WO2024095629A1 - 電力システムの運転方法、および電力システムの制御装置 - Google Patents
電力システムの運転方法、および電力システムの制御装置 Download PDFInfo
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- WO2024095629A1 WO2024095629A1 PCT/JP2023/034121 JP2023034121W WO2024095629A1 WO 2024095629 A1 WO2024095629 A1 WO 2024095629A1 JP 2023034121 W JP2023034121 W JP 2023034121W WO 2024095629 A1 WO2024095629 A1 WO 2024095629A1
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02J—ELECTRIC POWER NETWORKS; CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
- H02J3/00—Circuit arrangements for AC mains or AC distribution networks
- H02J3/38—Arrangements for feeding a single network from two or more generators or sources in parallel; Arrangements for feeding already energised networks from additional generators or sources in parallel
- H02J3/46—Controlling the sharing of generated power between the generators, sources or networks
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02J—ELECTRIC POWER NETWORKS; CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
- H02J3/00—Circuit arrangements for AC mains or AC distribution networks
- H02J3/28—Arrangements for balancing of the load in networks by storage of energy
- H02J3/32—Arrangements for balancing of the load in networks by storage of energy using batteries or super capacitors with converting means
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M10/00—Secondary cells; Manufacture thereof
- H01M10/42—Methods or arrangements for servicing or maintenance of secondary cells or secondary half-cells
- H01M10/46—Accumulators structurally combined with charging apparatus
-
- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M16/00—Structural combinations of different types of electrochemical generators
- H01M16/003—Structural combinations of different types of electrochemical generators of fuel cells with other electrochemical devices, e.g. capacitors, electrolysers
- H01M16/006—Structural combinations of different types of electrochemical generators of fuel cells with other electrochemical devices, e.g. capacitors, electrolysers of fuel cells with rechargeable batteries
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M8/00—Fuel cells; Manufacture thereof
- H01M8/04—Auxiliary arrangements, e.g. for control of pressure or for circulation of fluids
- H01M8/04298—Processes for controlling fuel cells or fuel cell systems
- H01M8/04313—Processes for controlling fuel cells or fuel cell systems characterised by the detection or assessment of variables; characterised by the detection or assessment of failure or abnormal function
- H01M8/04537—Electric variables
- H01M8/04604—Power, energy, capacity or load
- H01M8/04626—Power, energy, capacity or load of auxiliary devices, e.g. batteries, capacitors
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M8/00—Fuel cells; Manufacture thereof
- H01M8/04—Auxiliary arrangements, e.g. for control of pressure or for circulation of fluids
- H01M8/04298—Processes for controlling fuel cells or fuel cell systems
- H01M8/04694—Processes for controlling fuel cells or fuel cell systems characterised by variables to be controlled
- H01M8/04858—Electric variables
- H01M8/04925—Power, energy, capacity or load
- H01M8/0494—Power, energy, capacity or load of fuel cell stacks
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02J—ELECTRIC POWER NETWORKS; CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
- H02J3/00—Circuit arrangements for AC mains or AC distribution networks
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02J—ELECTRIC POWER NETWORKS; CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
- H02J3/00—Circuit arrangements for AC mains or AC distribution networks
- H02J3/38—Arrangements for feeding a single network from two or more generators or sources in parallel; Arrangements for feeding already energised networks from additional generators or sources in parallel
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02J—ELECTRIC POWER NETWORKS; CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
- H02J3/00—Circuit arrangements for AC mains or AC distribution networks
- H02J3/38—Arrangements for feeding a single network from two or more generators or sources in parallel; Arrangements for feeding already energised networks from additional generators or sources in parallel
- H02J3/381—Dispersed generators
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02J—ELECTRIC POWER NETWORKS; CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
- H02J7/00—Circuit arrangements for charging or discharging batteries or for supplying loads from batteries
- H02J7/34—Parallel operation in networks using both storage and other DC sources, e.g. providing buffering
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02J—ELECTRIC POWER NETWORKS; CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
- H02J7/00—Circuit arrangements for charging or discharging batteries or for supplying loads from batteries
- H02J7/34—Parallel operation in networks using both storage and other DC sources, e.g. providing buffering
- H02J7/35—Parallel operation in networks using both storage and other DC sources, e.g. providing buffering with light sensitive cells
-
- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M2250/00—Fuel cells for particular applications; Specific features of fuel cell system
- H01M2250/40—Combination of fuel cells with other energy production systems
- H01M2250/402—Combination of fuel cell with other electric generators
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02J—ELECTRIC POWER NETWORKS; CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
- H02J2101/00—Supply or distribution of decentralised, dispersed or local electric power generation
- H02J2101/20—Dispersed power generation using renewable energy sources
- H02J2101/22—Solar energy
- H02J2101/24—Photovoltaics
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02J—ELECTRIC POWER NETWORKS; CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
- H02J2101/00—Supply or distribution of decentralised, dispersed or local electric power generation
- H02J2101/20—Dispersed power generation using renewable energy sources
- H02J2101/30—Fuel cells
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E60/00—Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
- Y02E60/30—Hydrogen technology
- Y02E60/50—Fuel cells
Definitions
- This disclosure relates to a method for operating a power system that supplies electric power.
- This power supply system includes a power conditioner device that adjusts the power supplied from a solar power generation device, which is a natural energy power generation device, a storage battery, a hydrogen production device, and a fuel cell.
- the power supply system supplies the facility with electric power obtained by the solar power generation device, the storage battery, and the fuel cell, and further supplies surplus electric power to the storage battery or the hydrogen production device.
- the power supply system also predicts the amount of electric power generated by the solar power generation device, and determines the amount of electric power to be charged and discharged by the storage battery, the amount of electric power to be supplied to the hydrogen production device, and the amount of electric power to be supplied from the fuel cell based on a predicted value, which is the predicted amount of electric power generation. This makes it possible to continuously supply electric power that meets the demand of the facility.
- the power supply system equipped with a solar power generation device, a storage battery, and a fuel cell in the above-mentioned Patent Document 1, i.e., the method of operating the power system, does not sufficiently consider the charge level of the storage battery, so there is a problem that the storage battery cannot absorb surplus power from the solar power generation device, resulting in reverse power flow to the power grid, or the charge level of the storage battery is insufficient to meet the power demand of the load, resulting in the need to purchase power from the power grid.
- the present disclosure provides a method for operating a power system that can reduce reverse power flow to the power grid or the purchase of electricity from the power grid by taking into account the charge level of the storage battery.
- a method of operating a power system includes a step of planning the output of a fuel cell system to compensate for the difference between the power demand and the output of a photovoltaic power generation system, and in the step, when the charging rate of the battery storage system is equal to or greater than an upper limit value less than 100%, at least one of a first correction for correcting the plan to reduce the output of the fuel cell system and a second correction for correcting the plan to increase the output of the fuel cell system when the charging rate of the battery storage system is equal to or less than a lower limit value greater than 0% is executed.
- a system a method, an integrated circuit, a computer program, or a recording medium such as a computer-readable CD-ROM, or may be realized by any combination of a system, a method, an integrated circuit, a computer program, and a recording medium.
- the recording medium may be a non-transitory recording medium.
- the power system operation method disclosed herein takes into account the charge level of the storage battery, making it possible to reduce reverse power flow to the power grid or the purchase of electricity from the power grid.
- FIG. 1 is a diagram showing an example of the configuration of an entire system including a power system and a control device for the power system according to an embodiment.
- FIG. 2 is a diagram for explaining the output of the fuel cell power generation system planned by the control device in the embodiment.
- FIG. 3 is a block diagram illustrating an example of a functional configuration of the control device according to the embodiment.
- FIG. 4 is a diagram showing an example of the generated power of the fuel cell power generation apparatus and the charging and discharging power of the storage battery apparatus controlled by the control apparatus in the embodiment.
- FIG. 5 is a flowchart illustrating an example of a processing operation of the data acquisition unit according to the embodiment.
- FIG. 6 is a flowchart showing an example of the processing operation of the fuel cell output calculation unit and the output correction unit in the embodiment.
- FIG. 7 is a flowchart illustrating an example of a processing operation of the storage battery output calculation unit in the embodiment.
- FIG. 8 is a flowchart illustrating an example of a processing operation of the third controller in the embodiment.
- FIG. 9 is a diagram showing an example of effects obtained by the operation modes of the control device in the embodiment.
- the power supply system in Patent Document 1 predicts the amount of power generated by the solar power generation system based on the weather for the next day, and adjusts the amount of power supplied from the solar power generation system to the storage battery and water electrolysis system during the day and the amount of power supplied from the storage battery and fuel cell to the facility during the night on that day based on this prediction.
- the storage battery will be given priority over the fuel cell during the night of that day to supply power to the facility and ensure free capacity in the storage battery, and the following day surplus power from the solar power generation system will be given priority to supply to the storage battery.
- the power generated by solar power generation systems and power demand generally fluctuate greatly, and even on sunny days, the power generated by the solar power generation system may not be enough to meet power demand, and power from the storage battery may be required. Therefore, even if sunny weather is predicted for the next day, it is necessary to have a certain amount of charge remaining in the storage battery to be able to handle such cases, but this point is not taken into consideration.
- the method of operating a power system includes a step of planning the output of a fuel cell system to compensate for the difference between the power demand and the output of a photovoltaic power generation system, and in the step, when the charging rate of the storage battery system is equal to or greater than an upper limit value less than 100%, at least one of a first correction is performed to correct the plan so that the output of the fuel cell system decreases, and when the charging rate of the storage battery system is equal to or less than a lower limit value greater than 0%, at least one of a second correction is performed to correct the plan so that the output of the fuel cell system increases.
- the power system includes, for example, a photovoltaic power generation system, a fuel cell system, and a storage battery system.
- the photovoltaic power generation system includes a photovoltaic power generation device, the fuel cell system includes a fuel cell, and the storage battery system includes a storage battery.
- the power demand is, for example, the power consumption of a load provided by a power consumer, and the respective outputs of the photovoltaic power generation system and the fuel cell system are, for example, generated power.
- the battery system can be discharged so as to make up for the power shortage caused by the reduced output of the fuel cell system.
- the second correction is performed, the output of the fuel cell system increases, reducing the discharge from the battery system. This reduces the possibility that the battery system will, for example, be completely discharged and will have to purchase power from the power grid.
- the possibility of the battery system being fully charged or completely discharged is reduced, the battery life is more likely to be extended.
- the charging rate of the battery storage system may be the average or median of the charging rates of the multiple battery units. Furthermore, the power demand and the output of the solar power generation system may each be an actual value or a predicted value. If the power demand and the output of the solar power generation system are each an actual value, the charging rate of the battery storage system may be the charging rate at the time of planning the output of the battery storage system. Furthermore, if the power demand and the output of the solar power generation system are each a predicted value, the charging rate of the battery storage system may also be a predicted value.
- a control device for a power system includes a memory that stores the power demand and the output of a solar power generation system, and a controller that, when planning the output of a fuel cell system to compensate for the difference between the power demand and the output of the solar power generation system, executes at least one of a first correction that corrects the plan to reduce the output of the fuel cell system when the charging rate of the storage battery system is equal to or greater than an upper limit value that is smaller than 100%, and a second correction that corrects the plan to increase the output of the fuel cell system when the charging rate of the storage battery system is equal to or less than a lower limit value that is larger than 0%.
- a first correction that corrects the plan to reduce the output of the fuel cell system when the charging rate of the storage battery system is equal to or greater than an upper limit value that is smaller than 100%
- a second correction that corrects the plan to increase the output of the fuel cell system when the charging rate of the storage battery system is equal to or less than a lower limit value that is larger than 0%.
- each figure is a schematic diagram and is not necessarily a precise illustration. Furthermore, the same components are given the same reference numerals in each figure.
- Fig. 1 is a diagram showing an example of the configuration of an entire system including a power system and a control device for the power system according to the present embodiment.
- power lines are shown by solid lines
- communication lines are shown by dashed lines.
- the power system 200 in this embodiment is connected to the power grid 100 and the load 301 via power lines.
- the power system 200 supplies power to the load 301.
- the power grid 100 has a function of supplying system power and is connected to the load 301 via power lines.
- the system power is also called commercial power, and is, for example, 50 Hz or 60 Hz AC power. Therefore, when the power supplied from the power system 200 is insufficient for the power consumption of the load 301, the power grid 100 supplies the shortage of power to the load 301.
- the surplus power is taken over by the power grid 100, that is, the surplus power is sold as reverse flow power.
- the load 301 in this embodiment is composed of one or more appliances, equipment, devices, etc. that consume power.
- the power consumption of the load 301 is also called power demand.
- the load 301 is provided by power consumers such as factories and facilities.
- the power system 200 includes a solar power generation system a, a fuel cell system b, and a storage battery system c.
- the solar power generation system a includes a first controller 210, a solar power generation device 211, a first PCS (Power Conditioning System) 212, and a first power meter 213.
- PCS Power Conditioning System
- the solar power generation device 211 has, for example, one or more solar power generation units, and converts sunlight into electricity by photoelectric conversion and outputs it.
- the solar power generation unit is, for example, a solar power generation panel.
- the solar power generation device 211 is also simply referred to as a solar cell hereinafter.
- the first PCS 212 converts the power output from the solar power generation device 211 into electricity of the same quality as the grid power and outputs it.
- the first power meter 213 measures the power output from the solar power generation device 211 via the first PCS 212, i.e., the grid power, and outputs a signal indicating the measured power to the control device 10.
- the first controller 210 controls the solar power generation device 211 and the first PCS 212.
- the first controller 210 controls the solar power generation device 211 and the first PCS 212 in response to a command from the control device 10.
- Fuel cell system b includes a second controller 220, a fuel cell power generation device 221, a second PCS 222, and a second power meter 223.
- the fuel cell power generation device 221 has, for example, one or more fuel cell units, and generates electricity by chemically reacting hydrogen with oxygen.
- the hydrogen source used for power generation is, for example, a hydrogen storage tank or hydrogen infrastructure.
- the fuel cell unit is, for example, a fuel cell stack device.
- the fuel cell power generation device 221 is also simply referred to as a fuel cell hereinafter.
- the second PCS 222 converts the power output by the power generation of the fuel cell power generation device 221 into power of the same quality as the grid power and outputs it.
- the second power meter 223 measures the power output from the fuel cell power generation device 221 via the second PCS 222, i.e., the grid power, and outputs a signal indicating the measured power to the control device 10.
- the second controller 220 controls the fuel cell power generation device 221 and the second PCS 222. For example, the second controller 220 adjusts the power output from the fuel cell power generation device 221 and the second PCS 222 in response to a
- the storage battery system c includes a third controller 230, a storage battery device 231, a third PCS 232, and a third power meter 233.
- the storage battery device 231 has, for example, one or more storage battery units, and performs charging or discharging.
- the storage battery unit is, for example, a storage battery pack.
- the storage battery device 231 is also simply referred to as a storage battery hereinafter.
- the third PCS 232 converts the power output by discharging the storage battery device 231 into power of the same quality as the grid power and outputs it. Alternatively, the third PCS 232 converts the grid power and charges the storage battery device 231.
- the third power meter 233 measures the power output from the storage battery device 231 via the third PCS 232, i.e., the grid power, and outputs a signal indicating the measured power to the control device 10.
- the third power meter 233 also measures the power output from the solar power generation device 211 or the fuel cell power generation device 221 and charged to the storage battery device 231, and outputs a signal indicating the measured power to the control device 10.
- the third controller 230 controls the storage battery device 231 and the third PCS 232. For example, the third controller 230 adjusts the power discharged from the storage battery device 231 or the power charged to the storage battery device 231 in response to a command from the control device 10.
- the control device 10 in this embodiment is a control device for the power system 200, and is connected to the fourth power meter 303, the power system 200, and the database 20 via communication lines.
- the control device 10 communicates with each of the fourth power meter 303, the power system 200, and the database 20 via the communication lines.
- the power that is notified, transmitted, instructed, acquired, or received via the communication lines is not the power itself, but data indicating the magnitude of the power, such as watts.
- the fourth power meter 303 measures the power consumption of the load 301.
- Such a control device 10 receives signals indicating the power measured by each of the first power meter 213, the second power meter 223, the third power meter 233, and the fourth power meter 303 for each sampling period. The control device 10 then writes the power indicated by these signals into the database 20. Furthermore, the control device 10 receives a signal indicating the SOC (State of Charge) of the storage battery device 231 from the third controller 230 for each sampling period, and writes the SOC into the database 20. Note that specific examples of the sampling period are 30 seconds or 1 minute, but are not limited to these times.
- the SOC of the storage battery device 231 is the charging rate of the storage battery device 231, and is hereinafter also referred to as the storage battery SOC.
- the database 20 is a recording medium for recording the power value and the battery SOC, etc.
- the recording medium may be a hard disk drive, a RAM (Random Access Memory), a ROM (Read Only Memory), or a semiconductor memory.
- the recording medium may be either volatile or non-volatile.
- the database 20 is not provided in the control device 10, but may be provided in the control device 10.
- FIG. 2 is a diagram for explaining the output of the fuel cell power generation device 221 planned by the control device 10. Specifically, the graph in FIG. 2 shows a schematic representation of the power at each time. The horizontal axis of the graph shows time, and the vertical axis shows power (kW).
- the control device 10 in this embodiment plans the output of the fuel cell power generation device 221 during the control period T2, i.e., the generated power FC of the fuel cell power generation device 221, at a planning point in time of, for example, "12:00".
- the control period T2 is also called the second period.
- the control period T2 is one hour from the planning point in time of "12:00” to the time of "13:00".
- the control device 10 reads out from the database 20 the power consumption D of the load 301 and the power generation PV of the photovoltaic power generation device 211 during the sampling period T1 after the planning time point. That is, the control device 10 reads out the past power consumption D of the load 301 and the past power generation PV of the photovoltaic power generation device 211 obtained for each of the above-mentioned sampling periods during the sampling period T1. Then, the control device 10 plans the power generation FC of the fuel cell power generation device 221 during the control period T2 so as to compensate for the difference between the power consumption D of the load 301 and the power generation PV of the photovoltaic power generation device 211 during the sampling period T1.
- the sampling period T1 is also called the first period.
- the sampling period T1 corresponding to the control period T2 is 15 minutes from time "11:44” to time "11:59". In this case, 15 differences are obtained during the sampling period T1.
- the sampling period T1 corresponding to the control period T2 may be 15 minutes from time "11:44:30" to time "11:59:30". In this case, 30 differences are obtained during the sampling period T1.
- control device 10 controls the fuel cell power generation device 221 and the second PCS 222 via the second controller 220 so that the planned power generation power FC of the fuel cell power generation device 221 is output during the control period T2.
- the control device 10 controls the storage battery device 231 and the third PCS 232 via the third controller 230. Specifically, when the sum of the generated power PV of the solar power generation device 211 and the generated power FC of the fuel cell power generation device 221 is greater than the power consumption D of the load 301, the control device 10 causes the storage battery device 231 to charge. On the other hand, when the sum is less than the power consumption D, the control device 10 causes the storage battery device 231 to discharge so as to satisfy the power consumption D.
- the power consumption D of the load 301 is the power measured by the fourth power meter 303.
- the power generation PV of the solar power generation device 211 is the power output from the solar power generation device 211 via the first PCS 212, and is measured by the first power meter 213. Such power generation PV of the solar power generation device 211 can also be said to be the output of the solar power generation system a or the solar power generation device 211.
- the power generation FC of the fuel cell power generation device 221 is the power output from the fuel cell power generation device 221 via the second PCS 222, and is measured by the second power meter 223.
- Such power generation FC of the fuel cell power generation device 221 can also be said to be the output of the fuel cell system b or the fuel cell power generation device 221.
- the first period which is the sampling period T1
- the second period is longer than the first period
- the planned output of the fuel cell system b is constant during the second period.
- the output of the fuel cell system b corresponds to the generated power FC of the fuel cell power generation device 221.
- the period immediately before the second period is the period from the start point to the end point described below.
- the end point is the most recent measurement point from the above-mentioned planning point among the measurement points of the multiple powers recorded in the database 20.
- the start point is the time of the sampling period T1, for example, 15 minutes, that precedes the end point.
- the first period which is the period immediately before the second period
- the start point of the first period may be after the second period that precedes the planning point, which is the start point of the second period.
- the first period may be any period that is before the start of the second period and is a period that is before the start of the second period or later than the start of the second period.
- the first period is not limited to 15 minutes, and may be 30 minutes or the like, as long as it is shorter than the second period. In other words, the first period may be a period that is 1/2 or less of the second period.
- the output of the fuel cell power generation device 221 in the control period T2 is planned based on the difference between the actual value of the past power consumption D of the load 301 and the actual value of the past power generation PV of the solar power generation device 211. Then, the fuel cell power generation device 221 outputs according to the plan. Therefore, in the operation method in this embodiment, the output of the fuel cell power generation device 221 is prioritized over the output of the storage battery device 231. For this reason, the operation method in this embodiment is also called the fuel cell priority application mode or the hydrogen priority application mode. This is because when the hydrogen source of the fuel cell power generation device 221 is, for example, a hydrogen storage tank or a hydrogen infrastructure, a larger output capacity can be secured compared to the storage battery device 231.
- FIG. 3 is a block diagram showing an example of the functional configuration of the control device 10. Note that in FIG. 3, the first PCS 212, the second PCS 222, and the third PCS 232 are omitted for simplicity's sake. Also, in FIG. 3, communication lines are shown with solid lines, and power lines are shown with dashed lines, for ease of understanding of the communication relationships between the components.
- the control device 10 in this embodiment includes a data acquisition unit 11, a fuel cell output calculation unit 12, an output correction unit 12a, and a storage battery output calculation unit 13.
- the data acquisition unit 11 acquires signals indicating the four powers from the fourth power meter 303, the first power meter 213, the second power meter 223, and the third power meter 233 for each sampling period. The data acquisition unit 11 then writes the numerical values of the four powers into the database 20 as actual values.
- the four powers are the power consumption D of the load 301, the power generation PV of the solar power generation device 211, the power generation FC of the fuel cell power generation device 221, and the discharge power Bd or charge power Bc of the storage battery device 231.
- the discharge power Bd and charge power Bc are collectively referred to as charge/discharge power SB.
- the data acquisition unit 11 acquires a signal indicating the storage battery SOC from the third controller 230, together with the signals indicating the above-mentioned four powers, for each sampling period. The data acquisition unit 11 then writes the storage battery SOC into the database 20 as an actual value.
- the discharge power Bd of the storage battery device 231 is the power discharged from the storage battery device 231 via the third PCS 232, and is the power measured by the third power meter 233.
- the charge power Bc of the storage battery device 231 in this embodiment is the power charged to the storage battery device 231 via the third PCS 232 from the solar power generation device 211 or the fuel cell power generation device 221, etc., and is the power measured by the third power meter 233.
- the fuel cell output calculation unit 12 reads out from the database 20 the power consumption D of the load 301 and the power generation PV of the photovoltaic power generation device 211 in the sampling period T1 immediately before the planning time. The fuel cell output calculation unit 12 then uses the power consumption D and the power generation PV to calculate the power generation FC of the fuel cell power generation device 221 in the control period T2. This allows the power generation FC to be planned. In other words, the fuel cell output calculation unit 12 in this embodiment plans the output of the fuel cell system b so as to compensate for the difference between the power demand and the output of the photovoltaic power generation system a.
- the fuel cell output calculation unit 12 plans the output of the fuel cell system b, i.e., the power generation FC, in the second period, which is the control period T2 after the first period, so as to compensate for the difference between the actual value of the power demand in the first period, which is the sampling period T1, and the actual value of the output of the photovoltaic power generation system a.
- the output of the photovoltaic power generation system a corresponds to the power generation PV of the photovoltaic power generation device 211.
- the output correction unit 12a reads out the latest storage battery SOC at the time of planning from the database 20. Then, the output correction unit 12a corrects the power generation FC planned by the fuel cell output calculation unit 12 based on the storage battery SOC. That is, the output correction unit 12a executes at least one of a first correction and a second correction.
- the first correction the output correction unit 12a corrects the plan so that the output of the fuel cell system b decreases when the storage battery SOC is equal to or greater than an upper limit value that is smaller than 100%.
- the output correction unit 12a corrects the plan so that the output of the fuel cell system b increases when the storage battery SOC is equal to or less than a lower limit value that is larger than 0%.
- the fuel cell output calculation unit 12 commands the second controller 220 to generate the generated power FC via a communication line.
- the commanded generated power FC is the corrected generated power FC, and when neither the first correction nor the second correction is performed, it is the generated power FC planned or calculated by the fuel cell output calculation unit 12.
- the second controller 220 controls the fuel cell power generation device 221 and the second PCS 222 according to the command from the fuel cell output calculation unit 12.
- the storage battery output calculation unit 13 reads out the latest three powers from the database 20 for each storage battery command period.
- the three powers are the power consumption D of the load 301, the power generation power PV of the solar power generation device 211, and the power generation power FC of the fuel cell power generation device 221.
- a specific example of the storage battery command period is one minute.
- the storage battery output calculation unit 13 calculates the power to be discharged or charged by the storage battery device 231 based on the three read powers.
- the storage battery output calculation unit 13 commands the calculated power to the third controller 230 via a communication line.
- the storage battery output calculation unit 13 outputs a discharge power command value Bd' or a charge power command value Bc' indicating the calculated power to the third controller 230.
- the third controller 230 controls the storage battery device 231 and the third PCS 232 according to instructions from the storage battery output calculation unit 13.
- FIG. 4 is a diagram showing an example of the generated power FC of the fuel cell power generation device 221 and the charge/discharge power SB of the storage battery device 231 controlled by the control device 10.
- FIG. 4(a) is a graph showing a schematic change over time in the power consumption D of the load 301 and the generated power PV of the solar power generation device 211.
- FIG. 4(b) is a graph showing a schematic change over time in the generated power FC of the fuel cell power generation device 221 when no correction is made by the output correction unit 12a.
- FIG. 4(c) is a graph showing a schematic change over time in the charge/discharge power SB of the storage battery device 231.
- FIG. 4(d) is a graph showing a schematic change over time in the storage battery SOC.
- FIG. 4(e) is a graph showing a schematic change over time in the generated power FC of the fuel cell power generation device 221 when the plan is corrected by the output correction unit 12a.
- the horizontal axis of these graphs indicates
- the power consumption D of the load 301 and the power generation PV of the photovoltaic power generation device 211 change between the time "00:00" and the time "24:00".
- the fuel cell output calculation unit 12 of the control device 10 plans the power generation FC of the fuel cell power generation device 221 in the control period T2 after the time ta1 at the time ta1, which is the planning time point.
- the fuel cell output calculation unit 12 calculates the power generation FC so that the power consumption D of the load 301 in the sampling period T1 is equal to the sum of the power generation PV of the photovoltaic power generation device 211 and the power generation FC of the fuel cell power generation device 221.
- This calculated power generation FC is planned as the power generation FC of the fuel cell power generation device 221 in the control period T2 after the time ta1. This makes it possible to suppress the reverse flow power and power purchases, i.e., surplus power and shortage power, in the control period T2.
- the fuel cell output calculation unit 12 repeatedly calculates the generated power FC using the control period T2 as one cycle. If the calculated generated power FC is not corrected, the second controller 220 controls the fuel cell power generation device 221 to generate the calculated uncorrected generated power FC, as shown in FIG. 4B.
- the fuel cell power generation device 221 has a rated output and a minimum output. For example, the rated output is 500 kW and the minimum output is 150 kW. Therefore, if the generated power FC commanded by the fuel cell output calculation unit 12 exceeds the rated output, the second controller 220 may cause the fuel cell power generation device 221 to generate power at the rated output. If the generated power FC commanded by the fuel cell output calculation unit 12 falls below the minimum output, the second controller 220 may cause the fuel cell power generation device 221 to generate power at the minimum output.
- the storage battery output calculation unit 13 calculates the charge/discharge power SB of the storage battery device 231 for each storage battery command period. At this time, the storage battery output calculation unit 13 calculates the charge/discharge power SB so that the sum of the latest power generation power PV of the photovoltaic power generation device 211, the latest power generation power FC of the fuel cell power generation device 221, and the charge/discharge power SB of the storage battery device 231 is equal to the latest power consumption D of the load 301, as shown in (g) of FIG. 4. Furthermore, the storage battery output calculation unit 13 commands the third controller 230 to discharge or charge the charge/discharge power SB.
- the storage battery output calculation unit 13 outputs the discharge power command value Bd' or the charge power command value Bc' to the third controller 230.
- the third controller 230 controls the storage battery device 231 so that the charge/discharge power SB is discharged or charged.
- the storage battery output calculation unit 13 charges the storage battery system c.
- the storage battery output calculation unit 13 discharges the storage battery system c to meet the power demand.
- the charging and discharging of the storage battery system c corresponds to the charging and discharging of the storage battery device 231.
- the generated power FC of the fuel cell power generation device 221 planned by the fuel cell output calculation unit 12 is corrected by the output correction unit 12a in accordance with the storage battery SOC. Then, the second controller 220 controls the fuel cell power generation device 221 so that the corrected generated power FC is generated.
- the output correction unit 12a corrects the power generation power FC planned by the fuel cell output calculation unit 12 so that the power generation power FC of the fuel cell power generation device 221 is reduced.
- the output correction unit 12a performs a first correction.
- the first correction is also called a negative correction.
- the upper threshold value is an upper limit value of the storage battery SOC that is smaller than 100%.
- the second controller 220 controls the fuel cell power generation device 221 so that the corrected power generation power FC is generated between times tb1 and tb2.
- the output correction unit 12a corrects the power generation power FC planned by the fuel cell output calculation unit 12 so that the power generation power FC of the fuel cell power generation device 221 increases.
- a second correction is performed.
- the second correction is also called a positive correction.
- the lower threshold is a lower limit value of the storage battery SOC that is greater than 0%.
- the control device 10 in this embodiment can be said to be a device equipped with a memory and a controller.
- the memory is a recording medium that stores the power consumption D of the load 301 and the power generation power PV of the photovoltaic power generation device 211 read by the fuel cell output calculation unit 12.
- the recording medium is a hard disk drive, RAM, ROM, or semiconductor memory.
- the recording medium may be volatile or non-volatile. That is, the memory stores the power demand and the output of the photovoltaic power generation system a.
- the controller has the functions of the fuel cell output calculation unit 12 and the output correction unit 12a. That is, the controller plans the output of the fuel cell system b to compensate for the above-mentioned difference by functioning as the fuel cell output calculation unit 12 and the output correction unit 12a.
- the controller When planning the output, the controller performs at least one of a first correction and a second correction.
- the controller In the first correction, the controller corrects the plan so that the output of the fuel cell system b decreases when the charging rate of the storage battery system c is equal to or higher than an upper limit value that is smaller than 100%.
- the controller In the second correction, the controller corrects the plan to increase the output of the fuel cell system b when the charging rate of the storage battery system c is below a lower limit value greater than 0%.
- the control device 10 in this embodiment may include a database 20 as described above.
- the storage device may be used as the database 20.
- each component of the control device 10 such as the data acquisition unit 11 and the controller, may be configured as dedicated hardware or circuitry. Furthermore, each component may be realized by executing a software program. That is, each component may be realized by a program execution unit such as a CPU (Central Processing Unit) or processor reading and executing a software program recorded on a recording medium such as a hard disk or semiconductor memory. Furthermore, the control device 10 may be configured with a single controller that performs centralized control, or may be configured with multiple controllers that cooperate with each other to perform distributed control.
- a program execution unit such as a CPU (Central Processing Unit) or processor reading and executing a software program recorded on a recording medium such as a hard disk or semiconductor memory.
- the control device 10 may be configured with a single controller that performs centralized control, or may be configured with multiple controllers that cooperate with each other to perform distributed control.
- FIG. 5 is a flowchart showing an example of the processing operation of the data acquisition unit 11.
- the data acquisition unit 11 executes the process of steps S1 to S6 for each sampling period. That is, the data acquisition unit 11 acquires a signal indicating the power consumption D of the load 301 from the fourth power meter 303 (step S1). Furthermore, the data acquisition unit 11 acquires a signal indicating the power generated PV of the photovoltaic power generation device 211 from the first power meter 213 (step S2). Furthermore, the data acquisition unit 11 acquires a signal indicating the power generated FC of the fuel cell power generation device 221 from the second power meter 223 (step S3). Furthermore, the data acquisition unit 11 acquires a signal indicating the discharge power Bd or charge power Bc of the storage battery device 231 from the third power meter 233 (step S4). Furthermore, the data acquisition unit 11 acquires a signal indicating the storage battery SOC from the third controller 230 (step S5).
- the data acquisition unit 11 writes the power consumption D of the load 301 indicated by the signal acquired in step S1, the power of the three batteries indicated by the signals acquired in steps S2 to S4, and the storage battery SOC indicated by the signal acquired in step S5 into the database 20 (step S6).
- the power of the three batteries is the generated power PV of the solar power generation device 211, the generated power FC of the fuel cell power generation device 221, and the discharge power Bd or charge power Bc of the storage battery device 231.
- FIG. 6 is a flowchart showing an example of the processing operation of the fuel cell output calculation unit 12 and the output correction unit 12a.
- the fuel cell output calculation unit 12 reads out from the database 20 the power consumption D of the load 301 and the power generation PV of the solar power generation device 211 for each of a number of measurement points in the sampling period T1 immediately prior to the planning point (step S11).
- the fuel cell output calculation unit 12 calculates, for each of the multiple measurement time points, the difference between the power consumption D of the load 301 and the power generation PV of the solar power generation device 211 at that measurement time point. In other words, the fuel cell output calculation unit 12 calculates the difference at each of the multiple measurement time points by subtracting the power generation PV at that measurement time point from the power consumption D at that measurement time point. The fuel cell output calculation unit 12 then calculates the median of the differences at the multiple measurement time points as difference value 1 (step S12). Note that in this embodiment, the median of the differences at the multiple measurement time points is an example of difference value 1, and difference value 1 may be the average value of these differences.
- the fuel cell output calculation unit 12 plans the output of the fuel cell system b in the second period to be the median of the difference between the actual value of the power demand in the first period and the actual value of the output of the solar power generation system a.
- the fuel cell output calculation unit 12 plans the output of the fuel cell system b in the second period to be the average of the difference between the actual value of the power demand in the first period and the actual value of the output of the solar power generation system a.
- the fuel cell output calculation unit 12 judges whether or not the difference value 1 is a positive value (step S13).
- the fuel cell output calculation unit 12 judges that the difference value 1 is a positive value (YES in step S13)
- the fuel cell output calculation unit 12 judges that the difference value 1 is not a positive value (NO in step S13)
- the generated power PV of the solar power generation device 211 is equal to or greater than the power consumption D of the load 301, and the power supplied to the load 301 is not insufficient, so the generated power FC of the fuel cell power generation device 221 is set to 0. In other words, the generated power FC is set so that the fuel cell power generation device 221 does not output.
- the output correction unit 12a corrects the generated power FC set in step S14 based on the storage battery SOC. That is, the output correction unit 12a corrects the output plan of the fuel cell power generation device 221. Specifically, the output correction unit 12a acquires a signal indicating the generated power FC set to the difference value 1, and further reads the latest storage battery SOC from the database 20 (step S14a). Then, the output correction unit 12a judges whether the storage battery SOC is equal to or greater than the SOC upper limit threshold (step S14b). Furthermore, the output correction unit 12a judges whether the storage battery SOC is equal to or less than the SOC lower limit threshold (step S14c). Note that the SOC upper limit threshold may be the same as or different from the SOC upper limit value shown in FIG. 8 described later. Similarly, the SOC lower limit threshold may be the same as or different from the SOC lower limit value shown in FIG. 8 described later.
- step S14b If the output correction unit 12a determines in step S14b that the storage battery SOC is equal to or greater than the SOC upper threshold (YES in step S14b), it sets the generated power FC of the fuel cell power generation system 221 to "difference value 1 - correction value" (step S14d). In other words, the first correction, which is the negative correction described above, is performed on the plan. On the other hand, if the output correction unit 12a determines that the storage battery SOC is not equal to or greater than the SOC upper threshold (NO in step S14b), it sets the generated power FC of the fuel cell power generation system 221 to difference value 1 (step S14e).
- step S14c determines in step S14c that the storage battery SOC is equal to or lower than the SOC lower threshold (YES in step S14c)
- step S14f sets the generated power FC of the fuel cell power generator 221 to "difference value 1 + correction value" (step S14f).
- the second correction which is the above-mentioned positive correction, is performed on the plan.
- step S14e sets the generated power FC of the fuel cell power generator 221 to difference value 1 (step S14e). In this way, the generated power FC of the fuel cell power generator 221 planned by the fuel cell output calculation unit 12 is corrected by steps S14a to S14f.
- the above-mentioned storage battery SOC may be the average or median of the SOC of each of the multiple storage battery units.
- the fuel cell output calculation unit 12 commands the second controller 220 to generate the power FC set in step S14d, S14e, S14f, or S15 (step S16).
- the second controller 220 upon receiving such a command, controls the fuel cell power generation device 221 and the second PCS 222.
- the power generation power FC set in step S14d, S14e, S14f, or S15 is output from the fuel cell power generation device 221 via the second PCS 222.
- the fuel cell output calculation unit 12 determines whether or not the control period T2 has elapsed since the command in step S16 was issued (step S17). If the fuel cell output calculation unit 12 determines that the control period T2 has not elapsed (NO in step S17), it repeatedly executes the process of step S17. On the other hand, if the fuel cell output calculation unit 12 determines that the control period T2 has elapsed (YES in step S17), it repeatedly executes the process of step S11. As a result, the processes of steps S11 to S17 are repeatedly executed for each control period T2.
- FIG. 7 is a flowchart showing an example of the processing operation of the storage battery output calculation unit 13.
- the storage battery output calculation unit 13 determines whether or not the difference value 2 is a positive value (step S23). If the storage battery output calculation unit 13 determines that the difference value 2 is a positive value (YES in step S23), it sets the discharge power command value Bd' of the storage battery device 231 to the difference value 2 (step S24). Then, the storage battery output calculation unit 13 commands the third controller 230 to discharge the discharge power command value Bd' (step S25).
- the storage battery output calculation unit 13 determines that the difference value 2 is not a positive value (NO in step S23), it sets the charging power command value Bc' of the storage battery device 231 to the absolute value of the difference value 2 (step S26). Then, the storage battery output calculation unit 13 commands the third controller 230 to charge the charging power command value Bc' (step S27).
- FIG. 8 is a flowchart showing an example of the processing operation of the third controller 230. Specifically, the flowchart in FIG. 8 shows an example of the processing operation performed by the third controller 230 after the command in step S25 or S27 in the flowchart in FIG. 7 is issued.
- the third controller 230 determines whether the command, i.e., the command value, is a discharge power command value Bd' or a charge power command value Bc' (step S31).
- the third controller 230 determines that the command value is a discharge power command value Bd' (Bd' in step S31)
- the SOC lower limit is a predetermined value, and is stored in the third controller 230, for example.
- the battery SOC being above the SOC lower limit means that the battery SOC is greater than the SOC lower limit. In other words, in step S32, it is determined whether the battery SOC is greater than the SOC lower limit.
- the third controller 230 determines whether the storage battery SOC is above the SOC lower limit (YES in step S32), it further determines whether the discharge power command value Bd' exceeds the rated output of the storage battery device 231 (step S33).
- the third controller 230 determines that the discharge power command value Bd' does not exceed the rated output (NO in step S33)
- the discharge power Bd of the storage battery device 231 is the power discharged from the storage battery device 231 via the third PCS 232. In other words, the storage battery device 231 discharges the difference value 2 via the third PCS 232.
- the third controller 230 determines that the discharge power command value Bd' exceeds the rated output (YES in step S33), it controls the storage battery device 231 and the third PCS 232 so that the discharge power Bd of the storage battery device 231 becomes the rated output (step S35). In other words, the storage battery device 231 discharges at the rated output via the third PCS 232. Also, if the third controller 230 determines that the storage battery SOC is not higher than the SOC lower limit value (NO in step S32), it controls the storage battery device 231 and the third PCS 232 so that the discharge power Bd of the storage battery device 231 becomes 0 (step S36). In other words, the storage battery device 231 does not discharge.
- step S31 when it is determined that the command value is the charge power command value Bc' (Bc' in step S31), the third controller 230 determines whether the storage battery SOC is below the SOC upper limit (step S37).
- the SOC upper limit is a predetermined value, and is stored in the third controller 230, for example.
- the storage battery SOC being below the SOC upper limit means that the storage battery SOC is smaller than the SOC upper limit.
- step S37 it is determined whether the storage battery SOC is smaller than the SOC upper limit.
- the third controller 230 determines whether the storage battery SOC is below the SOC upper limit (YES in step S37), it further determines whether the charging power command value Bc' exceeds the rated output of the storage battery device 231 (step S38).
- the third controller 230 determines that the charging power command value Bc' does not exceed the rated output (NO in step S38)
- the charging power Bc of the storage battery device 231 is the power charged to the storage battery device 231 via the third PCS 232. In other words, the storage battery device 231 charges only the absolute value of the difference value 2.
- the third controller 230 determines that the charging power command value Bc' exceeds the rated output (YES in step S38), it controls the storage battery device 231 and the third PCS 232 so that the charging power Bc of the storage battery device 231 becomes the rated output (step S40). In other words, the storage battery device 231 performs charging at the rated output. Also, if the third controller 230 determines that the storage battery SOC is not below the SOC upper limit value (NO in step S37), it controls the storage battery device 231 and the third PCS 232 so that the charging power Bc of the storage battery device 231 becomes 0 (step S41). In other words, the storage battery device 231 does not charge.
- the third controller 230 may execute each step included in the flowchart of FIG. 8 for each storage battery unit.
- the discharge power command value Bd' and the charge power command value Bc' used for each storage battery unit may be values obtained by dividing the overall command value of the storage battery device 231 by the number of storage battery units included in the storage battery device 231.
- the third controller 230 has a function of controlling the discharge power Bd and charge power Bc of the storage battery device 231 based on the charge power command value Bc' and the discharge power command value Bd'.
- the storage battery output calculation unit 13 of the control device 10 may also have this function.
- the storage battery output calculation unit 13 may execute each step included in the flowchart shown in FIG. 8.
- the storage battery output calculation unit 13 reads out the latest storage battery SOC from the database 20 in step S21 of FIG. 7, and uses the read storage battery SOC in steps S32 and S37 of FIG. 8.
- the third controller 230 controls the storage battery device 231 and the third PCS 232 according to the discharge power Bd and charge power Bc determined by the processing of steps S34 to S36 and S39 to S41 by the storage battery output calculation unit 13.
- FIG. 9 is a diagram showing an example of the effect obtained by the operation mode of the control device 10 in this embodiment.
- the effect obtained by the operation mode of the control device 10 is shown in comparison with an operation mode of a comparative example.
- FIG. 9(a) is a graph showing the time progression of the storage battery SOC obtained by the operation mode of the comparative example
- FIG. 9(b) is a graph showing the time progression of the storage battery SOC obtained by the operation mode of the control device 10 in this embodiment.
- the vertical axis of each graph indicates the storage battery SOC
- the horizontal axis indicates the date.
- the power generation power FC of the fuel cell power generation device 221 planned by the fuel cell output calculation unit 12 is not corrected.
- the power generation power FC set to the difference value 1 in step S14 of FIG. 6 is commanded to the second controller 220 regardless of the storage battery SOC.
- the storage battery SOC is kept below approximately 80% even after the end of August. Also, the storage battery SOC is maintained above approximately 20%.
- the solar power generation device 211 has 1800 solar power generation panels, and the maximum output of the solar power generation device 211 as a whole is 500 kW.
- the fuel cell power generation device 221 has 100 hydrogen fuel cells, and the maximum output or rated output of the fuel cell power generation device 221 as a whole is 500 kW.
- the hydrogen fuel cell is also called a fuel cell stack device.
- the control range of the fuel cell power generation device 221 ranges from the rated output to 0 kW.
- the maximum output of each hydrogen fuel cell is 5 kW.
- the control period T2 is 1 hour.
- the maximum output or rated output of the storage battery device 231 is 300 kW, and the capacity of the storage battery device 231 is 1000 kWh.
- the correction value used to correct the generated power FC of the fuel cell power generation device 221 is 50 kW.
- the output of fuel cell system b is planned to compensate for the difference between the power demand and the output of photovoltaic power generation system a.
- at least one of a first correction and a second correction is performed on the plan.
- the first correction when the charging rate of storage battery system c is equal to or greater than an upper limit value that is smaller than 100%, the plan is corrected to reduce the output of fuel cell system b.
- the second correction when the charging rate of storage battery system c is equal to or less than a lower limit value that is larger than 0%, the plan is corrected to increase the output of fuel cell system b.
- the storage battery system c can be discharged so as to make up for the power shortage caused by the reduced output of the fuel cell system b.
- the output of the fuel cell system b increases, reducing the discharge from the storage battery system c. This reduces the possibility that the storage battery system c will, for example, be fully discharged and will have to purchase power from the power grid 100.
- the possibility of the storage battery system c being fully charged or fully discharged is reduced, the possibility of the life of the storage battery being extended is increased.
- the charging rate of the storage battery system c may be the average or median of the charging rates of the multiple storage battery units.
- the power demand and the output of the photovoltaic power generation system a may be actual values or may be predicted values.
- the charging rate of the storage battery system c may be the charging rate at the time of planning the output of the storage battery system c.
- the charging rate of the storage battery system c may also be a predicted value.
- the power consumption D and the generated power PV are actual values stored in the database 20, but may also be predicted values.
- the storage battery SOC used to correct the plan may also be a predicted value rather than an actual value stored in the database 20.
- the output of fuel cell system b is planned for a second period, which is a control period T2 following the first period, so as to compensate for the difference between the actual value of the power demand during a first period, which is a sampling period T1, and the actual value of the output of photovoltaic power generation system a. Furthermore, when fuel cell system b is generating power at the planned output during the second period, if the sum of the output of photovoltaic power generation system a and the output of fuel cell system b is greater than the power demand, charging is performed by storage battery system c.
- the fuel cell system b compensates for the difference between the power demand and the photovoltaic power generation during the second period, which is the control period T2, with power as a base power source as planned, and compensates for the temporary difference that cannot be compensated for with the power of the storage battery system c, which has excellent load following.
- the above-mentioned advantages and disadvantages of the fuel cell system b and the storage battery system c are mutually compensated for, and it becomes possible to meet the power demand of the load with the power of the power system 200 more.
- this embodiment reduces the purchase of power from the power grid 100 to meet the power demand of the load.
- the deviation in the output of the fuel cell system relative to the difference between the load power demand and the output of the photovoltaic power generation system a during the second period is suppressed, compared to when the output of the fuel cell system during the second period is planned using actual values during the first period that is longer than the second period.
- the output of the fuel cell system b is planned taking into account only actual values during a period closer to the second period, compared to when the output of the fuel cell system b during the second period is planned using actual values during the first period that is longer than the second period.
- the output of the fuel cell power generation device 221 during that long period is maintained constant, deterioration of the fuel cell power generation device 221 can be further suppressed.
- step S12 of FIG. 6 the median of the differences is used, so in a situation where the actual value for the first period continues in the second period, the difference between the power demand in the second period and the output of the photovoltaic power generation device 211 can be appropriately compensated for by the output of the fuel cell power generation device 221. As a result, the charging and discharging of the storage battery device 231 can be suppressed.
- the difference between the power demand during the second period and the output of the photovoltaic power generation device 211 can be appropriately compensated for by the output of the fuel cell power generation device 221.
- the charging and discharging of the storage battery device 231 can be suppressed.
- control device 10 communicates with the database 20, the power system 200, and the fourth power meter 303 via communication lines, but the communication is not limited to wired communication and may be wireless communication.
- the wireless communication may be performed using Wi-Fi (registered trademark), Bluetooth (registered trademark), ZigBee (registered trademark), or a specific low-power radio.
- each component may be configured with dedicated hardware, or may be realized by executing a software program suitable for each component.
- Each component may be realized by a program execution unit such as a CPU or processor reading and executing a software program recorded on a recording medium such as a hard disk or semiconductor memory.
- the software that realizes the control device 10 and power system 200 of the above embodiment is a computer program that causes a computer to execute each step of the flowcharts shown in each of Figures 5 to 8.
- the at least one device is a computer system consisting of a microprocessor, ROM, RAM, a hard disk unit, a display unit, a keyboard, a mouse, etc.
- a computer program is stored in the RAM or hard disk unit.
- the at least one device achieves its functions by the microprocessor operating in accordance with the computer program.
- a computer program is composed of a combination of multiple instruction codes that indicate commands for a computer to achieve a specified function.
- a system LSI is an ultra-multifunctional LSI manufactured by integrating multiple components on a single chip, and specifically, is a computer system comprising a microprocessor, ROM, RAM, etc.
- a computer program is stored in the RAM. The system LSI achieves its functions when the microprocessor operates in accordance with the computer program.
- Some or all of the components constituting at least one of the above devices may be composed of an IC card or a standalone module that is detachable from the device.
- the IC card or module is a computer system composed of a microprocessor, ROM, RAM, etc.
- the IC card or module may include the above-mentioned ultra-multifunction LSI.
- the IC card or module achieves its functions when the microprocessor operates according to a computer program. This IC card or module may be tamper-resistant.
- the present disclosure may be the methods described above. It may also be a computer program that implements these methods using a computer, or a digital signal that comprises a computer program.
- the present disclosure may also be a computer program or digital signal recorded on a computer-readable recording medium, such as a flexible disk, a hard disk, a CD (Compact Disc)-ROM, a DVD, a DVD-ROM, a DVD-RAM, a BD (Blu-ray (registered trademark) Disc), a semiconductor memory, etc. It may also be a digital signal recorded on such a recording medium.
- a computer-readable recording medium such as a flexible disk, a hard disk, a CD (Compact Disc)-ROM, a DVD, a DVD-ROM, a DVD-RAM, a BD (Blu-ray (registered trademark) Disc), a semiconductor memory, etc. It may also be a digital signal recorded on such a recording medium.
- the present disclosure may also involve the transmission of computer programs or digital signals via telecommunications lines, wireless or wired communication lines, networks such as the Internet, data broadcasting, etc.
- the program or digital signal may also be implemented by another independent computer system by recording it on a recording medium and transferring it, or by transferring the program or digital signal via a network, etc.
- the power system operation method disclosed herein can be applied to devices or systems that control, for example, solar power generation systems, fuel cell systems, and battery storage systems.
- Control device 11 Data acquisition unit 12 Fuel cell output calculation unit 13 Storage battery output calculation unit 20 Database 100 Power system 200 Power system 210 First controller 211 Photovoltaic power generation device 212 First PCS 213 First power meter 220 Second controller 221 Fuel cell power generation device 222 Second PCS 223 Second power meter 230 Third controller 231 Storage battery device 232 Third PCS 233 Third power meter 301 Load 303 Fourth power meter a Photovoltaic power generation system b Fuel cell system c Storage battery system T1 Sampling period (first period) T2 Control period (second period)
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| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP23883885.8A EP4614755A4 (en) | 2022-11-02 | 2023-09-20 | METHOD OF OPERATING THE FEEDING SYSTEM AND CONTROL DEVICE FOR THE FEEDING SYSTEM |
| JP2024554305A JPWO2024095629A1 (https=) | 2022-11-02 | 2023-09-20 | |
| CN202380073069.4A CN120051908A (zh) | 2022-11-02 | 2023-09-20 | 电力系统的运转方法及电力系统的控制装置 |
| US19/175,741 US20250239863A1 (en) | 2022-11-02 | 2025-04-10 | Method for operating power system and control apparatus for power system |
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| JP2022176013 | 2022-11-02 | ||
| JP2022-176013 | 2022-11-02 |
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| US19/175,741 Continuation US20250239863A1 (en) | 2022-11-02 | 2025-04-10 | Method for operating power system and control apparatus for power system |
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| WO2024095629A1 true WO2024095629A1 (ja) | 2024-05-10 |
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| Application Number | Title | Priority Date | Filing Date |
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| PCT/JP2023/034121 Ceased WO2024095629A1 (ja) | 2022-11-02 | 2023-09-20 | 電力システムの運転方法、および電力システムの制御装置 |
Country Status (5)
| Country | Link |
|---|---|
| US (1) | US20250239863A1 (https=) |
| EP (1) | EP4614755A4 (https=) |
| JP (1) | JPWO2024095629A1 (https=) |
| CN (1) | CN120051908A (https=) |
| WO (1) | WO2024095629A1 (https=) |
Citations (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP2015164380A (ja) * | 2014-02-28 | 2015-09-10 | 日本電信電話株式会社 | 独立型分散電源システムの運転方法 |
| JP2015220936A (ja) * | 2014-05-20 | 2015-12-07 | 株式会社Ihi | 電力管理システム |
| WO2017013751A1 (ja) | 2015-07-21 | 2017-01-26 | 株式会社 東芝 | 電力供給システム、制御装置、および電力供給方法 |
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| Publication number | Priority date | Publication date | Assignee | Title |
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| JP7134043B2 (ja) * | 2018-09-26 | 2022-09-09 | 清水建設株式会社 | 電源システムおよび電源システムの制御方法 |
| CN111953016B (zh) * | 2020-07-27 | 2024-02-09 | 江苏大学 | 一种移动式多能源微电网控制方法及系统 |
| JP7475457B2 (ja) * | 2020-08-05 | 2024-04-26 | 三菱電機株式会社 | 分散電源管理装置 |
| JP7530319B2 (ja) * | 2021-03-17 | 2024-08-07 | 株式会社東芝 | 情報処理装置、情報処理方法、コンピュータプログラム及び情報処理システム |
-
2023
- 2023-09-20 EP EP23883885.8A patent/EP4614755A4/en active Pending
- 2023-09-20 JP JP2024554305A patent/JPWO2024095629A1/ja active Pending
- 2023-09-20 CN CN202380073069.4A patent/CN120051908A/zh active Pending
- 2023-09-20 WO PCT/JP2023/034121 patent/WO2024095629A1/ja not_active Ceased
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2025
- 2025-04-10 US US19/175,741 patent/US20250239863A1/en active Pending
Patent Citations (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP2015164380A (ja) * | 2014-02-28 | 2015-09-10 | 日本電信電話株式会社 | 独立型分散電源システムの運転方法 |
| JP2015220936A (ja) * | 2014-05-20 | 2015-12-07 | 株式会社Ihi | 電力管理システム |
| WO2017013751A1 (ja) | 2015-07-21 | 2017-01-26 | 株式会社 東芝 | 電力供給システム、制御装置、および電力供給方法 |
Non-Patent Citations (1)
| Title |
|---|
| See also references of EP4614755A4 |
Also Published As
| Publication number | Publication date |
|---|---|
| EP4614755A4 (en) | 2026-01-21 |
| EP4614755A1 (en) | 2025-09-10 |
| US20250239863A1 (en) | 2025-07-24 |
| JPWO2024095629A1 (https=) | 2024-05-10 |
| CN120051908A (zh) | 2025-05-27 |
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