Power management device and power management method
The power management device and method address the issue of increased grid load by applying differentiated charging controls to multiple storage devices based on disaster information, effectively managing power system load during outages.
Patent Information
- Application Number
- JP2025123146
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2025-07-23
- Publication Date
- 2025-10-07
- Estimated Expiration
- 2042-10-17
AI Technical Summary
Simultaneous specific control of a large number of power storage devices in preparation for a power outage caused by a natural disaster can significantly increase the load on the power grid.
A power management device and method that includes a receiving unit for disaster information and a control unit to apply different specific controls to multiple storage devices based on the disaster information, charging them before a power outage to manage the load on the power system.
Reduces the increase in load on the power system during a potential power outage by optimizing the charging of multiple storage devices based on disaster severity and timing.
Smart Images

Figure 2025148589000001_ABST
Abstract
Description
[Technical Field]
[0001] The present invention relates to a power management apparatus and a power management method. [Background technology]
[0002] In recent years, business continuity plans (BCPs) have become known for continuing business activities even in the event of a natural disaster or other event. From the perspective of electricity, specific control has been proposed to prepare for a power outage caused by a natural disaster by charging a power storage device in advance. Note that specific control is expected not only for business activities such as those of companies, but also for non-business activities such as those of ordinary individuals (for example, Patent Document 1). [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Publication No. 2018-207782 Summary of the Invention [Problem to be solved by the invention]
[0004] If specific controls for a large number of power storage devices are executed simultaneously in preparation for a power outage caused by a natural disaster, the load on the power grid may increase significantly.
[0005] Therefore, the present invention has been made to solve the above-mentioned problems, and aims to provide a power management device and a power management method that make it possible to reduce the increase in load on the power system when specific control of a storage device is assumed in preparation for a power outage caused by a natural disaster. [Means for solving the problem]
[0006] One aspect of the disclosure is a power management device that includes a receiving unit that receives disaster information related to natural disasters and a control unit that controls two or more storage devices connected to a power grid, and the control unit applies different specific controls to the two or more storage devices based on the disaster information as specific controls that charge the storage devices before a power outage in the power grid.
[0007] One aspect of the disclosure is a power management method comprising step A of receiving disaster information related to a natural disaster and step B of controlling two or more power storage devices connected to a power grid, wherein step B includes a step of applying different specific controls to the two or more power storage devices based on the disaster information as specific controls for charging the power storage devices before a power outage in the power grid. [Effects of the Invention]
[0008] According to the present invention, it is possible to provide a power management device and a power management method that can reduce the increase in load on the power system when specific control of a storage device is assumed in preparation for a power outage caused by a natural disaster. [Brief explanation of the drawings]
[0009] [Figure 1] FIG. 1 is a diagram showing a power management system 1 according to an embodiment. [Figure 2] FIG. 2 is a diagram showing a facility 100 according to the embodiment. [Figure 3] FIG. 3 is a diagram showing the upper management server 300 according to the embodiment. [Figure 4] FIG. 4 is a diagram showing the lower level management server 200 according to the embodiment. [Figure 5] FIG. 5 is a diagram showing the EMS 160 according to the embodiment. [Figure 6] FIG. 6 is a diagram illustrating a power management method according to the embodiment. [Figure 7] FIG. 7 is a diagram illustrating a power management method according to the embodiment. [Figure 8] FIG. 8 is a diagram illustrating a power management method according to the embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0010] Hereinafter, embodiments will be described with reference to the drawings. In the following description of the drawings, the same or similar parts are denoted by the same or similar reference numerals. However, the drawings are schematic.
[0011] [Embodiment] (Power Management System) A power management system according to an embodiment will be described below. The power management system may be simply referred to as a power system.
[0012] 1, the power management system 1 includes a facility 100. The power management system 1 includes a lower management server 200, a higher management server 300, a third-party server 400, and an external server 500.
[0013] Here, the facility 100, the lower management server 200, the upper management server 300, the third-party server 400, and the external server 500 are configured to be able to communicate with each other via a network 11. The network 11 may include the Internet, a dedicated line such as a VPN (Virtual Private Network), or a mobile communication network.
[0014] The facility 100 is connected to the power grid 12 and may receive power from the power grid 12 or may supply power to the power grid 12. Power from the power grid 12 to the facility 100 may be referred to as forward flow power. Power from the facility 100 to the power grid 12 may be referred to as reverse flow power. In FIG. 1 , facilities 100A to 100C are illustrated as examples of the facility 100.
[0015] Although not particularly limited, the facility 100 may be a facility such as a residence, a facility such as a store, or a facility such as an office. The facility 100 may be an apartment building including two or more residences. The facility 100 may also be a complex including at least two or more of the following facilities: a residence, a store, and an office. Details of the facility 100 will be described later (see FIG. 2). Note that a user who owns or manages the facility 100 may also be referred to as the facility 100.
[0016] The lower level management server 200 is managed by a business operator that manages the power grid 12 or the power related to the facilities 100. The business operator may be a resource aggregator (RA). One or more facilities 100 managed by the lower level management server 200 may be referred to as a facility group 100.
[0017] The following describes an example in which the lower management server 200 is managed by an RA. The lower management server 200 is sometimes referred to as an RA, and the RA is sometimes referred to as the lower management server 200. Details of the lower management server 200 will be described later (see FIG. 4).
[0018] The upper management server 300 is managed by a business operator that manages power related to the power grid 12. The upper management server 300 may also be managed by a business operator that provides various services. The upper management server 300 may be called an AEMS (Area Energy Management System) or an AC (Aggregation Controller). Details of the upper management server 300 will be described later (see FIG. 3).
[0019] The utility may be a retail electricity supplier. The retail electricity supplier may include a regional power supplier (general electric utility) that manages infrastructure such as the power grid 12, or may include a new power supplier other than the regional power supplier. The new power supplier may be expected to sell electricity to the facility by procuring electricity from the electricity market. The electricity market may include a wholesale electricity market for trading electricity supplied to the facility 100 (procured electricity), a power adjustment market for adjusting the gap between electricity supply and demand after the gate of the wholesale electricity market closes, or a capacity market for trading supply capacity (e.g., reverse flow power). The electricity market may include electricity trading with other retail electricity suppliers. The electricity market may include electricity trading with other power generation companies. In other words, the electricity market may be an exchange for trading electricity, regardless of whether it is one-to-one, one-to-many, or many-to-many.
[0020] The service may include a service for suppressing the difference (imbalance) between the planned value for the forward flow power (hereinafter also referred to as procured power) of the facility group 100 and the actual value for the procured power of the facility group 100 to a predetermined difference or less. The service may include a service for suppressing the difference (imbalance) between the planned value for the reverse flow power (hereinafter also referred to as generated power) of the facility group 100 and the actual value for the generated power of the facility group 100 to a predetermined difference or less.
[0021] Third-party server 400 is managed by a business operator that manages the balance of power supply and demand in power grid 12. The business operator may manage the power market related to power grid 12. For example, third-party server 400 may have a function to check the imbalance in procured power. Third-party server 400 may have a function to check the imbalance in generated power. For example, the third-party server may perform the following operations.
[0022] First, the third-party server 400 may check whether the difference (imbalance) between the planned value for the procured power and the actual value for the procured power exceeds a predetermined difference. The planned value and the actual value may be aggregated for each unit period (e.g., 30 minutes), and the imbalance may be checked for each unit period (e.g., 30 minutes). If the imbalance exceeds the predetermined difference, the third-party server 400 may impose a penalty on the business operator managing the upper management server 300. If the imbalance does not exceed the predetermined difference, the third-party server 400 may provide an incentive to the business operator managing the upper management server 300. The penalty and incentive may be monetary.
[0023] Second, the third-party server 400 may check whether the difference (imbalance) between the planned value for power generation and the actual value for power generation exceeds a predetermined difference. The planned value and the actual value may be aggregated for each unit period (e.g., 30 minutes), and the imbalance may be checked for each unit period (e.g., 30 minutes). If the imbalance exceeds the predetermined difference, the third-party server 400 may impose a penalty on the business operator managing the upper management server 300. If the imbalance does not exceed the predetermined difference, the third-party server 400 may provide an incentive to the business operator managing the upper management server 300. The penalty and incentive may be monetary.
[0024] Here, the period during which an imbalance between generated power and procured power is confirmed may be defined as the target period (e.g., one day). In such a case, the planned value for procured power may include a plan formulated at a time before the target period (e.g., 12:00 on the day before the target period). The planned value for generated power may include a planned value formulated at a time before the target period (e.g., 12:00 on the day before the target period). Furthermore, the planned value for procured power may include a planned value formulated at a time before a unit period included in the target period (e.g., one hour before the unit period). The planned value for generated power may include a planned value formulated at a time before a unit period included in the target period (e.g., one hour before the unit period).
[0025] Although not particularly limited, the planned value for the procured power and the actual value for the procured power may be reported from the lower management server 200 or the upper management server 300. The planned value for the generated power and the actual value for the generated power may be reported from the lower management server 200 or the upper management server 300.
[0026] The external server 500 may include a server that manages information related to natural disasters (hereinafter, disaster information). The natural disaster may include a disaster that affects a power outage in the power grid 12. The disaster that affects a power outage in the power grid 12 may include a secondary disaster (such as a fire) of the natural disaster.
[0027] First, the disaster information may include information indicating the severity of a natural disaster (hereinafter referred to as an alert level) for each type of disaster, such as heavy rain, heavy snow, strong winds, blizzards, high waves, and storm surges. The types of alert levels may include emergency alerts, warnings, advisories, and the like.
[0028] Here, natural disasters with special warnings, natural disasters with warnings, and natural disasters with advisories may be different from each other. Natural disasters with special warnings may include heavy rain, heavy snow, windstorms, blizzards, high waves, and storm surges. Natural disasters with warnings may include heavy rain, floods, heavy snow, windstorms, blizzards, high waves, and storm surges. Natural disasters with advisories may include heavy rain, floods, heavy snow, strong winds, snowstorms, high waves, storm surges, lightning, dense fog, dryness, avalanches, icing, snow accumulation, snowmelt, frost, and low temperatures.
[0029] Second, the disaster information may include information about earthquakes, which may include information about the epicenter and the magnitude of the earthquake.
[0030] Third, the disaster information may include information about a tsunami. The information about a tsunami may include information indicating the time of arrival of the tsunami in each region and information indicating the height of the tsunami in each region.
[0031] Fourth, the disaster information may include information about typhoons. The information about typhoons may include information indicating the predicted path of winds and information indicating the scale of the typhoon (central pressure, central wind speed, storm area, strong wind area, etc.).
[0032] In the embodiment, a service for adjusting and controlling power supply and demand for the power grid 12 (hereinafter referred to as a VPP (Virtual Power Plant) service) will be described using distributed power sources installed in the facility 100. The AC may be considered to be a business that aggregates the amount of power controlled by the RA and directly trades power with a general power transmission and distribution company or a retail electricity company. The RA may be considered to be a business that directly concludes a VPP service contract with the facility 100 (consumer) and controls resources.
[0033] Although not particularly limited, the power supply and demand adjustment control may include control to adjust the power supply and demand balance in the power grid 12. The power supply and demand adjustment control may include control to adjust an imbalance regarding procured power, control to adjust an imbalance regarding generated power, and the like.
[0034] Here, the entity that sends control commands to the distributed power sources installed in the facility 100 may be referred to as a VPP controller. If the lower-level management server 200 has a VPP service collaboration function, the lower-level management server 200 and the EMS 160 described below may constitute a VPP controller. In such a case, the lower-level management server 200 may include a first server that functions as an RA and a second server that has a VPP service collaboration function. The first server and the second server may be separate servers or may be integrated into a single server.
[0035] In the embodiment, the VPP controller is an example of a power management device, and the upper management server 300 is an example of an upper node.
[0036] (facility) A facility according to an embodiment will be described below. As shown in Fig. 2, the facility 100 includes a solar cell device 110, a power storage device 120, a fuel cell device 130, a load device 140, and an EMS (Energy Management System) 160. The facility 100 may also include a measuring device 190.
[0037] The solar cell device 110 is a distributed power source that generates electricity in response to light such as sunlight. For example, the solar cell device 110 is configured by a PCS (Power Conditioning System) and a solar panel. Here, installation may mean connecting the solar cell device 110 to the power grid 12.
[0038] The power storage device 120 is a distributed power source that charges and discharges power. For example, the power storage device 120 is configured by a PCS and a power storage cell. Here, "installed" may mean that the power storage device 120 is connected to the power grid 12. In the following, the power storage device 120 is an example of a distributed power source used for power supply and demand adjustment control related to the power grid 12. The power storage device 120 may also be considered an example of a distributed power source used for VPP control.
[0039] The fuel cell device 130 is a distributed power source that generates electricity using fuel. For example, the fuel cell device 130 is composed of a PCS and a fuel cell. Here, "installed" may mean that the fuel cell device 130 and the power grid 12 are connected.
[0040] For example, the fuel cell device 130 may be a solid oxide fuel cell (SOFC; Solid Oxide Fuel Cell), a polymer electrolyte fuel cell (PEFC; Polymer Electrolyte Fuel Cell), a phosphoric acid fuel cell (PAFC; Phosphoric Acid Fuel Cell), or a molten carbonate fuel cell (MCFC; Molten Carbonate Fuel Cell).
[0041] The load devices 140 are devices that consume power. For example, the load devices 140 may include air conditioners, heat pump water heaters, lighting devices, and the like.
[0042] The EMS 160 manages the power related to the facility 100. The EMS 160 may control the solar cell device 110, the power storage device 120, the fuel cell device 130, and the load devices 140. In the embodiment, the EMS 160 is illustrated as an apparatus that receives control commands from the lower-level management server 200, but such an apparatus may be referred to as a gateway or simply as a control unit. The EMS 160 may be referred to as a local EMS (LES) or a home EMS (HEMS) to distinguish it from the lower-level management server 200. Details of the EMS 160 will be described later (see FIG. 5).
[0043] The measuring device 190 measures forward flow power (hereinafter also referred to as demand power) from the power grid 12 to the facility 100. The measuring device 190 may measure reverse flow power from the facility 100 to the power grid 12. For example, the measuring device 190 may be a smart meter belonging to a power company. The measuring device 190 may transmit an information element indicating a measurement result (an integrated value of forward flow power or reverse flow power) at a first interval (e.g., 30 minutes) to the EMS 160 at the first interval. The measuring device 190 may transmit an information element indicating a measurement result at a second interval (e.g., 1 minute) shorter than the first interval to the EMS 160.
[0044] (upper management server) The upper management server according to the embodiment will be described below. As shown in FIG.
[0045] The communication unit 310 is configured by a communication module. The communication module may be a wireless communication module conforming to standards such as IEEE802.11a / b / g / n / ac / ax, ZigBee, Wi-SUN, LTE, 5G, or 6G, or may be a wired communication module conforming to standards such as IEEE802.3.
[0046] For example, when it is necessary to adjust the balance of power supply and demand in the power grid 12, the communication unit 310 may transmit a DR request to the lower management server 200 requesting adjustment of power in the power grid 12. The DR request may include a downward DR request requesting a decrease in forward flow power (or an increase in backward flow power), or an upward DR request requesting an increase in forward flow power (or a decrease in backward flow power). The DR request may include information indicating the requested amount of adjustment power to be adjusted across the entire group of facilities 100. The requested amount of adjustment power may include the requested amount of decrease in forward flow power (e.g., a downward DR instruction power amount (Wh)). The DR request may include the requested amount of increase in forward flow power (e.g., an upward DR instruction power amount (Wh)).
[0047] The management unit 320 is configured by a storage medium such as a hard disk drive (HDD), a solid state drive (SSD), or a nonvolatile memory.
[0048] For example, the management unit 320 may manage the amount of power that can be adjusted across the entire group of facilities 100 (hereinafter referred to as the total adjustable amount of power). The total adjustable amount of power may be received from the lower-level management server 200. The total adjustable amount of power may include the amount of power that can be reduced in forward flow power (or increased in reverse flow power) (downward DR available power (Wh)). The total adjustable amount of power may also include the amount of power that can be increased in forward flow power (or decreased in reverse flow power) (upward DR available power (Wh)).
[0049] The control unit 330 may include at least one processor. The at least one processor may be configured by a single integrated circuit (IC) or may be configured by multiple circuits (such as integrated circuits and / or discrete circuits) communicatively connected.
[0050] For example, the control unit 330 may formulate a control plan for the distributed power source based on the adjustable amount of power. The control unit 330 may instruct the communication unit 310 to transmit a DR request in accordance with the control plan.
[0051] (Sub-management server) The lower level management server according to the embodiment will be described below. As shown in FIG.
[0052] The communication unit 210 is configured by a communication module. The communication module may be a wireless communication module conforming to standards such as IEEE802.11a / b / g / n / ac / ax, ZigBee, Wi-SUN, LTE, 5G, or 6G, or may be a wired communication module conforming to standards such as IEEE802.3.
[0053] For example, the communication unit 210 may receive facility information about the facility 100. The facility information may include information indicating the configuration of the distributed power sources possessed by the facility 100, or may include information indicating the specifications of the distributed power sources possessed by the facility 100. The facility information may include information indicating whether or not the facility 100 will participate in power supply and demand adjustment control (e.g., VPP control) related to the power grid 12.
[0054] The communication unit 210 may receive a planned value for the power generation amount of each of the facilities 100. The communication unit 210 may receive a planned value for the power demand amount of each of the facilities 100.
[0055] The communication unit 210 may transmit a control command to control the devices installed in each of the facilities 100. The devices installed in each of the facilities 100 may include distributed power sources such as a solar cell device 110, a power storage device 120, and a fuel cell device 130. The devices installed in each of the facilities 100 may include load devices 140.
[0056] The management unit 220 is configured by a storage medium such as a hard disk drive (HDD), a solid state drive (SSD), or a nonvolatile memory.
[0057] For example, the management unit 220 may manage one or more facilities 100 connected to the power grid 12. Management of one or more facilities 100 may be interpreted as management of one or more distributed power sources connected to the power grid 12.
[0058] The management unit 220 may manage information related to the facility 100. For example, the information related to the facility 100 may include the type of distributed power source (solar cell device 110, power storage device 120, or fuel cell device 130) installed in the facility 100, the specifications of the distributed power source (solar cell device 110, power storage device 120, or fuel cell device 130) installed in the facility 100, etc. The specifications may include the rated power generation of the solar cell device 110, the rated charging power of the power storage device 120, the rated discharging power of the power storage device 120, and the rated output power of the fuel cell device 130. The specifications may also include the rated capacity of the power storage device 120, the maximum charging and discharging power, etc.
[0059] The control unit 230 may include at least one processor. The at least one processor may be configured by a single integrated circuit (IC), or may be configured by multiple circuits (such as integrated circuits and / or discrete circuits) that are communicatively connected.
[0060] For example, the control unit 230 allocates the amount of power adjustment to be adjusted in each of the facilities 100 based on the DR request received from the upper management server 300. Specifically, the control unit 230 allocates the amount of power adjustment to be adjusted in each of the facilities 100 so that the total amount of power adjustment to be adjusted in each of the facilities 100 is equal to or greater than the requested amount of power adjustment included in the DR request. The amount of power adjustment to be adjusted in each of the facilities 100 may be referred to as an individual amount of power adjustment to distinguish it from the requested amount of power adjustment.
[0061] The individual adjustment amount of power may be allocated to each facility 100 or to each distributed power source (for example, the power storage device 120) installed in the facility 100.
[0062] (EMS) The EMS according to the embodiment will be described below. As shown in FIG.
[0063] The first communication unit 161 is configured by a communication module. The communication module may be a wireless communication module conforming to standards such as IEEE802.11a / b / g / n / ac / ax, ZigBee, Wi-SUN, LTE, 5G, or 6G, or may be a wired communication module conforming to standards such as IEEE802.3 or a proprietary protocol.
[0064] For example, the first communication unit 161 constitutes a first communication unit that communicates with the lower-level management server 200 via the network 11. The first communication unit 161 may receive a control command instructing the operation of the distributed power source (in the embodiment, the power storage device 120) from the lower-level management server 200. The control command may include information indicating the individual adjustment amount of power that should be controlled by each of the power storage devices 120.
[0065] The first communication unit 161 may communicate with the load device 140 or may communicate with the measuring device 190 .
[0066] The second communication unit 162 is configured by a communication module. The communication module may be a wireless communication module conforming to standards such as IEEE802.11a / b / g / n / ac / ax, ZigBee, Wi-SUN, LTE, 5G, or 6G, or may be a wired communication module conforming to standards such as IEEE802.3, RS485, or a proprietary protocol.
[0067] For example, the second communication unit 162 may communicate with the solar cell device 110, the power storage device 120, and the fuel cell device 130. Although signal lines are omitted in FIG. 2, the second communication unit 162 may communicate with the load device 140 and may communicate with the measuring device 190.
[0068] The control unit 163 controls the EMS 160. The control unit 163 may include at least one processor. The at least one processor may be configured by a single integrated circuit (IC), or may be configured by multiple circuits (such as integrated circuits and / or discrete circuits) that are communicatively connected.
[0069] For example, the control unit 163 may control the solar cell device 110, the power storage device 120, and the fuel cell device 130. The control unit 163 may also control the load device 140.
[0070] (Example of operation) An example of operation according to the embodiment will be described below. A case will be described below in which the distributed power source used in VPP control is the power storage device 120. Also, a case will be described in which specific control is performed to charge the power storage device 120 in advance of a power outage due to a natural disaster. The specific control may also be referred to as BCP (Business Continuity Plan) control.
[0071] Here, the specific control may be control that charges the power storage device 120 until the remaining amount of stored power (e.g., SOC; State Of Charge) of the power storage device 120 reaches a predetermined remaining amount (e.g., SOC=100%, 80%, etc.). The specific control does not need to be applied to the power storage device 120 whose remaining amount of stored power is equal to or greater than the predetermined remaining amount (e.g., SOC=100%, 80%, etc.).
[0072] (Example 1) Operation example 1 is an operation for solving the problem that the load on the power grid 12 may increase significantly if specific controls are simultaneously performed on a large number of power storage devices 120 in preparation for a power outage caused by a natural disaster.
[0073] In Operation Example 1, the communication unit 210 described above constitutes a receiving unit that receives disaster information related to natural disasters. The control unit 230 described above constitutes a control unit that controls two or more power storage devices connected to the power grid 12.
[0074] The lower level management server 200 receives disaster information related to natural disasters. The lower level management server 200 may receive the disaster information from an external server 500. If the facility 100 is capable of acquiring the disaster information, the lower level management server 200 may receive the disaster information from the facility 100 (for example, the EMS 160).
[0075] First, application of specific control will be described. Application of specific control may be considered as an operation of transmitting a control command corresponding to the specific control to the power storage device 120. Application of specific control may include transmitting a control command to change the operation mode of the power storage device 120 to a charging mode.
[0076] Based on the disaster information, the lower management server 200 applies different specific controls to two or more power storage devices 120 as specific controls for charging the power storage devices 120 before a power outage in the power grid. Here, the different specific controls may include the following options.
[0077] In option 1, the lower management server 200 may identify the extent of a natural disaster for each of two or more power storage devices 120 based on disaster information. The extent of a natural disaster may be identified by an alert level. The extent of a natural disaster may also be identified by the magnitude of an earthquake, the height of a tsunami, or the magnitude of a typhoon.
[0078] The lower level management server 200 sets different target charging powers for two or more power storage devices 120 depending on the severity of the natural disaster. The target charging power is the charging power that the power storage devices 120 aim for in specific control. The target charging power may be expressed as an instantaneous value (W or kW), an integrated value (Wh or kWh), or a remaining amount of power storage (%). The remaining amount of power storage may be expressed as SOC.
[0079] For example, the lower management server 200 may set a first target charging power for a power storage device 120 that has suffered a relatively large natural disaster (for example, a power storage device 120 that exists in an area where a special warning has been issued). The lower management server 200 may set a second target charging power that is smaller than the first target charging power for a power storage device 120 that has suffered a relatively small natural disaster (for example, a power storage device 120 that exists in an area where a warning has been issued).
[0080] For example, the relatively large or small extent of a natural disaster may mean, for example, that when an emergency warning, alert, or advisory has been issued, the relatively large one is an emergency warning and the relatively small one is an advisory. Also, when an emergency warning or alert has been issued, the relatively large one may be an emergency warning and the relatively small one may be an advisory. Furthermore, when an alert or advisory has been issued, the relatively large one may be an alert and the relatively small one may be an advisory. Note that the first target charging power may be set only when the largest natural disaster has been issued. For example, when an emergency warning has been issued, processing such as setting the first target charging power may be executed.
[0081] Although not particularly limited, for the power storage device 120 located in the area where the warning has been issued, zero may be set as the target charging power, and the specific control may not be applied.
[0082] In option 2, the lower management server 200 may identify the extent of a natural disaster for each of two or more power storage devices 120 based on the disaster information. The extent of a natural disaster may be identified by an alert level. The extent of a natural disaster may also be identified by the magnitude of an earthquake, the height of a tsunami, or the magnitude of a typhoon.
[0083] The lower level management server 200 sets different charging start times depending on the severity of the natural disaster for two or more power storage devices 120. The charging start times are the times at which the power storage devices 120 start charging under specific control.
[0084] For example, the lower management server 200 may set a first charging start time for a power storage device 120 that has suffered a relatively large natural disaster (for example, a power storage device 120 that exists in an area where a special warning has been issued). The lower management server 200 may set a second charging start time that is later than the first charging start time for a power storage device 120 that has suffered a relatively small natural disaster (for example, a power storage device 120 that exists in an area where a warning has been issued).
[0085] In option 3, the lower management server 200 may, based on the disaster information, identify a spread time regarding the time when a natural disaster will spread to each of two or more power storage devices 120. The spread time may be the time when a tsunami arrives in the area where the power storage device 120 is located, or the time when a typhoon reaches the area where the power storage device 120 is located.
[0086] The lower level management server 200 sets different charging start times for two or more power storage devices 120 depending on the impact time. For example, the charging start time may be defined as a time that is a predetermined time before the impact time. The predetermined time may differ depending on the level of the natural disaster (e.g., the height of the tsunami or the scale of the typhoon). For example, if the level of the natural disaster is relatively large, a first predetermined time may be used, and if the level of the natural disaster is relatively small, a second predetermined time that is shorter than the first predetermined time may be used.
[0087] In the first operational example, one or more options selected from options 1 to 3 may be combined.
[0088] Secondly, application of return control for returning from specific control will be described. Return from specific control may be interpreted as release of specific control. Application of return control may be considered as an operation of transmitting a control command corresponding to the return control to the power storage device 120.
[0089] When the threat of a power outage in the power grid due to a natural disaster is resolved, the lower level management server 200 receives information indicating the remaining amount of stored power (remaining power information) of each of the two or more power storage devices 120. The remaining amount of stored power may be expressed by SOC.
[0090] The elimination of the threat of a power outage may include the lifting of an emergency warning, the lifting of a warning, the lifting of an advisory, etc. The elimination of the threat of a power outage may include the typhoon's path deviating from the area where the power storage device 120 is located, the tsunami no longer reaching the area where the power storage device 120 is located, etc. When a power outage occurs due to a natural disaster, the elimination of the threat of a power outage may include the restoration of power after the power outage.
[0091] In addition, when the threat of a power outage is resolved, it may be assumed that a power outage actually occurs before the threat of a power outage is resolved, or that a power outage does not actually occur.
[0092] In operation example 1, the above-mentioned communication unit 210 constitutes a receiving unit that receives remaining power storage information indicating the remaining power storage capacity of each of two or more storage devices 120 when the threat of a power outage in the power grid due to a natural disaster is resolved.
[0093] When the threat of a power outage in the power grid due to a natural disaster is resolved, the lower level management server 200 applies different return controls to two or more power storage devices 120 as return controls to return from specific control. Specifically, the lower level management server 200 sets different times as the times to apply return controls (hereinafter referred to as return times) to two or more power storage devices 120. The setting of different times may include the following options.
[0094] Although not particularly limited, the content of the return control may be the control that was applied to the power storage device 120 before the specific control was executed (hereinafter referred to as the previous control), or may be control other than the previous control.
[0095] In option 1, the lower level management server 200 may set different times as the restoration times for two or more power storage devices 120 based on the remaining amount of stored power in the power storage devices 120 received when the threat of a power outage is resolved.
[0096] For example, in a case where a power outage did not actually occur, if the number of power storage devices 120 whose remaining amount of stored power is higher than the first remaining amount is equal to or greater than a threshold, the lower management server 200 may set different times as the return times for two or more power storage devices 120. Although not particularly limited, assuming a case where discharge control of the power storage devices 120 is executed as return control, the lower management server 200 may set a first return time for the power storage devices 120 whose remaining amount of stored power is relatively high, and set a second return time later than the first return time for the power storage devices 120 whose remaining amount of stored power is relatively low.
[0097] For example, in a case where a power outage has actually occurred, if the number of power storage devices 120 whose remaining amount of stored power is lower than the second remaining amount is equal to or greater than a threshold, the lower management server 200 may set different times as the return times for two or more power storage devices 120. Although not particularly limited, assuming a case where charge control of the power storage devices 120 is executed as return control, the lower management server 200 may set a first return time for the power storage devices 120 whose remaining amount of stored power is relatively low, and a second return time later than the first return time for the power storage devices 120 whose remaining amount of stored power is relatively high.
[0098] In option 2, when the content of the restoration control is the previous control, the lower management server 200 may set different times as the restoration times for two or more power storage devices 120 based on the content of the previous control.
[0099] For example, when the total discharge power of the previous control of two or more power storage devices 120 is greater than a predetermined discharge power, the lower management server 200 may set different times as the return times for two or more power storage devices 120. Although not particularly limited, the lower management server 200 may set a first return time for a power storage device 120 with a relatively high remaining amount of stored power, and a second return time later than the first return time for a power storage device 120 with a relatively low remaining amount of stored power.
[0100] For example, when the total of the charge power of the two or more power storage devices 120 under previous control is greater than a predetermined charge power, the lower management server 200 may set different times as the return times for the two or more power storage devices 120. Although not particularly limited, the lower management server 200 may set a first return time for the power storage device 120 with a relatively low remaining amount of stored power, and set a second return time later than the first return time for the power storage device 120 with a relatively high remaining amount of stored power.
[0101] (Example 2) Operation example 2 is an operation for solving the problem that when the power storage devices 120 used in a VPP include power storage devices 120 that autonomously execute specific control, VPP control cannot be executed appropriately because the power storage devices 120 are autonomously charged. Note that autonomous execution may mean that the power storage devices 120 execute the control at their own discretion, without relying on a control command received from the lower-level management server 200.
[0102] In the second operational example, the communication unit 210 described above constitutes a receiving unit that receives, from each of the two or more power storage devices 120 connected to the power grid 12, correspondence information related to a function of autonomously executing specific control for charging the power storage devices 120 before a power outage in the power grid 12. The control unit 230 described above constitutes a control unit that executes charge control or discharge control of each of the two or more power storage devices 120 as power supply and demand adjustment control (VPP control) for the power grid 12 based on the correspondence information.
[0103] The lower level management server 200 receives correspondence information relating to the function of autonomously executing specific control from each of the power storage devices 120. The correspondence information may include information (static information) indicating whether or not the power storage device 120 has the function of autonomously executing specific control. The correspondence information may also include information (dynamic information) indicating whether or not the power storage device 120 is autonomously executing specific control.
[0104] Based on the correspondence information, the lower level management server 200 executes charge control or discharge control of each of the two or more power storage devices 120 as power supply and demand adjustment control (VPP control) for the power grid 12. The VPP control may include the following options.
[0105] In option 1, the lower-level management server 200 excludes a first power storage device that has the capability to autonomously execute specific control from the targets of VPP control under specific conditions, and includes a second power storage device that does not have the capability to autonomously execute specific control as a target of VPP control. The specific control may include a condition in which a power outage occurs in the area where the first power storage device is located, a condition in which a power outage due to a natural disaster is expected in the area where the first power storage device is located, a condition in which a planned power outage is scheduled in the area where the first power storage device is located, or a condition that applies to all first power storage devices. The correspondence information used in such a case may be information (static information) indicating whether the device has the capability to autonomously execute specific control.
[0106] Here, the lower level management server 200 may exclude devices that contribute to charging the first power storage device from the targets of VPP control under specific conditions. The devices that contribute to charging the first power storage device may include power generation devices (e.g., solar cell devices 110, fuel cell devices 130) that supply power to the first power storage device under specific control of the first power storage device, and may also include load devices 140 that reduce power consumption to assist in charging the first power storage device.
[0107] The lower management server 200 may transmit to the upper node (in an embodiment, the upper management server 300 (AEMS or AC)) information that the second power storage device can be used under VPP control. The communication unit 210 described above constitutes a transmission unit.
[0108] The fact that the second power storage device can be used under VPP control may be indicated by a list of devices that can respond to a DR request (for example, a controllable device list). That is, the lower-level management server 200 may transmit a controllable device list including the second power storage device to the upper-level management server 300.
[0109] The lower management server 200 may send a message to the upper node (in an embodiment, the upper management server 300 (AEMS or AC)) that it is not possible to use the first power storage device and the equipment that contributes to charging the first power storage device under VPP control.
[0110] The fact that the first power storage device cannot be used under VPP control may be indicated by a list of devices that cannot respond to a DR request (for example, a list of uncontrollable devices). That is, the lower-level management server 200 may transmit to the upper-level management server 300 a list of uncontrollable devices that includes the first power storage device and devices that contribute to charging the first power storage device.
[0111] In option 2, the lower-level management server 200 excludes the third power storage device that is currently executing or scheduled to execute specific control from the targets of VPP control, and includes the fourth power storage device that is not currently executing or scheduled to execute specific control from the targets of VPP control. The correspondence information used in such a case may be information (dynamic information) indicating whether specific control is being executed autonomously or whether it is scheduled to be executed. The case where execution is scheduled may include a case where specific control is scheduled to be executed autonomously at the time when a DR request is expected. Whether specific control is scheduled to be executed autonomously may be determined based on whether a power outage due to a natural disaster is expected at the time when a DR request is expected, or whether a planned power outage is scheduled at the time when a DR request is expected.
[0112] Here, the lower level management server 200 may exclude devices that contribute to charging the third power storage device from the targets of VPP control. The devices that contribute to charging the third power storage device may include power generation devices (e.g., solar cell device 110, fuel cell device 130) that supply power to the third power storage device in specific control of the third power storage device, and may also include load devices 140 that reduce power consumption to assist in charging the third power storage device.
[0113] The lower management server 200 may transmit to the upper node (in an embodiment, the upper management server 300 (AEMS or AC)) that the fourth power storage device can be used under VPP control. The communication unit 210 described above constitutes a transmission unit.
[0114] The fact that the fourth power storage device can be used under VPP control may be indicated by a list of devices that can respond to a DR request (for example, a controllable device list). That is, the lower management server 200 may transmit a controllable device list including the fourth power storage device to the upper management server 300.
[0115] The lower management server 200 may send a message to the upper node (in an embodiment, the upper management server 300 (AEMS or AC)) that it is not possible to use the third power storage device and the equipment that contributes to charging the third power storage device under VPP control.
[0116] The fact that the third power storage device cannot be used under VPP control may be indicated by a list of devices that cannot respond to a DR request (for example, a list of uncontrollable devices). That is, the lower-level management server 200 may transmit to the upper-level management server 300 a list of uncontrollable devices that includes the third power storage device and devices that contribute to charging the third power storage device.
[0117] In the second operational example, whether to use option 1 or option 2 may be determined based on the VPP service contract or the like.
[0118] (Power management method) A power management method according to an embodiment will be described below. In the following, the lower level management server 200 may constitute at least a part of a VPP controller.
[0119] First, the power management method according to the above-described first operation example will be described with reference to FIGS.
[0120] 6, in step S10, a situation occurs in which a natural disaster occurs or a situation in which a natural disaster is predicted occurs. The situation in which a natural disaster occurs may be a situation in which heavy rain, flood, heavy snow, strong wind, wind and snow, waves, high tide, lightning, dense fog, dryness, avalanche, icing, snow accumulation, snow melting, frost, low temperatures, earthquake, tsunami, typhoon, etc. The situation in which a natural disaster is predicted may be a situation in which various warnings are issued, or a situation in which a natural disaster (earthquake, tsunami, typhoon, etc.) is predicted to spread to the area in which power storage device 120 is located.
[0121] In step S11, the lower management server 200 acquires disaster information. The lower management server 200 may periodically receive the disaster information from the external server 500. The lower management server 200 may also receive the disaster information from the external server 500 in response to the occurrence or prediction of a disaster.
[0122] In step S12A, lower-level management server 200 transmits a control command to power storage device #A to instruct it to perform specific control. In step S12B, lower-level management server 200 transmits a control command to power storage device #B to instruct it to perform specific control.
[0123] In step 13A, power storage device #A executes specific control in response to the control command, and in step 13B, power storage device #B executes specific control in response to the control command.
[0124] Here, the target charging power referenced in the specific control of power storage device #A may be different from the target charging power referenced in the specific control of power storage device #B. For example, in a case where a special warning is issued in the area where power storage device #A is located and a warning is issued in the area where power storage device #B is located, the target charging power of power storage device #A may be greater than the target charging power of power storage device #B.
[0125] The time when power storage device #A starts specific control (charging start time) may be different from the time when power storage device #B starts specific control (charging start time). For example, in a case where a special warning is issued in the area where power storage device #A is located and a warning is issued in the area where power storage device #B is located, the charging start time of power storage device #A may be earlier than the charging start time of power storage device #B.
[0126] As shown in Fig. 7, in step S20, a situation occurs in which the threat of a power outage is resolved. The elimination of the threat of a power outage may include the lifting of an emergency warning, the lifting of a warning, the lifting of an advisory, etc. The elimination of the threat of a power outage may include the typhoon's path deviating from the area where the power storage device 120 is located, or the tsunami no longer reaching the area where the power storage device 120 is located, etc. In the case where a power outage occurs due to a natural disaster, the elimination of the threat of a power outage may include the restoration of power from the power outage.
[0127] In step S21A, power storage device #A waits for a control command to be transmitted from lower-level management server 200. In step S21B, power storage device #B waits for a control command to be transmitted from lower-level management server 200.
[0128] In step S22A, power storage device #A transmits remaining power storage information indicating the remaining power storage amount of power storage device #A to lower level management server 200. In step S22B, power storage device #B transmits remaining power storage information indicating the remaining power storage amount of power storage device #B to lower level management server 200. Power storage device #A and power storage device #B may transmit the remaining power storage information in response to a request from lower level management server 200, or may transmit the remaining power storage information autonomously in response to the resolution of the threat of a power outage.
[0129] In step S23A, lower level management server 200 transmits a control command to power storage device #A to instruct the execution of return control. In step S23B, lower level management server 200 transmits a control command to power storage device #B to instruct the execution of return control.
[0130] In step 24A, power storage device #A executes return control in response to the control command, and in step 24B, power storage device #B executes return control in response to the control command.
[0131] Here, the time (return time) at which power storage device #A starts the return control may be different from the time (return time) at which power storage device #B starts the return control. The content of the return control may be the control (previous control) that was applied to power storage device 120 before the specific control was executed, or may be control other than the previous control.
[0132] Secondly, the power management method according to the above-described operation example 2 will be described with reference to Fig. 8. In Fig. 8, power storage device #C is an example of a power storage device 120 that has the function of autonomously executing specific control. Power storage device #D is an example of a power storage device 120 that does not have the function of autonomously executing specific control.
[0133] 8, in step S30, the lower management server 200 receives correspondence information related to the function of autonomously executing specific control from the power storage device #C and the power storage device #D. The correspondence information received in step S30 is information (static information) indicating whether or not the power storage device #C and the power storage device #D have the function of autonomously executing specific control. The power storage device #C and the power storage device #D may transmit the correspondence information in response to a request from the lower management server 200.
[0134] In step S31, the lower management server 200 may transmit a list of devices that can respond to a DR request (a list of devices that can respond) to the AC. For example, the list of devices that can respond may include power storage device #D but not power storage device #C. The lower management server 200 may transmit a list of devices that cannot respond to a DR request (a list of devices that cannot respond) to the AC. For example, the list of devices that cannot respond may include power storage device #C but not power storage device #D.
[0135] In step S40, a situation occurs in which a natural disaster occurs or a situation in which a natural disaster is predicted occurs. The situation in which a natural disaster occurs may be a situation in which heavy rain, flood, heavy snow, strong winds, wind and snow, waves, high tides, lightning, dense fog, dryness, avalanches, icing, snow accumulation, snow melting, frost, low temperatures, earthquakes, tsunamis, typhoons, etc. The situation in which a natural disaster is predicted may be a situation in which various warnings are issued, or a situation in which a natural disaster (earthquake, tsunami, typhoon, etc.) is predicted to spread to the area in which power storage device 120 is located.
[0136] In step S41, the lower management server 200 acquires disaster information. The lower management server 200 may periodically receive the disaster information from the external server 500. The lower management server 200 may also receive the disaster information from the external server 500 in response to the occurrence or prediction of a disaster.
[0137] In step S42, when a natural disaster occurs or is predicted in the area of the power storage device #C, the power storage device #C autonomously executes specific control. Autonomous execution may mean that the power storage device 120 executes the specific control at its own discretion, without relying on a control command received from the lower-level management server 200.
[0138] In step S43, the lower level management server 200 transmits information (information request) to the power storage devices #C and #D inquiring as to whether specific control is currently being executed or whether execution is scheduled.
[0139] In step S44, the lower management server 200 receives from the power storage device #C and the power storage device #D response information relating to the function of autonomously executing specific control. The response information received in step S44 is information (static information) indicating whether specific control is being executed or whether execution is scheduled. The power storage device #C and the power storage device #D may transmit the autonomous response information without being requested by the lower management server 200.
[0140] In step S45, the lower level management server 200 may transmit a list of devices that can respond to the DR request (a list of devices that can respond) to the AC. For example, the list of devices that can respond may include power storage device #D but not power storage device #C. The lower level management server 200 may transmit a list of devices that cannot respond to the DR request (a list of devices that cannot respond) to the AC. For example, the list of devices that cannot respond may include power storage device #C but not power storage device #D.
[0141] In step S50, the AC formulates a control plan for maintaining the balance between power supply and demand in the power grid 12. The AC may formulate the control plan excluding the power storage device #C based on the information (device list) received in step S31 or step S45.
[0142] In step S51, the AC transmits a DR request according to the control plan to the lower management server 200. The DR request may include information indicating the requested adjustment amount of power to be adjusted across the entire group of facilities 100.
[0143] In step S52, the lower management server 200 allocates the amount of adjustment power to be adjusted in each of the facilities 100. The lower management server 200 allocates the amount of adjustment power to be adjusted in each of the facilities 100 so that the total amount of adjustment power to be adjusted in each of the facilities 100 is equal to or greater than the requested adjustment power amount included in the DR request. Here, the lower management server 200 excludes power storage device #C from the targets of VPP control (targets for allocation of adjustment power amount) and includes power storage device #D in the targets of VPP control (targets for allocation of adjustment power amount).
[0144] In step S53, the lower-level management server 200 transmits a control command to charge or discharge power storage device #D in accordance with the allocation result in step S52.
[0145] 8, for convenience of explanation, both option 1 (steps S30 and S31) of operation example 2 and option 2 (steps S43 to S45) of operation example 2 are shown. However, operation example 2 is not limited to this.
[0146] For example, when option 1 is adopted, the processes of steps S43 to S45 may be omitted. In such a case, power storage device #C may be excluded from the target of VPP control regardless of whether power storage device #C actually executes specific control.
[0147] Alternatively, when option 1 is adopted, the processes of steps S30 and S31 may be omitted. In such a case, when the power storage device #C actually executes the specific control, the power storage device #C may be excluded from the targets of the VPP control, and when the power storage device #C does not actually execute the specific control, the power storage device #C may not be excluded from the targets of the VPP control.
[0148] (Action and effect) In the embodiment, the lower management server 200 applies different specific controls to two or more power storage devices 120 as specific controls for charging the power storage devices 120 before a power outage in the power grid 12 based on disaster information. With this configuration, it is possible to prevent two or more power storage devices 120 from simultaneously starting specific controls (charging), thereby suppressing an increase (for example, an unexpected increase) in the load on the power grid 12.
[0149] In the embodiment, when the threat of a power outage in the power grid 12 due to a natural disaster is resolved, the lower-level management server 200 receives information indicating the remaining amount of stored power in each of the two or more power storage devices 120. With this configuration, before the threat of a power outage is resolved, the remaining amount of stored power in each power storage device 120, which differs depending on whether a power outage actually occurred, can be ascertained, thereby making it possible to appropriately execute VPP control after the threat of a power outage is resolved.
[0150] In the embodiment, when the threat of a power outage in the power grid 12 due to a natural disaster is resolved, the lower management server 200 applies different return controls to two or more power storage devices 120 as return controls for returning from specific control. After the threat of a power outage is resolved, it is possible to prevent the power storage devices 120 from simultaneously starting charging or discharging, thereby suppressing an increase (for example, an unexpected increase) in the load on the power grid 12.
[0151] In the embodiment, the lower management server 200 receives correspondence information related to the function of autonomously executing specific control from each of the power storage devices 120. With this configuration, it is possible to appropriately execute VPP control, assuming a case in which the power storage device 120 autonomously executes specific control. For example, it is possible to avoid a situation in which a power storage device 120 that autonomously executes specific control executes control different from the control command (i.e., specific control). Alternatively, it is possible to avoid a situation in which the specific control autonomously executed by the power storage device 120 is changed by the control command.
[0152] [Other embodiments] Although the present invention has been described by the above-mentioned embodiments, the descriptions and drawings that form part of this disclosure should not be understood to limit the present invention. From this disclosure, various alternative embodiments, examples, and operating techniques will become apparent to those skilled in the art.
[0153] In the above disclosure, the case where the distributed power source used for VPP control is the power storage device 120 has been exemplified. However, the above disclosure is not limited to this. The distributed power source used for VPP control may include a solar cell device 110, a fuel cell device 130, etc. The distributed power source used for VPP control may also include a wind power generation device, a geothermal power generation device, etc.
[0154] In the above disclosure, the distributed power source used for VPP control may be interpreted as a distributed power source system including the power storage device 120 and the EMS 160.
[0155] In the above disclosure, the term "generated power" is mainly used, but "generated power" may also be read as "reverse flow power."
[0156] In the above disclosure, the term "procured power" is mainly used, but "procured power" may also be interpreted as "forward flow power." Procured power may be considered to be a term used for the forward flow power of the facility group 100, and demand power may be considered to be a term used for the forward flow power of each facility 100.
[0157] Although not specifically mentioned in the above disclosure, communication between the VPP controller and the power storage device 120 may be performed in a manner compliant with ECHONET Lite (registered trademark).
[0158] Although not specifically mentioned in the above disclosure, power may be expressed as an instantaneous value (W / kW) or as an integrated value per unit time (Wh / kWh).
[0159] Although not specifically mentioned in the above disclosure, a program may be provided that causes a computer to execute each process performed by the lower-level management server 200. The program may also be recorded on a computer-readable medium. Using the computer-readable medium, the program can be installed on a computer. Here, the computer-readable medium on which the program is recorded may be a non-transitory recording medium. The non-transitory recording medium is not particularly limited, and may be, for example, a recording medium such as a CD-ROM or a DVD-ROM.
[0160] Alternatively, a chip may be provided that is configured by a memory that stores programs for executing the processes performed by the lower level management server 200 and a processor that executes the programs stored in the memory.
[0161] [Note] The above disclosure may be expressed as follows: The first feature is that the power management device includes a receiving unit that receives disaster information related to natural disasters and a control unit that controls two or more storage devices connected to a power grid, and the control unit applies different specific controls to the two or more storage devices based on the disaster information as specific controls that charge the storage devices before a power outage in the power grid.
[0162] A second feature is that, in the power management device of the first feature, the control unit identifies the extent of the natural disaster for each of the two or more power storage devices based on the disaster information, and sets different target charging powers for the two or more power storage devices depending on the extent of the natural disaster.
[0163] A third feature is the power management device according to the first or second feature, wherein the control unit identifies the extent of the natural disaster for each of the two or more power storage devices based on the disaster information, and sets different charging start times for the two or more power storage devices depending on the extent of the natural disaster.
[0164] A fourth feature is a power management device in which, in at least one of the first to third features, the control unit identifies a time of impact related to the time when the natural disaster will spread for each of the two or more power storage devices based on the disaster information, and sets different charging start times for the two or more power storage devices depending on the time of impact.
[0165] A fifth feature is a power management device in which, in at least one of the first to fourth features, the receiving unit receives information indicating the remaining storage capacity of each of the two or more storage devices when the risk of a power outage in the power grid due to the natural disaster is resolved.
[0166] A sixth feature is a power management device in which, in at least one of the first to fifth features, the control unit applies different recovery controls to the two or more storage devices as recovery controls to return from the specific control when the risk of a power outage in the power system due to the natural disaster is resolved.
[0167] A seventh feature is the power management device according to the sixth feature, wherein the control unit sets different times as times for applying the return control to the two or more power storage devices.
[0168] An eighth feature is a power management method including step A of receiving disaster information related to a natural disaster and step B of controlling two or more power storage devices connected to a power grid, wherein step B includes a step of applying different specific controls to the two or more power storage devices based on the disaster information as specific controls for charging the power storage devices before a power outage in the power grid. [Explanation of symbols]
[0169] 1...power management system, 11...network, 12...power system, 100...facility, 110...solar cell device, 120...power storage device, 130...fuel cell device, 140...load device, 160...EMS, 161...first communication unit, 162...second communication unit, 163...control unit, 190...measuring device, 200...lower management server, 210...communication unit, 220...management unit, 230...control unit, 300...upper management server, 310...communication unit, 320...management unit, 330...control unit, 400...third-party server, 500...external server
Claims
1. a receiving unit that receives disaster information related to natural disasters from an external server; a control unit that controls two or more power storage devices connected to the power grid, The control unit is a power management device that applies different specific controls to the two or more storage devices based on the disaster information received from the external server as specific controls for charging the storage devices located in an area where the disaster information received from the external server has been issued, before a power outage in the power grid.
2. The control unit identifying the extent of the natural disaster for each of the two or more power storage devices based on the disaster information; The power management device according to claim 1 , wherein different target charging powers are set for the two or more power storage devices depending on the severity of the natural disaster.
3. The control unit identifying the extent of the natural disaster for each of the two or more power storage devices based on the disaster information; The power management device according to claim 1 , wherein different charging start times are set for the two or more power storage devices depending on the severity of the natural disaster.
4. The control unit identifying a time when the natural disaster will spread to each of the two or more power storage devices based on the disaster information; The power management device according to claim 1 , wherein different charging start times are set for the two or more power storage devices depending on the influence time.
5. 2. The power management device according to claim 1, wherein the receiving unit receives information indicating the remaining amount of stored power in each of the two or more power storage devices when the threat of a power outage in the power grid caused by the natural disaster is resolved.
6. 2. The power management device according to claim 1, wherein the control unit applies different return controls to the two or more power storage devices as return controls to return from the specific control when the threat of a power outage in the power system due to the natural disaster is resolved.
7. The power management device according to claim 6 , wherein the control unit sets different times as the times at which the return control is to be applied to the two or more power storage devices.
8. Step A of receiving disaster information related to a natural disaster from an external server; and step B of controlling two or more power storage devices connected to the power grid, The power management method includes a step of applying different specific controls to the two or more power storage devices based on the disaster information received from the external server as specific controls for charging the power storage devices located in an area where the disaster information received from the external server has been issued, before a power outage in the power grid.
Citation Information
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