change from OF to load level 1 (that is, thermo ON) are stored for the number of indoor units 2 installed. ing. The load change time information 513 may be a fixed value set in advance, or automatically and appropriately by the air conditioning control unit 62 of the control unit 60 based on the history of the actual operation state of each indoor unit 2. It may be updated.
 直近負荷変化情報514には、図10に示すように、室内機3の機器アドレスと、直近の負荷レベルの変化内容と、変化時刻と、を対応付けたレコードが室内機2の設置台数分格納されている。直近負荷変化情報514の設定内容は、空調制御部62によって、何れかの室内機3の負荷レベルの変化がある度に更新される。 In the latest load change information 514, as shown in FIG. 10, a record in which the device address of the indoor unit 3, the latest load level change content, and the change time are stored for the number of installed indoor units 2. Has been. The setting content of the latest load change information 514 is updated by the air conditioning control unit 62 every time there is a change in the load level of any indoor unit 3.
 本実施形態では、デマンド制御部63は、上記の負荷特性情報512、負荷変化時間情報513及び直近負荷変化情報514を参照することで、各室内機3の負荷レベルの変化と、それに伴う消費電力量の増加分を予測し、その予測結果も加味して目標デマンドを調整する。 In the present embodiment, the demand control unit 63 refers to the load characteristic information 512, the load change time information 513, and the latest load change information 514, thereby changing the load level of each indoor unit 3 and the accompanying power consumption. The amount of increase is predicted, and the target demand is adjusted in consideration of the prediction result.
 より詳細には、本実施形態のデマンド調整処理では、空調負荷に余裕のある室外機2の余裕電力量を算出する処理(図6のステップS107)部分のみが、実施形態1と異なる。他の処理部分については、実施形態1と相違はない。以下、上記の相違する処理部分について詳細に説明する。 More specifically, the demand adjustment process of the present embodiment is different from the first embodiment only in the process (step S107 in FIG. 6) for calculating the surplus power amount of the outdoor unit 2 having a sufficient air conditioning load. Other processing portions are not different from those of the first embodiment. Hereinafter, the different processing parts will be described in detail.
 図11は、本実施形態のデマンド調整処理における、図6のステップS107の代替処理(余裕電力量算出処理)の手順を示すフローチャートである。先ず、デマンド制御部63は、図6のステップS106の判定で空調負荷に余裕があると判定された室外機2において、これと接続する全ての室内機3の中から1つを選択する(ステップS201)。 FIG. 11 is a flowchart showing a procedure of an alternative process (room power amount calculation process) in step S107 of FIG. 6 in the demand adjustment process of the present embodiment. First, the demand control unit 63 selects one of all the indoor units 3 connected to the outdoor unit 2 that has been determined that the air conditioning load has a margin in the determination of step S106 in FIG. S201).
 デマンド制御部63は、直近負荷変化情報514を参照して、選択した室内機3の現在の負荷レベルがサーモOFFであるか否かを判定する(ステップS202)。選択した室内機3の現在の負荷レベルがサーモOFFでない場合(ステップS202;NO)、デマンド制御部63の処理はステップS209に移行する。 The demand control unit 63 refers to the latest load change information 514 and determines whether or not the current load level of the selected indoor unit 3 is thermo OFF (step S202). When the current load level of the selected indoor unit 3 is not thermo OFF (step S202; NO), the processing of the demand control unit 63 proceeds to step S209.
 一方、選択した室内機3の現在の負荷レベルがサーモOFFである場合(ステップS202;YES)、デマンド制御部63は、直近負荷変化情報514を参照して、サーモOFFになった時刻を取得する(ステップS203)。また、デマンド制御部63は、負荷変化時間情報513を参照して、サーモOFFから負荷レベル1(即ち、サーモON)への変化に要する時間を取得し、次にサーモONになる予定時刻を求める(ステップS204)。 On the other hand, when the current load level of the selected indoor unit 3 is thermo OFF (step S202; YES), the demand control unit 63 refers to the latest load change information 514 and acquires the time when the thermo is OFF. (Step S203). Further, the demand control unit 63 refers to the load change time information 513, acquires the time required for the change from the thermo OFF to the load level 1 (that is, the thermo ON), and obtains the next scheduled time for the thermo ON. (Step S204).
 デマンド制御部63は、求めた予定時刻に基づいて、次回のデマンド調整処理までに、当該室内機3がサーモONになるか否かを判定する(ステップS205)。次回のデマンド調整処理までに、当該室内機3がサーモONにならない場合(ステップS205;NO)、デマンド制御部63の処理は、ステップS209に移行する。 The demand control unit 63 determines whether or not the indoor unit 3 is thermo-ON by the next demand adjustment process based on the determined scheduled time (step S205). If the indoor unit 3 is not turned ON by the next demand adjustment process (step S205; NO), the process of the demand control unit 63 proceeds to step S209.
 一方、次回のデマンド調整処理までに、当該室内機3がサーモONになる場合(ステップS205;YES)、デマンド制御部63は、負荷特性情報512を参照して、当該室内機3の負荷レベル1における当該室外機3の消費電力量を取得する(ステップS206)。そして、デマンド制御部63は、取得した消費電力量と、現在時刻から次回のデマンド調整処理開始までの時間と、に基づいて、当該室内機3がサーモONになることによる消費電力量の予測増加分(増加予測電力量)を算出する(ステップS207)。デマンド制御部63は、図6のステップS102で算出した当該室外機2の予測消費電力量に、算出した増加予測電力量を加算する(ステップS208)。 On the other hand, when the indoor unit 3 is thermo-ON by the next demand adjustment process (step S205; YES), the demand control unit 63 refers to the load characteristic information 512 and loads level 1 of the indoor unit 3 The power consumption amount of the outdoor unit 3 is acquired (step S206). Then, the demand control unit 63 increases the predicted increase in power consumption due to the indoor unit 3 being thermo-ON based on the acquired power consumption and the time from the current time to the start of the next demand adjustment process. Minute (predicted increase in electric power) is calculated (step S207). The demand control unit 63 adds the calculated predicted increase power amount to the predicted power consumption amount of the outdoor unit 2 calculated in step S102 of FIG. 6 (step S208).
 ステップS209では、当該室外機2に接続する全ての室内機3に対して、負荷レベル変化の予測確認が完了したか否かを判定する。負荷レベル変化の予測確認が完了していない室内機3がある場合(ステップS209;NO)、デマンド調整部63の処理は、ステップS201に戻る。一方、全ての室内機3に対して、負荷レベル変化の予測確認が完了した場合(ステップS209;YES)、デマンド制御部63は、予測消費電力量に基づいて、余裕電力量を算出する(ステップS210)。より具体的には、デマンド制御部63は、当該室外機2の目標デマンドから予測消費電力量及び余裕閾値を差し引くことで余裕電力量を算出する。 In step S209, it is determined whether or not the load level change prediction check has been completed for all the indoor units 3 connected to the outdoor unit 2. When there is an indoor unit 3 that has not been subjected to the prediction check of the load level change (step S209; NO), the process of the demand adjustment unit 63 returns to step S201. On the other hand, when the prediction confirmation of the load level change is completed for all the indoor units 3 (step S209; YES), the demand control unit 63 calculates a surplus power amount based on the predicted power consumption amount (step S209). S210). More specifically, the demand control unit 63 calculates the marginal power amount by subtracting the predicted power consumption amount and the margin threshold value from the target demand of the outdoor unit 2.
 以上説明したように、本発明の本実施形態に係る設備管理システムによれば、各室内機3の負荷レベルの変化を予測し、負荷レベルがサーモOFFから1(サーモON)に変化することが予測される場合には、それに伴って増加する消費電力量も加味して目標デマンドを調整する。 As described above, according to the facility management system according to the present embodiment of the present invention, a change in the load level of each indoor unit 3 is predicted, and the load level may change from thermo OFF to 1 (thermo ON). If predicted, the target demand is adjusted by taking into account the power consumption that increases accordingly.
 したがって、各室外機2を、より精度よく調整した目標デマンドを用いてデマンド制御することができ、省エネルギー性及び快適性のさらなる向上が図れる。 Therefore, each outdoor unit 2 can be demand-controlled using the target demand adjusted more accurately, and energy saving and comfort can be further improved.
 なお、本実施形態では、負荷レベルがサーモOFFから1(サーモON)に変化することが予測される室内機3が存在する場合に、対応する室外機2の予測消費電力を、算出した増加予測電力量分増加させていたが、対象とする負荷レベルの変化は、これに限定されない。例えば、負荷レベルが1から2、あるいは、2から3に変化する場合であっても処理対象にしてもよい。 In the present embodiment, when there is an indoor unit 3 whose load level is predicted to change from thermo OFF to 1 (thermo ON), the predicted increase in power consumption calculated for the corresponding outdoor unit 2 is calculated. Although the power amount is increased, the change in the target load level is not limited to this. For example, even when the load level changes from 1 to 2 or from 2 to 3, the load level may be set as a processing target.
(実施形態3)
 続いて、本発明の実施形態3について説明する。なお、実施形態1、2と共通する構成要素等については、同一の符号を付し、その説明を省略する。
(Embodiment 3)
Subsequently, Embodiment 3 of the present invention will be described. In addition, about the component etc. which are common in Embodiment 1, 2, the same code | symbol is attached | subjected and the description is abbreviate | omitted.
 図12は、本実施形態のシステムコントローラ1が備えるデータ記憶部50の記憶内容を示す図である。本実施形態では、実施形態2と異なり、データ記憶部50に記憶される空調機情報51には、負荷変化時間情報513及び直近負荷変化情報514の代わりに、スケジュール情報515が含まれている。 FIG. 12 is a diagram showing storage contents of the data storage unit 50 provided in the system controller 1 of the present embodiment. In the present embodiment, unlike the second embodiment, the air conditioner information 51 stored in the data storage unit 50 includes schedule information 515 instead of the load change time information 513 and the latest load change information 514.
 スケジュール情報515は、各室内機3の運転スケジュールが設定された情報である。図13に示すように、スケジュール情報515には、室内機3の機器アドレスと、運転切替時刻と、設定温度と、運転モードと、開始又は停止を示す情報と、を対応付けたレコードが複数格納されている。 The schedule information 515 is information in which the operation schedule of each indoor unit 3 is set. As illustrated in FIG. 13, the schedule information 515 stores a plurality of records in which the device address of the indoor unit 3, the operation switching time, the set temperature, the operation mode, and information indicating start or stop are associated with each other. Has been.
 本実施形態の空調制御部62は、このスケジュール情報515に設定されたスケジュールに則って自動的に空調機(各室外機2及び各室内機3)の運転制御を行う。 The air conditioning control unit 62 of this embodiment automatically controls the operation of the air conditioners (each outdoor unit 2 and each indoor unit 3) in accordance with the schedule set in the schedule information 515.
 また、本実施形態では、デマンド制御部63は、負荷特性情報512及び上記のスケジュール情報515を参照することで、各室内機3の運転状態を取得する。そして、運転停止から開始に変化することが予定される室内機3が存在する場合には、その変化に伴う消費電力量の増加分を予測し、その予測結果も加味して目標デマンドを調整する。 Moreover, in this embodiment, the demand control part 63 acquires the driving | running state of each indoor unit 3 with reference to the load characteristic information 512 and said schedule information 515. FIG. When there is an indoor unit 3 that is scheduled to change from stop to start, the increase in power consumption accompanying the change is predicted, and the target demand is adjusted in consideration of the prediction result. .
 より詳細には、本実施形態のデマンド調整処理では、空調負荷に余裕のある室外機2の余裕電力量を算出する処理(図6のステップS107)部分のみが、実施形態1、2と異なる。他の処理部分については、実施形態1、2と相違はない。以下、上記の相違する処理部分について詳細に説明する。 More specifically, the demand adjustment process of the present embodiment is different from the first and second embodiments only in the process (step S107 in FIG. 6) for calculating the surplus power amount of the outdoor unit 2 having a sufficient air conditioning load. Other processing portions are not different from those of the first and second embodiments. Hereinafter, the different processing parts will be described in detail.
 図14は、本実施形態のデマンド調整処理における、図6のステップS107の代替処理(余裕電力量算出処理)の手順を示すフローチャートである。先ず、デマンド制御部63は、図6のステップS106の判定で空調負荷に余裕があると判定された室外機2において、これと接続する全ての室内機3の中から1つを選択する(ステップS301)。 FIG. 14 is a flowchart showing a procedure of an alternative process (room power amount calculation process) in step S107 of FIG. 6 in the demand adjustment process of the present embodiment. First, the demand control unit 63 selects one of all the indoor units 3 connected to the outdoor unit 2 that has been determined that the air conditioning load has a margin in the determination of step S106 in FIG. S301).
 デマンド制御部63は、スケジュール情報515を参照して、選択した室内機3が停止中か否かを判定する(ステップS302)。選択した室内機3が停止中でない場合(ステップS302;NO)、デマンド制御部63の処理はステップS307に移行する。 The demand control unit 63 refers to the schedule information 515 and determines whether or not the selected indoor unit 3 is stopped (step S302). When the selected indoor unit 3 is not stopped (step S302; NO), the process of the demand control unit 63 proceeds to step S307.
 一方、選択した室内機3が停止中の場合(ステップS302;YES)、デマンド制御部63は、スケジュール情報515から、次回の運転に関する情報、即ち、運転切替時刻と、設定温度と、運転モードと、を取得する(ステップS303)。そして、デマンド制御部63は、次回のデマンド調整処理までに、当該室内機3の運転が開始されるか否かを判定する(ステップS304)。次回のデマンド調整処理までに、当該室内機3の運転が開始されない場合(ステップS304;NO)、デマンド制御部63の処理は、ステップS307に移行する。 On the other hand, when the selected indoor unit 3 is stopped (step S302; YES), the demand control unit 63 obtains information related to the next operation from the schedule information 515, that is, the operation switching time, the set temperature, and the operation mode. Are acquired (step S303). And the demand control part 63 determines whether the driving | operation of the said indoor unit 3 is started by the next demand adjustment process (step S304). If the operation of the indoor unit 3 is not started by the next demand adjustment process (step S304; NO), the process of the demand control unit 63 proceeds to step S307.
 一方、次回のデマンド調整処理までに、当該室内機3の運転が開始される場合(ステップS304;YES)、デマンド制御部63は、当該室内機3がスケジュール通りに運転開始されることによる消費電力量の予測増加分(増加予測電力量)を算出する(ステップS305)。例えば、デマンド制御部63は、負荷特性情報512の設定内容、スケジュール情報515から取得した次回の運転における情報(設定温度、運転モード)等に基づいて、増加予測電力量を算出する。そして、デマンド制御部63は、図6のステップS102で算出した当該室外機2の予測消費電力量に、算出した増加予測電力量を加算する(ステップS306)。 On the other hand, when the operation of the indoor unit 3 is started before the next demand adjustment process (step S304; YES), the demand control unit 63 consumes power by starting the operation of the indoor unit 3 as scheduled. A predicted increase in amount (increased predicted power amount) is calculated (step S305). For example, the demand control unit 63 calculates the increase predicted electric energy based on the setting contents of the load characteristic information 512, information (set temperature, operation mode) in the next operation acquired from the schedule information 515, and the like. Then, the demand control unit 63 adds the calculated predicted increase power amount to the predicted power consumption amount of the outdoor unit 2 calculated in step S102 of FIG. 6 (step S306).
 ステップS307では、当該室外機2に接続する全ての室内機3に対して、運転状態の確認が完了したか否かを判定する。運転状態が未確認の室内機3がある場合(ステップS307;NO)、デマンド調整部63の処理は、ステップS301に戻る。一方、全ての室内機3に対して、運転状態の確認が完了した場合(ステップS307;YES)、デマンド制御部63は、予測消費電力量に基づいて、当該室外機2の余裕電力量を算出する(ステップS308)。より具体的には、デマンド制御部63は、当該室外機2の目標デマンドから予測消費電力量及び余裕閾値を差し引くことで余裕電力量を算出する。 In step S307, it is determined whether or not the confirmation of the operation state has been completed for all the indoor units 3 connected to the outdoor unit 2. When there is an indoor unit 3 whose operation state has not been confirmed (step S307; NO), the process of the demand adjustment unit 63 returns to step S301. On the other hand, when the confirmation of the operation state is completed for all the indoor units 3 (step S307; YES), the demand control unit 63 calculates the surplus power amount of the outdoor unit 2 based on the predicted power consumption amount. (Step S308). More specifically, the demand control unit 63 calculates the marginal power amount by subtracting the predicted power consumption amount and the margin threshold value from the target demand of the outdoor unit 2.
 以上説明したように、本発明の本実施形態に係る設備管理システムによれば、スケジュール情報515の設定内容から、各室内機3の運転状態の変化を予測し、運転状態が停止から開始に変化する場合には、それに伴って増加する消費電力量も加味して目標デマンドを調整する。 As described above, according to the facility management system according to the present embodiment of the present invention, a change in the operation state of each indoor unit 3 is predicted from the setting contents of the schedule information 515, and the operation state changes from stop to start. In this case, the target demand is adjusted in consideration of the power consumption that increases accordingly.
 したがって、空調機がスケジュールに従って運転される場合であっても、実施形態2と同様、各室外機2を、より精度よく調整した目標デマンドを用いてデマンド制御することができ、省エネルギー性及び快適性のさらなる向上が図れる。 Therefore, even when the air conditioner is operated according to the schedule, as in the second embodiment, each outdoor unit 2 can be demand-controlled using the target demand adjusted with higher accuracy, and energy saving and comfort can be achieved. Can be further improved.
 以上、本発明の実施形態について説明したが、本発明は、上記各実施形態に限定されず、本発明の要旨を逸脱しない範囲での種々の変更は勿論可能である。 As mentioned above, although embodiment of this invention was described, this invention is not limited to said each embodiment, Of course, the various change in the range which does not deviate from the summary of this invention is possible.
 例えば、実施形態1、2のデマンド調整処理で使用される、各種の情報(目標デマンド情報511、負荷特性情報512、負荷変化時間情報513、直近負荷変化情報514、スケジュール情報515)に関して、ユーザが、必要に応じて操作受付部20等を介して、適宜編集できるようにしてもよい。 For example, regarding various information (target demand information 511, load characteristic information 512, load change time information 513, latest load change information 514, schedule information 515) used in the demand adjustment processing of the first and second embodiments, If necessary, it may be edited as appropriate via the operation accepting unit 20 or the like.
 また、システムコントローラ1が実行した各プログラムを既存のパーソナルコンピュータ(PC)等に適用することで、当該PC等を本発明に係るシステムコントローラとして機能させることも可能である。 Further, by applying each program executed by the system controller 1 to an existing personal computer (PC) or the like, it is possible to cause the PC or the like to function as the system controller according to the present invention.
 このようなプログラムの配布方法は任意であり、例えば、フレキシブルディスク、CD-ROM(Compact Disk Read-Only Memory)、DVD(Digital Versatile Disk)、MO(Magneto Optical Disk)、メモリカードなどのコンピュータ読み取り可能な記録媒体に格納して配布してもよい。あるいは、インターネット等の通信ネットワーク上のサーバ装置が有するディスク装置等に上記プログラムを格納しておき、かかるサーバ装置から、当該通信ネットワークを介して、上記プログラムを搬送波に重畳させて配信してもよい。 The distribution method of such a program is arbitrary. For example, it can be read by a computer such as a flexible disk, a CD-ROM (Compact Disk Read-Only Memory), a DVD (Digital Versatile Disk), an MO (Magneto Optical Disk), or a memory card. It may be stored and distributed on a simple recording medium. Alternatively, the program may be stored in a disk device or the like included in a server device on a communication network such as the Internet, and the program may be distributed by superimposing the program on a carrier wave via the communication network. .
 この場合、上述した本発明に係る機能を、OS(Operating System)とアプリケーションプログラムの分担、またはOSとアプリケーションプログラムとの協働により実現する場合などでは、アプリケーションプログラム部分のみを記録媒体等に格納してもよい。 In this case, when the functions according to the present invention described above are realized by sharing an OS (Operating System) and an application program, or by cooperation between the OS and the application program, only the application program portion is stored in a recording medium or the like. May be.
 1 システムコントローラ、2a~2c 室外機、3a~3c 室内機、4a~4c リモコン、5,6a~6c,8 通信線、7a~7c 電力計測装置、9a~9c 電力供給線、10 表示部、20 操作受付部、30 第1の通信部、40 第2の通信部、50 データ記憶部、51 空調機情報、52 プログラム、60 制御部、61 消費電力収集部、62 空調制御部、63 デマンド調整部、510 制御管理情報、511 目標デマンド情報、512 負荷特性情報、513 負荷変化時間情報、514 直近負荷変化情報、515 スケジュール情報、520 消費電力収集プログラム、521 空調制御プログラム、522 デマンド調整プログラム 1 system controller, 2a to 2c outdoor unit, 3a to 3c indoor unit, 4a to 4c remote control, 5, 6a to 6c, 8 communication line, 7a to 7c power measuring device, 9a to 9c power supply line, 10 display unit, 20 Operation acceptance unit, 30 first communication unit, 40 second communication unit, 50 data storage unit, 51 air conditioner information, 52 program, 60 control unit, 61 power consumption collection unit, 62 air conditioning control unit, 63 demand adjustment unit 510 control management information, 511 target demand information, 512 load characteristic information, 513 load change time information, 514 latest load change information, 515 schedule information, 520 power consumption collection program, 521 air conditioning control program, 522 demand adjustment program

Claims (7)

  1.  複数の各空調室外機について、予め決められた複数の時間帯毎の目標デマンドが設定された目標デマンド情報を記憶する目標デマンド情報記憶部と、
     前記各空調室外機の消費電力量を収集する消費電力収集部と、
     前記時間帯毎に、前記各空調室外機について、対応する前記消費電力量に基づいて当該時間帯における予測消費電力量を算出し、算出した前記予測消費電力量と、対応する前記目標デマンドと、に基づいて空調負荷の過不足状況を取得する第1の処理と、前記空調負荷に余裕がある前記空調室外機それぞれの余裕電力量を算出し、算出した全ての前記余裕電力量を総計する第2の処理と、前記余裕電力量の総計を前記空調負荷が不足している前記空調室外機に配分する第3の処理と、前記配分結果に応じて、前記空調負荷が不足している前記空調室外機については、対応する前記目標デマンドを上げる方向で調整し、前記空調負荷に余裕がある前記空調室外機については、対応する前記目標デマンドを下げる方向で調整する第4の処理と、を含むデマンド調整処理を少なくとも1回実行するデマンド調整部と、
     前記各空調室外機に対して、それぞれ対応する前記目標デマンドに基づいて、デマンド制御を行う空調制御部と、を備えるシステムコントローラ。
    A target demand information storage unit for storing target demand information in which target demands for a plurality of predetermined time zones are set for each of a plurality of air conditioning outdoor units;
    A power consumption collection unit that collects the power consumption of each of the air-conditioning outdoor units;
    For each air conditioner outdoor unit, for each time zone, calculate the predicted power consumption in the time zone based on the corresponding power consumption, the calculated predicted power consumption, and the corresponding target demand, A first process for acquiring an excess or deficiency status of the air conditioning load based on the calculation, a surplus power amount of each of the air-conditioning outdoor units having a margin in the air conditioning load, and a total sum of all the surplus power amounts calculated 2, the third process of allocating the total amount of surplus power to the air conditioner outdoor unit for which the air conditioning load is insufficient, and the air conditioner for which the air conditioning load is insufficient according to the distribution result For an outdoor unit, adjust the corresponding target demand in the direction of increasing, and for the air-conditioning outdoor unit that has a margin in the air conditioning load, adjust the corresponding target demand in the direction of decreasing the fourth process, And demand-adjustment unit that executes at least once non-demand adjustment process,
    A system controller comprising: an air conditioning control unit that performs demand control on each of the air conditioning outdoor units based on the corresponding target demand.
  2.  前記デマンド調整部は、一の時間帯において、前記デマンド調整処理を一定時間間隔で複数回実行する請求項1に記載のシステムコントローラ。 The system controller according to claim 1, wherein the demand adjustment unit executes the demand adjustment processing a plurality of times at regular time intervals in one time zone.
  3.  前記デマンド調整部は、前記第2の処理において、当該空調室外機に接続する1又は複数の空調室内機の当該時間帯における今後の負荷レベルの変化を予測し、予測した前記負荷レベルの変化も加味して前記余裕電力量を算出する請求項1又は2に記載のシステムコントローラ。 In the second process, the demand adjustment unit predicts a future load level change in the time zone of the one or more air conditioning indoor units connected to the air conditioning outdoor unit, and the predicted change in the load level is also The system controller according to claim 1, wherein the surplus power is calculated in consideration of the system controller.
  4.  前記デマンド調整部は、前記第2の処理において、当該空調室外機に接続する1又は複数の空調室内機の当該時間帯における今後の運転状態の変化を予測し、予測した前記運転状態の変化も加味して前記余裕電力量を算出する請求項1乃至3の何れか1項に記載のシステムコントローラ。 In the second process, the demand adjustment unit predicts a future change in the operating state of the one or more air-conditioning indoor units connected to the air-conditioning outdoor unit in the time period. The system controller according to any one of claims 1 to 3, wherein the surplus power is calculated in consideration.
  5.  システムコントローラと、電力計測装置と、を備える設備管理システムであって、
     前記電力計測装置は、複数の各空調室外機の消費電力量を計測し、計測した前記各消費電力量を通信により前記システムコントローラに送信し、
     前記システムコントローラは、
     前記電力計測装置と通信する通信部と、
     前記各空調室外機について、予め決められた複数の時間帯毎の目標デマンドが設定された目標デマンド情報を記憶する目標デマンド情報記憶部と、
     前記電力計測装置から送られてきた前記消費電力量を前記通信部を介して受信することで、前記各空調室外機の消費電力量を収集する消費電力収集部と、
     前記時間帯毎に、前記各空調室外機について、対応する前記消費電力量に基づいて当該時間帯における予測消費電力量を算出し、算出した前記予測消費電力量と、対応する前記目標デマンドと、に基づいて空調負荷の過不足状況を取得する第1の処理と、前記空調負荷に余裕がある前記空調室外機それぞれの余裕電力量を算出し、算出した全ての前記余裕電力量を総計する第2の処理と、前記余裕電力量の総計を前記空調負荷が不足している前記空調室外機に配分する第3の処理と、前記配分結果に応じて、前記空調負荷が不足している前記空調室外機については、対応する前記目標デマンドを上げる方向で調整し、前記空調負荷に余裕がある前記空調室外機については、対応する前記目標デマンドを下げる方向で調整する第4の処理と、を含むデマンド調整処理を少なくとも1回実行するデマンド調整部と、
     前記各空調室外機に対して、それぞれ対応する前記目標デマンドに基づいて、デマンド制御を行う空調制御部と、を備える設備管理システム。
    A facility management system comprising a system controller and a power measuring device,
    The power measuring device measures the power consumption of each of the plurality of air conditioner outdoor units, and transmits the measured power consumption to the system controller through communication.
    The system controller is
    A communication unit that communicates with the power measuring device;
    For each air conditioner outdoor unit, a target demand information storage unit that stores target demand information in which a target demand for each of a plurality of predetermined time zones is set;
    A power consumption collecting unit that collects the power consumption amount of each air-conditioning outdoor unit by receiving the power consumption amount transmitted from the power measurement device via the communication unit;
    For each air conditioner outdoor unit, for each time zone, calculate the predicted power consumption in the time zone based on the corresponding power consumption, the calculated predicted power consumption, and the corresponding target demand, A first process for acquiring an excess or deficiency status of the air conditioning load based on the calculation, a surplus power amount of each of the air-conditioning outdoor units having a margin in the air conditioning load, and a total sum of all the surplus power amounts calculated 2, the third process of allocating the total amount of surplus power to the air conditioner outdoor unit for which the air conditioning load is insufficient, and the air conditioner for which the air conditioning load is insufficient according to the distribution result For an outdoor unit, adjust the corresponding target demand in the direction of increasing, and for the air-conditioning outdoor unit that has a margin in the air conditioning load, adjust the corresponding target demand in the direction of decreasing the fourth process, And demand-adjustment unit that executes at least once non-demand adjustment process,
    An air conditioning control unit that performs demand control on each air conditioning outdoor unit based on the corresponding target demand.
  6.  複数の各空調室外機の消費電力量を収集する消費電力収集ステップと、
     予め決められた複数の時間帯毎に、前記各空調室外機について、対応する前記消費電力量に基づいて当該時間帯における予測消費電力量を算出し、算出した前記予測消費電力量と、対応する目標デマンドと、に基づいて空調負荷の過不足状況を取得する第1の処理と、前記空調負荷に余裕がある前記空調室外機それぞれの余裕電力量を算出し、算出した全ての前記余裕電力量を総計する第2の処理と、前記余裕電力量の総計を前記空調負荷が不足している前記空調室外機に配分する第3の処理と、前記配分結果に応じて、前記空調負荷が不足している前記空調室外機については、対応する前記目標デマンドを上げる方向で調整し、前記空調負荷に余裕がある前記空調室外機については、対応する前記目標デマンドを下げる方向で調整する第4の処理と、を含むデマンド調整処理を少なくとも1回実行するデマンド調整ステップと、
     前記各空調室外機に対して、それぞれ対応する前記目標デマンドに基づいて、デマンド制御を行う空調制御ステップと、を含むデマンド制御方法。
    A power consumption collection step for collecting the power consumption of each of the plurality of outdoor units;
    For each of the air-conditioning outdoor units determined in advance for each of the air-conditioning outdoor units, a predicted power consumption amount in the time period is calculated based on the corresponding power consumption amount, and the calculated predicted power consumption amount A first process for acquiring an excess or deficiency status of the air conditioning load based on the target demand, and calculating the surplus power amount of each of the air-conditioning outdoor units having a margin in the air conditioning load, and calculating all the surplus power amounts calculated A second process for summing up, a third process for allocating the total amount of surplus power to the air-conditioning outdoor unit for which the air conditioning load is insufficient, and the air conditioning load is insufficient according to the distribution result. The air conditioner outdoor unit is adjusted in a direction to increase the corresponding target demand, and the air conditioner outdoor unit having a margin in the air conditioning load is adjusted in a direction to decrease the corresponding target demand. Treatment and, demand adjustment process including the demand adjustment performing at least once,
    An air-conditioning control step of performing demand control for each of the air-conditioning outdoor units based on the corresponding target demand.
  7.  コンピュータを、
     複数の各空調室外機の消費電力量を収集する消費電力収集部、
     予め決められた複数の時間帯毎に、前記各空調室外機について、対応する前記消費電力量に基づいて当該時間帯における予測消費電力量を算出し、算出した前記予測消費電力量と、対応する目標デマンドと、に基づいて空調負荷の過不足状況を取得する第1の処理と、前記空調負荷に余裕がある前記空調室外機それぞれの余裕電力量を算出し、算出した全ての前記余裕電力量を総計する第2の処理と、前記余裕電力量の総計を前記空調負荷が不足している前記空調室外機に配分する第3の処理と、前記配分結果に応じて、前記空調負荷が不足している前記空調室外機については、対応する前記目標デマンドを上げる方向で調整し、前記空調負荷に余裕がある前記空調室外機については、対応する前記目標デマンドを下げる方向で調整する第4の処理と、を含むデマンド調整処理を少なくとも1回実行するデマンド調整部、
     前記各空調室外機に対して、それぞれ対応する前記目標デマンドに基づいて、デマンド制御を行う空調制御部、として機能させるプログラム。
    Computer
    A power consumption collector that collects the power consumption of each of the multiple air conditioner outdoor units,
    For each of the air-conditioning outdoor units determined in advance for each of the air-conditioning outdoor units, a predicted power consumption amount in the time period is calculated based on the corresponding power consumption amount, and the calculated predicted power consumption amount A first process for acquiring an excess or deficiency status of the air conditioning load based on the target demand, and calculating the surplus power amount of each of the air-conditioning outdoor units having a margin in the air conditioning load, and calculating all the surplus power amounts calculated A second process for summing up, a third process for allocating the total amount of surplus power to the air-conditioning outdoor unit for which the air conditioning load is insufficient, and the air conditioning load is insufficient according to the distribution result. The air conditioner outdoor unit is adjusted in a direction to increase the corresponding target demand, and the air conditioner outdoor unit having a margin in the air conditioning load is adjusted in a direction to decrease the corresponding target demand. Demand adjustment unit that performs processing and, demand adjustment process including at least one,
    A program that causes each air conditioning outdoor unit to function as an air conditioning control unit that performs demand control based on the corresponding target demand.
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