Power management system and power management method

The power management system dynamically adjusts charging power and load operations to maintain contracted power limits, addressing sudden load changes and preventing overloads, thus ensuring continuous electric vehicle charging.

JP7680320B2Active Publication Date: 2025-05-20HITACHI LTD
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Patent Information

Application Number
JP2021158918
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-09-29
Publication Date
2025-05-20
Estimated Expiration
2041-09-29

AI Technical Summary

Technical Problem

Existing battery charging systems struggle to respond quickly to sudden changes in load power consumption, leading to potential overloads that exceed contracted power limits, especially in homes with electric vehicles and varying home appliance usage.

Method used

A power management system that includes a received power detection unit, load operation signal detection unit, and control unit to dynamically adjust charging power to the vehicle battery and manage load operation signals, ensuring the total power remains within contracted limits by reducing or increasing charging power based on load changes.

Benefits of technology

The system effectively maintains charging within contracted power limits even with sudden increases in home appliance power consumption, preventing breaker tripping and ensuring continuous electric vehicle charging.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To continue charging an electric automobile and keep reception power within a contract power range even when consumption power in a load of a home electronic product or the like rapidly increases.SOLUTION: A power management system for managing reception power which is supplied from a commercial power source to a load of a building and a storage battery of a vehicle, includes a reception power detection unit that detects reception power from the commercial power source, a computation unit, a load operation signal detection unit that detects a load operation signal of the load, and a control unit. When the load operation signal detection unit detects a load operation signal, the computation unit calculates the difference between the upper limit value of the reception power and a load power which is a total value of consumption power in the load including a fluctuation amount of the consumption power in the load having outputted the load operation signal, and calculates the value of a charge power to be supplied to the storage battery in such a way that the maximum value of the charge power is set to the difference. After the control unit charges the storage battery with the charge power, the load having outputted the load operation signal works in accordance with the load operation signal.SELECTED DRAWING: Figure 1
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Description

[Technical field]

[0001] The present disclosure relates to a power management system and a power management method. [Background technology]

[0002] As electric vehicles (EVs) become more widespread, it has become necessary to charge them using the power source at individual homes. The charging power of EVs is greater than the power consumption of home appliances, etc., because rapid charging is required. This results in higher peak power received at homes, making it necessary to increase the contracted power, raising concerns about an increase in basic charges.

[0003] Furthermore, from the viewpoint of utilizing renewable energy and saving energy, the spread of Home Energy Management Systems (HEMS), Building Energy Management Systems (BEMS), and the like is being promoted.

[0004] Patent Literature 1 discloses that, assuming that a large current may flow and exceed the contracted power capacity when a large-capacity storage battery such as that used in an electric vehicle is quickly charged while various home appliances are in use, a load current supplied to the home appliance is measured, and an appropriate charging current for the storage battery is calculated within a range that does not exceed the maximum allowable load current calculated from the contracted power capacity related to the received power when the measured load current is added to the charging current of the storage battery, and the storage battery is charged with the appropriate charging current, and the appropriate charging current for the storage battery is recalculated and the charging current for the storage battery is changed every time the measured load current changes by a certain amount or more. Patent Literature 1 also discloses that a HEMS management server is provided that monitors the usage status of the home appliances and automatically turns on and off the home appliances according to a preset energy usage standard to control their energy usage, and that when the HEMS management server automatically turns on any of the home appliances, charging of the storage battery is temporarily suspended, and the suspension time can be, for example, about one minute.

[0005] Patent Document 2 discloses that when a charging device is installed together with high-voltage power receiving equipment such as store facilities, if a predicted value of the total amount of power received from a system power source 99, including the amount of power required by a battery-equipped device 114, is greater than a preset upper limit value, an output command value from a power conversion unit 106 is calculated that enables charging of the battery-equipped device 114 within a range in which the total amount of power received from the system power source 99 does not exceed the upper limit value.

[0006] Patent Document 3 discloses an electric vehicle charging power management system that detects power to a home power load and controls charging power so that the sum of the detected power and charging power to a battery does not exceed the allowable value of power supplied from outside to the home in order to prevent the total power load of the home from exceeding the maximum contract power while the battery of the electric vehicle is being charged, calculates the expected home power consumption in a specified time period based on power consumption history information of the home power load, compares the power obtained by subtracting the expected home power consumption from the allowable value, the charging request power value from the electric vehicle side, and the power obtained by subtracting the detected power from the allowable value, and sets the lowest power as the charging power. Patent Document 3 also discloses that it is determined whether the charging request power value WVd read from the battery controller 31 is less than the value (WA-WH) obtained by subtracting the home power load value WH from the maximum contract power WA, which is the power allowable value on the home side, and sets the charging power WV to WV=WA-WH so that the breaker of the home does not trip if it is determined that the charging request power value WVd is equal to or greater than (WA-WH). [Prior art documents] [Patent documents]

[0007] [Patent Document 1] JP 2012-191773 A [Patent Document 2] JP 2014-023204 A [Patent Document 3] JP 2008-136291 A Summary of the Invention [Problem to be solved by the invention]

[0008] The battery charging control system described in Patent Document 1 recalculates the appropriate charging current for the battery and changes the charging current for the battery every time the measured load current changes by a certain amount or more. However, it takes a certain amount of time to recalculate the appropriate charging current for the battery, and there is room for improvement in that there is a risk that the system cannot fully respond to changes in the load current.

[0009] In the charging device described in Patent Document 2, all the received power is used to charge the battery of an EV, which is assumed to be a battery-equipped device, so it is relatively easy to predict the required amount of power. It is considered difficult to apply this charging device in conditions where the signs of changes in power consumption cannot be predicted in advance, such as with home appliances.

[0010] The electric vehicle charging power management system described in Patent Document 3 requires a large amount of known data to calculate predicted power consumption within the home and to compare power using charging request power values, etc., and the detection of power to the home's power load does not take into account sudden changes in power due to starting and stopping the home's power load, etc.

[0011] An object of the present disclosure is to continue charging an electric vehicle and keep the received power within the range of the contracted power even when the power consumption of a load such as a home appliance suddenly increases. [Means for solving the problem]

[0012] The power management system disclosed herein manages the received power supplied from a commercial power source to a building load and a vehicle storage battery, and includes a received power detection unit that detects the received power from the commercial power source, a calculation unit, a load operation signal detection unit that detects a load operation signal of the load, and a control unit.When the load operation signal detection unit detects a load operation signal, the calculation unit calculates the difference between the upper limit value of the received power and the load power, which is the total value of the power consumption of the load including the change in power consumption of the load that issued the load operation signal, and calculates the value of the charging power to be supplied to the storage battery using this difference as the maximum value.The control unit charges the storage battery with the charging power, and then causes the load that issued the load operation signal to operate in accordance with the load operation signal. Effect of the Invention

[0013] According to the present disclosure, even when the power consumption of loads such as home appliances suddenly increases, charging of an electric vehicle can be continued and the received power can be kept within the range of the contracted power. [Brief description of the drawings]

[0014] [Figure 1] FIG. 1 is a schematic configuration diagram showing a power management system according to an embodiment. [Diagram 2] 2 is a graph showing an example of control by the power management system 10 of FIG. [Diagram 3] FIG. 2 is a configuration diagram showing details of the power management system 10 of FIG. [Figure 4] FIG. 4 is a flow diagram illustrating a power management method of an embodiment. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0015] Hereinafter, embodiments of the present disclosure will be described with reference to the drawings.

[0016] FIG. 1 is a schematic diagram showing a power management system according to an embodiment of the present invention.

[0017] In this diagram, a power management system 10 is a system that manages power from a commercial power source 100 used in a house 20 (including a residence or a building). Loads 22, 24 (home appliances, etc.) are installed inside or outside the house 20. Power is supplied to the loads 22, 24 from the commercial power source 100. The home appliances include air conditioners, heat pump water heaters, induction cooking heaters, microwave ovens, electric rice cookers, electric kettles, hair dryers, etc. Of these, an induction cooking heater will be taken as an example in the description below of devices that are started and stopped (on / off) by a manual switch.

[0018] An electric vehicle 30 (EV) placed in a parking space of the house 20 or the like has a built-in storage battery (secondary battery) and charger 35. Power from a commercial power source 100 is supplied to the storage battery of the electric vehicle 30 via the charger 35. In this embodiment, it is assumed that power is supplied to the loads 22, 24 and the charger 35 through wiring branched off from a single ampere breaker.

[0019] In this embodiment, the power management system 10 includes the functions of a HEMS. Note that the power management system 10 may be installed separately from the HEMS.

[0020] The power management system 10 has a function of detecting the actually supplied received power from the commercial power source 100. The power management system 10 also has a function of detecting the power actually supplied to the loads 22, 24 and the storage battery of the electric vehicle 30, and a function of detecting load operation signals of the loads 22, 24. The power management system 10 also has a function of starting the supply of power to the loads 22, 24.

[0021] FIG. 2 is a graph showing an example of control by the power management system 10 of FIG.

[0022] Figure 2 shows the changes over time for four things: power received from commercial power sources, charging power supplied to the EV's storage battery, load power (total power consumption by home appliances, etc.), and load operation signals. Here, a load operation signal refers to a signal that an appliance emits when some of the appliances start or stop. An example of a load operation signal is the start / stop of an air conditioner. Starting and stopping of an air conditioner may be performed automatically by the HEMS. A load operation signal is also emitted when the power consumption of the appliance increases or decreases.

[0023] As shown in the figure, when a stopped home appliance etc. starts up and issues a load operation signal, the power management system 10 (FIG. 1) sends a signal to the charger 35 to reduce the charging power supplied to the EV's storage battery. This reduces the charging power (represented by (1) in the figure). Next, the power management system 10 issues a signal to permit the supply of power to the home appliance etc. that issued the load operation signal. This starts the supply of power to the home appliance etc. that issued the load operation signal, and the home appliance etc. starts up (represented by (2) in the figure). Due to the above (1) and (2), the received power of the house 20 (FIG. 1) fluctuates.

[0024] The received power is controlled so that it is always equal to or less than the upper limit of power indicated by the dashed line in the graph. This upper limit must be set to be equal to or less than the contracted power.

[0025] FIG. 3 is a configuration diagram showing details of the power management system 10 of FIG.

[0026] As shown in FIG. 3, the power management system 10 includes a received power detection unit 12, a calculation unit 14, a load operation signal detection unit 16, and a control unit 18.

[0027] The received power detection unit 12 detects the received power from the commercial power source 100 (FIG. 1).

[0028] The load operation signal detection unit 16 detects a load operation signal of a home appliance or the like. Here, the load operation signal detection unit 16 detects the load operation signal in a time shorter than the operation of an ampere breaker provided in the switchboard. The load operation signal detection unit 16 has an electric circuit for this purpose. The load operation signal may be an electric signal such as a pulse that is specially emitted when the load automatically starts or stops, an optical signal such as infrared light, or the very initial change in current or voltage when the load starts or stops. When an optical signal is used, an optical sensor such as an infrared sensor that can receive the signal is installed in a position where the signal can be received.

[0029] The calculation unit 14 receives predetermined data from the received power detection unit 12 and the load operation signal detection unit 16, and calculates the value of the charging power to be supplied to the storage battery of the EV.

[0030] Based on the data from the calculation unit 14, the control unit 18 sends a set value of the charging power to the EV charger, and sends start / stop control signals to loads such as home appliances.

[0031] Next, a method of managing the received power in the power management system 10 of FIG. 3 so that the received power is equal to or lower than a predetermined upper limit will be described.

[0032] FIG. 4 is a flow diagram illustrating a power management method of an embodiment.

[0033] As shown in the figure, the received power detection unit 12 detects the received power (step S100).

[0034] The load operation signal detection unit 16 detects a signal from the load (step S110).

[0035] If the signal from the load is a load start signal, the calculation unit 14 calculates the difference between the contracted power or a predetermined upper limit of power and the load power (step S120). Here, the load power is the total value of the power consumption of all the loads including the change in the power consumption of the load that issued the load operation signal.

[0036] Furthermore, the calculation unit 14 calculates the charging power for the storage battery of the EV, taking the difference as the upper limit (maximum value) (step S130).

[0037] The control unit 18 reduces the charging power of the storage battery of the EV (step S140).

[0038] Thereafter, the control unit 18 starts supplying power to the load that has issued the load operation signal as the signal (step S150). The time from detecting the signal from the load to starting the supply of power to the load should be as short as possible so that the resident does not find the delay in the operation of the load unpleasant, and is desirably within 0.5 seconds, for example.

[0039] In the example shown in this figure, the case where the load is started is shown, but when the load is stopped, after the load operation signal detection unit 16 detects a stop signal from the load, the calculation unit 14 calculates the difference between the contracted power or a predetermined upper limit value of the power and the load power, and the control unit 18 calculates the charging power of the EV's storage battery using this difference as the upper limit value (maximum value) and increases the charging power.

[0040] Furthermore, if the load is an appliance that is started and stopped (on / off) by a manual switch, such as an IH cooking heater, the change in voltage or current that accompanies the starting and stopping is detected by the load operation signal detection unit 16. Furthermore, the IH cooking heater may be provided with a function that emits a special electrical signal, such as a pulse, when the manual switch of the IH cooking heater is turned on by the resident.

[0041] In the case of an IH cooking heater, as an example corresponding to the above steps S120 to S150, the time from pressing the heating button on the IH cooking heater to starting to supply power to the load after the charging power of the EV's storage battery is reduced may be, for example, about 0.5 seconds.

[0042] Furthermore, when the occupant changes the power consumption of the load by a method other than turning it on and off, such as changing the temperature setting of the air conditioner or the heat of the IH cooking heater, the load operation signal detection unit 16 detects the load operation signal that indicates a change in voltage or current and changes the charging power of the EV's storage battery. In this case, too, a special electrical signal may be issued from the load side.

[0043] Note that manual operation also includes operation using a remote control (remote control device) for an air conditioner or the like.

[0044] In addition, even in operations using voice recognition to give voice instructions to start / stop home appliances, change output, etc., the load operation signal detection unit 16 may detect a signal from the load and use it to change the charging power, just as in manual operations.

[0045] Moreover, it is desirable that the power management system 10 has a memory unit for recording and storing past data on received power, load power, charging power, etc., and has a function for learning by recording and storing the amount of change in the power consumption of the load due to the start-up of the load, change in power consumption, etc. It is also desirable that the power management system 10 has a function for predicting how much the charging power of the EV's storage battery should be changed using the results of such learning.

[0046] In addition, when charging the EV's storage battery is prioritized, the power supply to the load may be restricted. In this case, the power supplied to the load is adjusted so that the sum of the load power and the charging power is equal to or less than the upper limit of the received power.

[0047] The supply of power to a load may be started by sending a signal to the load to permit operation, or may be started by providing a power switching switch inside the power management system 10 and automatically switching the switch upon receiving a signal from the control unit 18. The same applies to the case where the power consumption of the load is changed.

[0048] In summary, when the load operation signal detection unit detects a load operation signal, the calculation unit calculates the difference between the upper limit of the received power and the load power, which is the total value of the power consumption of the load including the change in the power consumption of the load that issued the load operation signal, and calculates the value of the charging power to be supplied to the storage battery with this difference as the maximum value. Then, the control unit charges the storage battery with the charging power, and then causes the load that issued the load operation signal to operate according to the load operation signal. Here, if the load power exceeds the upper limit of the received power and further exceeds the contracted power, the breaker will trip. For this reason, the load power is limited to be equal to or less than the upper limit of the received power. This role may be played by the power management system. In addition, in order to avoid the breaker tripping and to maintain the charging power at a predetermined value or more, it is desirable to make the upper limit of the received power smaller than the contracted power.

[0049] The power management system and the power management method disclosed herein can be applied to a BEMS equipped with an EV charging function in addition to a HEMS. In the case of a BEMS, the load is installed inside or outside the building. For this reason, a house that is the target of a HEMS and a building that is the target of a BEMS are collectively referred to as a "building."

[0050] Finally, preferred embodiments of the power management system and power management method of the present disclosure will be described in summary.

[0051] In the power management system, when the load operation signal detection unit detects a load operation signal, the calculation unit calculates the difference between the upper limit value of the received power and the load power, which is the total value of the power consumption of the load including the change in power consumption of the load that issued the load operation signal, and calculates the value of the charging power to be supplied to the storage battery using this difference as the maximum value.The control unit charges the storage battery with the charging power, and then causes the load that issued the load operation signal to operate in accordance with the load operation signal.

[0052] The power consumption of the load may be automatically controlled.

[0053] The power consumption of the load may be changed manually.

[0054] The load operation signal detection unit preferably has an electric circuit for detecting the load operation signal.

[0055] The power management system preferably includes a memory unit that records and stores the amount of change in the power consumption of the load. In this case, it is preferable that the calculation unit learns the amount of change in the power consumption of the load stored in the memory unit and predicts the charging power of the storage battery using the learning result.

[0056] The power management method manages the received power supplied from a commercial power source to a building load and a vehicle storage battery, wherein a received power detection unit detects the received power from the commercial power source, a load operation signal detection unit detects a load operation signal of the load, and when the load operation signal detection unit detects the load operation signal, an operation unit calculates the difference between the upper limit value of the received power and the load power, which is the total value of the power consumption of the load including the change in power consumption of the load that issued the load operation signal, and calculates the value of the charging power to be supplied to the storage battery using this difference as the maximum value, and a control unit charges the storage battery with the charging power, and then causes the load that issued the load operation signal to operate in accordance with the load operation signal. [Explanation of symbols]

[0057] 10: power management system, 12: received power detection unit, 14: calculation unit, 16: load operation signal detection unit, 18: control unit, 20: house, 22, 24: load, 30: electric vehicle, 35: charger, 100: commercial power source.

Claims

1. A power management system that manages received power supplied from a commercial power source to a load in a building and a storage battery in a vehicle, a receiving power detection unit that detects the receiving power of the commercial power supply; A calculation unit; a load operation signal detection unit that detects a load operation signal of the load; A control unit, When the load operation signal detection unit detects the load operation signal, the calculation unit calculates a difference between an upper limit value of the received power and a load power, which is a total value of the power consumption of the load including a change amount of the power consumption of the load that has issued the load operation signal, and calculates a value of the charging power to be supplied to the storage battery with the difference as a maximum value; A power management system in which the control unit charges the storage battery with the charging power, and then causes the load that issued the load operation signal to operate in accordance with the load operation signal.

2. The system of claim 1 , wherein the power consumption of the load is automatically controlled.

3. The power management system of claim 1 , wherein the power consumption of the load is changed manually.

4. The power management system according to claim 1 , wherein the load operation signal detection unit includes an electric circuit for detecting the load operation signal.

5. A memory unit that records and accumulates the amount of change in the power consumption of the load, The power management system according to claim 1 , wherein the calculation unit learns the amount of change in the power consumption of the load stored in the memory unit, and predicts the charging power of the storage battery using a result of the learning.

6. A power management method for managing received power supplied from a commercial power source to a load in a building and a storage battery in a vehicle, comprising: a receiving power detection unit that detects the receiving power from the commercial power source; a load operation signal detection unit detects a load operation signal of the load; When the load operation signal detection unit detects the load operation signal, a calculation unit calculates a difference between an upper limit value of the received power and a load power, which is a total value of the power consumption of the load including a change amount of the power consumption of the load that has issued the load operation signal, and calculates a value of the charging power to be supplied to the storage battery with the difference as a maximum value; A power management method in which a control unit causes the storage battery to be charged with the charging power, and then causes the load that issued the load operation signal to operate in accordance with the load operation signal.

7. A memory unit records and accumulates the amount of change in the power consumption of the load; The power management method according to claim 6 , wherein the calculation unit learns the amount of change in the power consumption of the load stored in the memory unit, and predicts the charging power of the storage battery using a result of the learning.

Citation Information

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