Power management device

The power management device addresses imbalance charges by controlling power supply and demand adjustments to match planned and actual consumption, minimizing fees through optimized reference value specification.

JP7806744B2Active Publication Date: 2026-01-27TOYOTA JIDOSHA KK
View PDF 4 Cites 0 Cited by

Patent Information

Application Number
JP2023035255
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2023-03-08
Publication Date
2026-01-27
Estimated Expiration
2043-03-08

AI Technical Summary

Technical Problem

Consumers with Demand Side Resources (DSR) such as electric vehicles and power storage devices face challenges in maintaining planned electricity supply due to fluctuations in charging and discharging, leading to imbalance charges.

Method used

A power management device that controls a power supply and demand adjustment system, using a processor to specify a reference value for power supply to minimize imbalance fees by adjusting within allowable increases and decreases.

Benefits of technology

The device effectively minimizes imbalance fees by optimizing power supply to match planned and actual consumption, thereby eliminating imbalance charges.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007806744000001
    Figure 0007806744000001
  • Figure 0007806744000002
    Figure 0007806744000002
  • Figure 0007806744000003
    Figure 0007806744000003
Patent Text Reader

Abstract

To suppress an imbalance charge.SOLUTION: A processor of a power management device of an entrepreneur supplying power received from a power supplier to a plurality of users includes the steps of: identifying a reference value, which is a total power consumption of a plan for supplying electric power to a user per frame of each time zone (step S112); preliminarily transferring the reference value to the supplier to receive the power consumption of the reference value from the supplier (step S113); controlling a power supply and demand adjustment system with the purpose that the imbalance amount, which is the difference between actual values being the total power consumption used by the plurality of users for the reference value within an increasable / decreasable range in each frame, becomes 0 where an imbalance charge which the entrepreneur pays to the supplier with respect to the imbalance amount will not be incurred (step S132); and identifying a reference value so that the imbalance charge for the imbalance amount becomes the minimum in at least one frame included in a prescribed period in reference value identification (step S112).SELECTED DRAWING: Figure 2
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] The present disclosure relates to a power management device, and more particularly to a power management device for a business operator that supplies power received from a power supplier to a plurality of consumers. [Background technology]

[0002] Self-dispatch has been practiced for some time. Self-dispatch is a power transmission service provided by a general electricity transmission and distribution utility when a company transmits electricity it has self-generated at a factory or other location to its own business premises in a remote location using the utility's transmission and distribution network. In self-dispatch, the "same time and same amount of planned value" rule is applied, and there is an obligation to maintain a same amount of both power generation and demand at the same time. The power generation plan or demand plan formulated in advance must be matched with the actual power generation or demand performance in the actual supply in 30-minute increments. If the plan and performance do not match, an "imbalance fee" must be paid according to the amount (see, for example, Patent Document 1).

[0003] Similarly, for the electricity supplied to retailers by power generation companies and general electricity transmission and distribution companies in order for retailers to supply to consumers, the standard value of the planned amount of electricity supplied to retailers for each 30-minute period must be matched with the actual value.Retailers must pay an imbalance fee to general electricity transmission and distribution companies according to the amount of imbalance, which is the difference between this standard value and the actual value. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Japanese Patent Publication No. 2020-058141 Summary of the Invention [Problem to be solved by the invention]

[0005] However, if a consumer has DSR (Demand Side Resources), which are energy resources (power generation equipment, power storage equipment, demand equipment) such as electric vehicles, power storage devices, or power generation devices connected below the consumer's receiving point, the planned amount of electricity supplied to the consumer may not be met due to increases or decreases in the charging and discharging of the electric vehicles or power storage devices, or increases or decreases in the amount of electricity generated by the power generation devices, and imbalance charges may be incurred.

[0006] This disclosure has been made to solve the above-mentioned problems, and its purpose is to provide a power management device that can suppress imbalance charges. [Means for solving the problem]

[0007] The power management device disclosed herein is a power management device for a utility that receives power from a power supplier and supplies it to multiple consumers. The device is capable of controlling a power supply and demand adjustment system, and includes a memory that stores a predetermined program and a processor that executes the predetermined program. By executing the predetermined program, the processor identifies a reference value, which is the total amount of power planned to be supplied to multiple consumers for each time slot. To receive the amount of power from the supplier according to the identified reference value, the processor transmits the reference value to the supplier in advance before the time slot corresponding to the reference value. The processor controls the adjustment system so that, within the range of allowable increases and decreases, the imbalance amount, which is the difference between the actual value and the total amount of power used by the multiple consumers, becomes zero, eliminating the imbalance fee that the utility pays to the supplier for the imbalance amount. The allowable increase amount is the amount of power that can be added to the actual value by being used by the adjustment system, and the allowable decrease amount is the amount of power that can be subtracted from the actual value by reducing usage by the adjustment system or by supplying power from the adjustment system to multiple consumers. The processor executes a predetermined program to specify a reference value such that the imbalance charge for the imbalance amount in at least one frame included in the predetermined period is minimized.

[0008] With this configuration, when specifying a reference value that is the total amount of power planned to be supplied to multiple consumers for each time slot, the reference value is specified so that the imbalance fee for the imbalance amount in at least one slot included in a predetermined period is minimized.As a result, it is possible to provide a power management device that can suppress the imbalance fee. [Brief explanation of the drawings]

[0009] [Figure 1] 1 is a block diagram showing an outline of the configuration of a power management system according to an embodiment of the present invention; [Figure 2] 10 is a flowchart showing the flow of a reference value-related process executed by the electricity retailer server in this embodiment. [Figure 3] FIG. 10 is a diagram for explaining the specification of a reference value in this embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0010] Hereinafter, embodiments of the present disclosure will be described in detail with reference to the drawings. In the drawings, the same or corresponding parts are designated by the same reference numerals, and description thereof will not be repeated.

[0011] Figure 1 is a block diagram showing an outline of the configuration of a power management system 1 according to this embodiment. Referring to Figure 1, thick solid lines with arrows indicate the flow of electricity, and thin solid and dashed lines with arrows indicate the flow of data. In the power management system 1, power generated by a power generation company 60 is consigned by a power transmission and distribution company 50 to consumers 20 who are retail customers of an electricity retailer 10 (e.g., a regional power company or a new power supplier) based on a contract in accordance with the results of a bidding at a power exchange 40 (e.g., the Japan Electric Power Exchange).

[0012] The power generation company 60 has a power generation facility 610 that generates power, and a power generation company server 600 that manages the power generation business. The power transmission and distribution company 50 has a power transmission and distribution facility 510 that transmits and distributes power, and a power transmission and distribution company server 500 that manages the power transmission and distribution business. The power generation facility 610 and the power transmission and distribution facility 510 constitute a power system (power grid). The power exchange 40 has a power exchange server 400 that manages power trading. The electricity retailer 10 has a retail electricity company server 100 that manages the retail electricity business.

[0013] The consumer 20 has a DSR 210 including at least one of a demand facility, a power storage facility, and a power generation facility, which are energy resources connected below the power receiving point, and a Home Energy Management System (HEMS) 200 that manages the DSR 210. The aggregator 30 has an aggregator server 300. The aggregator server 300 controls and manages Distributed Energy Resources (DER) 310, which include at least one of a power generation facility and a power storage facility, which are energy resources directly connected to the DSR or the power grid.

[0014] The electricity retailer server 100 includes a processor 110, a memory 120, an input unit 130, an output unit 140, an auxiliary storage device 160, and a communication unit 190. The memory 120 includes a random access memory (RAM), a read-only memory (ROM), a flash memory, etc., and stores software such as programs executed by the electricity retailer server 100, data to be processed, etc. The auxiliary storage device 160 includes a hard disk drive (HDD), a solid state drive (SSD), a removable media drive, etc., and supports the memory 120, stores a larger amount of data than the memory 120, and stores software such as programs executed by the electricity retailer server 100, data to be processed, etc. The input unit 130 includes input devices such as a keyboard and a mouse, and transmits information input by a user via the input device to the processor 110. The output unit 140 includes output devices such as a display and a speaker, and outputs information received from the processor 110 to the output device. Communication unit 190 is a device capable of communicating with external devices such as other servers via communication network 900 such as the Internet, and transmits and receives predetermined information to and from the external devices. Processor 110 processes data from input unit 130 or communication unit 190 or data stored in memory 120 or auxiliary storage device 160 in accordance with a program stored in memory 120 or auxiliary storage device 160, and outputs the data to output unit 140 or communication unit 190, or stores the data in memory 120 or auxiliary storage device 160.

[0015] The aggregator server 300, the power exchange server 400, the power transmission and distribution company server, and the power generation company server 600 have the same configuration as the electricity retailer server 100 described above.

[0016] The HEMS 200 can communicate with external devices such as the aggregator server 300 or the power transmission and distribution company server 500 via a communication network 900, and controls the supply and demand of electricity at the DSR 210, and acquires the measured amount of electricity from a smart meter that measures the amount of electricity exchanged between the DSR 210 and the power grid.

[0017] The HEMS 200 may have the functionality of a smart meter. The aggregator server 300 may directly or indirectly control or manage the DSR 210. The electricity retailer server 100 may directly or indirectly control or manage the DER 310 or the DSR 210.

[0018] In such an energy management system 1, for the electricity supplied from the power generation company 60 and the transmission and distribution company 50 to the retail electricity supplier 10 in order for the retail electricity supplier 10 to supply to the consumer 20, it is necessary to make the reference value of the planned amount of energy to be supplied to the retail electricity supplier 10, which is agreed upon through bidding at the energy exchange 40 for each of 30-minute blocks into which one day (24 hours) is divided into 48 blocks, match with the actual value actually supplied from the transmission and distribution company 50 to the retail electricity supplier 10. If the difference between this reference value and the actual value falls outside a predetermined allowable range, an imbalance fee must be paid to the transmission and distribution company 50 according to the amount of imbalance.

[0019] However, if consumer 20 has DSR210, which is an energy resource (power generation equipment, power storage equipment, demand equipment) such as an electric vehicle with a driving battery (for example, a BEV (Battery Electric Vehicle), a PHEV (Plug-in Hybrid Electric Vehicle)), a power storage device (for example, a stationary power storage system), or a power generation device (for example, a solar power generation device, a fuel cell power generation device, an engine power generation device) that is connected below the power receiving point of consumer 20, the planned amount of power supplied to consumer 20 may not be complied with due to deviations in power demand for home air conditioners, increases or decreases in charging and discharging of the electric vehicle or the power storage device, or increases or decreases in power generation by the power generation device, and imbalance charges may be incurred.

[0020] Therefore, the processor 110 of the electricity retailer server 100 specifies a reference value, which is the total amount of power planned to be supplied to the multiple consumers 20, for each frame of each time slot. In order to receive the amount of power of the specified reference value from the electricity transmission and distribution utility 50, the processor 110 transmits the reference value to the electricity transmission and distribution utility 50 in advance before the time slot of the frame corresponding to the reference value arrives. The processor 110 controls the DER 310 or the DSR 210 within the range of the allowable increase and decrease amounts so that the imbalance amount, which is the difference between the actual value, which is the total amount of power used by the multiple consumers 20, and the reference value becomes zero, so that no imbalance fee is incurred, and the electricity retailer 10 pays the electricity transmission and distribution utility 50 for the imbalance amount. The allowable increase amount is the amount of power that can be added to the actual value by being used by the DER 310 or the DSR 210. The allowable decrease amount is the amount of power that can be subtracted from the actual value by reducing use by the DER 310 or the DSR 210 or by supplying power from the DER 310 or the DSR 210 to the multiple consumers 20. In specifying the reference value, the processor 110 specifies the reference value so that the imbalance charge for the imbalance amount in at least one frame included in the predetermined period is minimized.

[0021] As a result, in specifying the reference value, which is the total amount of power planned to be supplied to multiple consumers 20 for each time slot, the reference value is specified so that the imbalance fee for the imbalance amount in at least one slot included in the predetermined period is minimized. As a result, the imbalance fee can be suppressed.

[0022] Fig. 2 is a flowchart showing the flow of reference value-related processing executed by the electricity retailer server 100 in this embodiment. Referring to Fig. 2, the processor 110 of the electricity retailer server 100 determines whether the current time has reached the timing for setting the reference value (step S111). The setting timing is, for example, a specific time such as a predetermined time before the bidding close time. In the case of a day-ahead market, it is 9:00, one hour before 10:00, the day before the bidding close time of the relevant slot, and in the case of an intraday market (hour-ahead market), it is one hour before the start time of each slot, which is the bidding close time.

[0023] If it is determined that the current time has reached the set timing (YES in step S111), the processor 110 identifies a reference value, which is the total amount of electricity planned to be supplied to the consumer 20 in the target frame, so that the imbalance charge for the imbalance amount is minimized in at least one frame included in the specified period (step S112).

[0024] Figure 3 is a diagram for explaining the specification of the reference value in this embodiment. Referring to Figure 3, as shown in Figure 3(A), the distribution of the predicted probability p of the DSR power demand (kJ) for each frame is considered to show, for example, a Gaussian distribution, as shown by line L0. Usually, the power amount corresponding to the highest probability p in the probability distribution is set as the reference value for the plan (the value shown by the bar graph).

[0025] In each frame, the electricity retailer server 100 compares the total power at the receiving end of the consumers 20 with a reference value, and controls the electric vehicles or power storage equipment included in the DER 310 or DSR 210 to increase or decrease the amount of power used within the range of the allowable increase or decrease. The allowable increase amount is the amount of power that can be added to the amount of power actually used (actual value) by being charged by the electric vehicles or power storage equipment included in the DER 310 or DSR 210. The allowable decrease amount is the amount of power that can be subtracted from the actual value by supplying power to the demand facilities of the multiple consumers 20 by reducing charging to the electric vehicles or power storage equipment included in the DER 310 or DSR 210 or increasing discharge from the electric vehicles or power storage equipment.

[0026] If the demand at the demand facility and power storage facility of the consumer 20 falls below this allowable increase amount, an imbalance fee b will be incurred according to the amount of imbalance that deviates from the reference value, as shown by line L2. Similarly, if the demand at the demand facility and power storage facility increases above the allowable decrease amount, an imbalance fee b will be incurred according to the amount of imbalance that deviates from the reference value, as shown by line L3. The imbalance fee is paid by the electricity retailer 10 to the electricity transmission and distribution company 50. The value obtained by multiplying the imbalance fee b by the probability p is the expected value b×p of the imbalance fee b. The expected values ​​b×p corresponding to lines L2 and L3 are indicated by areas A2 and A3, respectively.

[0027] 3(B) to 3(D) show the probability p of forecasting the demand (kW) of the demand facility and the energy storage facility included in DER310, the imbalance charge b, and the expected value b×p of the imbalance charge for each second of a predetermined period (here, 48 hours) from time t. By accumulating these expected values ​​b×p for the predetermined period from time, the expected value b×p for the reference value is calculated. Changing the reference value changes the amount that can be increased or decreased, and therefore the expected value b×p changes.

[0028] The expected value corresponding to the reference value is calculated by determining the amount of increase or decrease possible while varying the reference value, calculating the expected value for the amount of increase or decrease possible, and adding up the two values. In step S112, the reference value that minimizes this expected value is determined.

[0029] Returning to FIG. 2, the processor 110 of the electricity retailer server 100 submits a bid for the reference value and unit price identified in step S112 to the power exchange server 400 (step S113).

[0030] If it is determined that it is not the timing to set the reference value (NO in step S111), or after step S113, the processor 110 determines whether or not the contract result has been notified from the power exchange server 400 (step S121). If it is determined that the contract result has been notified (YES in step S121), the processor 110 stores the contract result in the memory 120 or the auxiliary storage device 160 (step S122).

[0031] If it is determined that the timing has not yet come when the contract result has been notified (NO in step S121), or after step S122, the processor 110 determines whether the contracted power delivery time has arrived (step S131). If it is determined that the delivery time has arrived (YES in step S131), the processor 110 starts supplying the power supplied from the power transmission and distribution company 50 to the target block to the consumer 20 based on the contract result (step S132). In this supply, the processor 110 controls the power demand using the DER 310 or the DSR 210 within the range of the allowable increase and decrease amounts, with the goal of matching the actual value with the agreed-upon reference value. The control of the DSR 210 is performed directly by the processor 110 of the electricity retailer server 100 or indirectly via the HEMS 200. The DER 310 is controlled by the processor 110 of the electricity retailer server 100 directly or indirectly via the aggregator server 300 .

[0032] The embodiments disclosed herein should be considered to be illustrative in all respects and not restrictive. The scope of the present disclosure is defined by the claims, not by the description of the above embodiments, and is intended to include all modifications within the meaning and scope of the claims. [Explanation of symbols]

[0033] 1 Power management system, 10 Electricity retailer, 20 Consumer, 30 Aggregator, 40 Power exchange, 50 Transmission and distribution company, 60 Power generation company, 100 Electricity retailer server, 110 Processor, 120 Memory, 130 Input section, 140 Output section, 160 Auxiliary storage device, 190 Communication section, 200 HEMS, 210 DSR, 300 Aggregator server, 310 DER, 400 Power exchange server, 500 Transmission and distribution company server, 510 Transmission and distribution equipment, 600 Power generation company server, 610 Power generation equipment, 900 Communication network.

Claims

[Claim 1] A power management device of a business operator that supplies power received from a power supplier to a plurality of consumers, The power management device It is possible to control the electricity supply and demand adjustment system, a memory for storing a predetermined program; a processor that executes the predetermined program, The processor executes the predetermined program, Identifying a reference value that is a total amount of power planned to be supplied to the plurality of consumers for each time slot; In order to receive the amount of power of the specified reference value from the supplier, the reference value is transmitted to the supplier in advance before a time slot corresponding to the reference value is reached; In each frame, the adjustment system is controlled so that the imbalance amount, which is the difference between the actual value that is the total amount of electricity used by the plurality of consumers and the reference value, becomes zero within the range of the amount that can be increased and decreased, so that no imbalance fee is paid by the business operator to the supplier for the imbalance amount; the possible increase is an amount of power that can be added to the actual value by being used by the adjustment system, the possible reduction amount is an amount of power that can be subtracted from the actual value by reducing usage by the adjustment system or supplying power to the plurality of consumers from the adjustment system; The processor executes the specified program to specify the reference value so that the imbalance fee for the imbalance amount in at least one frame included in a specified period is minimized.

Citation Information

Patent Citations

  • Power transaction support device, power transaction support method, and program

    JP2017126183A

  • Power demand management supporting system, power demand management supporting method, and power demand management supporting program

    JP2017182698A

  • Power storage facility management device and power storage facility management method

    JP2020058141A

  • Power supply / demand management device, power supply / demand management system, and power supply / demand management method

    JP2020150726A