Fuel cell system

The fuel cell system addresses the challenge of starting up in low temperatures without external power by using a power storage device to heat the hydrogen storage container, ensuring hydrogen supply to the fuel cell and enabling operation.

JP2025153107APending Publication Date: 2025-10-10BROTHER KOGYO KK

Patent Information

Application Number
JP2024055401
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-03-29
Publication Date
2025-10-10

AI Technical Summary

Technical Problem

Existing AC uninterruptible power supply systems using fuel cells struggle to start up when the ambient temperature is low and there is no external power source, as the heater for the hydrogen storage alloy tank cannot operate without commercial AC power.

Method used

A fuel cell system that includes a hydrogen storage container, a heater, a power storage device, and a control unit, where the control unit supplies electricity from the power storage device to the heater to heat the hydrogen storage container, enabling hydrogen supply to the fuel cell even in the absence of an external power source.

Benefits of technology

Enables the fuel cell to start up and supply power to a load even in low environmental temperatures without an external power source by heating the hydrogen storage container using the power storage device.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 2025153107000001_ABST
    Figure 2025153107000001_ABST
Patent Text Reader

Abstract

To provide a fuel cell system configured to be capable of, in a case where there is no external power supply, starting a fuel cell even if the ambient temperature is low.SOLUTION: A fuel cell system 1 includes: a fuel cell 8 which generates power by reacting hydrogen and oxygen and can supply power to a load 30; a hydrogen storage alloy tank 6 which stores hydrogen and can supply hydrogen to the fuel cell 8; a heater 7 which heats the hydrogen storage alloy tank 6; a storage battery 5 which can supply power to the heater 7; and a control circuit 4. The control circuit 4 executes a first control process for supplying power from the storage battery 5 to the heater 7 if the hydrogen storage alloy tank 6 does not satisfy a prescribed condition of being capable of supplying hydrogen to the fuel cell 8. Accordingly, even in a case where there is no external power supply, the hydrogen storage alloy tank 6 is warmed by the heater 7 to supply hydrogen to the fuel cell 8 and the fuel cell 8 can be started.SELECTED DRAWING: Figure 1
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] The present invention relates to a fuel cell system. [Background technology]

[0002] Patent Document 1 discloses an AC uninterruptible power supply system using a fuel cell. In this AC uninterruptible power supply system, a battery supplies power to a load for a specified time after a commercial AC power outage occurs, and if power is not restored after that, the fuel cell is started up to supply power to the load. Hydrogen supplied to the fuel cell is stored in a hydrogen storage alloy. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2015-177576 Summary of the Invention [Problem to be solved by the invention]

[0004] In the AC uninterruptible power supply system disclosed in Patent Document 1, a heater that warms a hydrogen storage alloy tank is supplied with power from a commercial AC power source. In order to start the fuel cell, the temperature of the hydrogen storage alloy tank must be maintained above a specified value, and when the ambient temperature is low, such as in winter, the heater must be operated to maintain the temperature of the hydrogen storage alloy tank above the specified value. However, if there is no external power source, the heater cannot be operated, and the fuel cell cannot be started, which is a problem.

[0005] An object of the present invention is to provide a fuel cell system that can start up a fuel cell even when the environmental temperature is low, in the absence of an external power source. [Means for solving the problem]

[0006] A fuel cell system according to one aspect of the present invention includes a fuel cell capable of generating electricity by reacting hydrogen and oxygen and supplying the electricity to an electrical load, a hydrogen storage container capable of storing the hydrogen and supplying the hydrogen to the fuel cell, a heater for heating the hydrogen storage container, a power storage device capable of supplying the electricity to the heater, and a control unit, wherein the control unit executes a first control process to supply the electricity from the power storage device to the heater when the hydrogen storage container does not satisfy a predetermined condition for supplying the hydrogen to the fuel cell. Because the fuel cell system can supply electricity to the heater that heats the hydrogen storage container using the power storage device, even in the absence of an external power source, the hydrogen storage container can be heated using the heater, and hydrogen can be supplied to the fuel cell, thereby enabling the fuel cell to start up. [Brief explanation of the drawings]

[0007] [Figure 1] 1 is a block diagram showing an outline of the configuration of a fuel cell system 1 of a first embodiment. [Figure 2] FIG. 2 is a block diagram of a control circuit 4. [Figure 3] 10 is a flowchart showing a power supply process. [Figure 4] 1 is a graph showing the state transition of the remaining charge of the storage battery 5 and the hydrogen pressure in the hydrogen absorbing alloy tank 6. [Figure 5] 10 is a graph showing the state transition of the power consumption of the load 30, the output of the fuel cell 8, and the output and remaining capacity of the storage battery 5. [Figure 6] FIG. 2 is a block diagram of a fuel cell system 1 according to a second embodiment. [Figure 7] FIG. 10 is a block diagram of a fuel cell system 1 according to a third embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0008] A first embodiment of the present invention will be described. The drawings are used to explain technical features that can be adopted by the present invention. In other words, the configurations, controls, etc. shown in the drawings are merely illustrative examples and are not intended to limit the present invention.

[0009] <Configuration of fuel cell system 1> The configuration of a fuel cell system 1 of this embodiment will be described with reference to Figures 1 and 2. The fuel cell system 1 can start up the fuel cell 8 and supply power to a load 30 even when the ambient temperature is low and there is no external power source (system power source 20). Figure 1 shows the main configuration of the fuel cell system 1, and switches, circuit switching devices, interface circuits, drive circuits, etc. are well known and are therefore omitted. An example of the load 30 is any electronic or electrical device that operates by receiving a power supply.

[0010] The fuel cell system 1 includes a hydrogen storage alloy tank 6 and a fuel cell 8 that generates electricity using hydrogen supplied from the hydrogen storage alloy tank 6. The hydrogen storage alloy tank 6 contains a hydrogen storage alloy that releases hydrogen through an endothermic reaction and stores the hydrogen. Therefore, the hydrogen storage alloy can achieve a much higher hydrogen filling density than gas. The supply temperature at which hydrogen can be released from the hydrogen storage alloy and supplied to the fuel cell 8 is designated X1. The hydrogen storage alloy tank 6 is equipped with a pressure sensor 2 that detects the pressure of hydrogen in the hydrogen storage alloy tank 6 and a heater 7 that heats the hydrogen storage alloy tank 6. The fuel cell system 1 also includes a control circuit 4, a temperature sensor 3, the pressure sensor 2, a power detector 12, a storage battery 5, an AC / DC converter 10, a DC / AC inverter 11, a DC / DC converter 9, a display 26, a speaker 27, and an operation panel 28. The operation panel 28 is equipped with a load power supply switch 29 and input buttons (not shown).

[0011] The control circuit 4 controls the fuel cell system 1. Specifically, the control circuit 4 controls the fuel cell 8, the storage battery 5, the heater 7, the display 26, and the speaker 27. As shown in FIG. 2 , the control circuit 4 includes a CPU 41, a RAM 42, a ROM 43, a non-volatile memory 44, an input / output interface 45, and auxiliary circuits (not shown). The CPU 41 executes programs for the power supply process (described later). The RAM 42 temporarily stores data required for executing various processes. The ROM 43 stores various programs. The non-volatile memory 44 stores various setting values ​​required for executing the programs. The input / output interface 45 mediates the input and output of signals between the CPU 41 and the temperature sensor 3, the pressure sensor 2, the heater 7, the power detector 12, the storage battery 5, and the fuel cell 8. The control circuit 4 may be configured by a dedicated circuit board for executing the power supply process (described later). The control circuit 4 may also be configured by a dedicated ASIC.

[0012] The operation panel 28 receives input from the user and outputs it to the CPU 41 of the control circuit 4. When the user turns on the load power supply switch 29, a signal is output to the CPU 41 of the control circuit 4. Furthermore, when the user operates the operation panel 28 to input the rated capacity of power consumption of the load 30, the operation panel 28 outputs the input value of the rated capacity of power consumption of the load 30 to the CPU 41 of the control circuit 4. The CPU 41 stores the received value of the rated capacity of power consumption of the load 30 in the non-volatile memory 44.

[0013] The AC-CDC converter 10 converts the AC voltage of the system power supply 20 into DC voltage and outputs it to the power supply line 22. An example of the system power supply 20 is a commercial power supply, e.g., 100 V AC. An example of the output voltage of the AC-CDC converter 10 is 48 V DC. The AC-CDC converter 10 can supply power to the storage battery 5 to charge it. Charging the storage battery 5 from the system power supply 20 via the ACDC converter 10 is performed when the remaining charge of the storage battery 5 becomes so low that it is no longer possible to start the fuel cell 8. In this case, the storage battery 5 can be charged to start the fuel cell 8. Therefore, even if the remaining charge of the storage battery 5 becomes so low that the fuel cell 8 cannot start generating electricity, the storage battery 5 can be charged via the system power supply 20, which is an external power source. If a function for charging the storage battery 5 from the system power supply 20 is not provided, the ACDC converter 10 may not be provided.

[0014] The pressure sensor 2 is provided in the hydrogen storage alloy tank 6, detects the pressure of hydrogen in the hydrogen storage alloy tank 6, and outputs the detected value to the control circuit 4. The heater 7 heats the hydrogen storage alloy tank 6 under the control of the control circuit 4, heating the hydrogen storage alloy to a constant temperature. The power detector 12 detects the power supplied to the load 30 from the power supply line 21, and outputs the detected result to the control circuit 4. The control circuit 4 can obtain the power consumption of the load 30 from the output of the power detector 12. The temperature sensor 3 is provided in the housing of the fuel cell system 1, measures the ambient temperature, and outputs the measured result to the control circuit 4. The temperature sensor 3 may be provided outside the housing of the fuel cell system 1.

[0015] The storage battery 5 is charged with power supplied from the fuel cell 8 via power feeders 25 and 22. An example of the output voltage of the storage battery 5 is 48 V DC. The storage battery 5 is controlled by the control circuit 4. The storage battery 5 supplies power to the DC / AC inverter 11 via power feeders 24 and 22. The DC / AC inverter 11 converts the DC voltage to an AC voltage and supplies the power to the load 30. An example of the output voltage of the DC / AC inverter 11 is 100 V AC. The storage battery 5 also supplies power to the heater 7 via power feeder 24, power feeder 22, and power feeder 25. The storage battery 5 also supplies power to the control circuit 4 via power feeder 24, power feeder 22, and power feeder 23. Power feeder 22 is connected to power feeder 23 to power feeder 25.

[0016] The fuel cell 8 reacts oxygen with hydrogen supplied from the hydrogen absorbing alloy tank 6 to generate DC voltage and supplies it to the DCDC converter 9. The DCDC converter 9 converts the DC voltage supplied from the fuel cell 8 to, for example, 48 V. The DCAC inverter 11 converts the DC voltage supplied from the fuel cell 8 via the DCDC converter 9 into AC voltage. For example, the DCAC inverter 11 converts 48 V DC to 100 V AC.

[0017] The display 26 displays various displays required during operation of the fuel cell system 1 and warning displays (described later) under the control of the CPU 41. The speaker 27 emits warning sounds (described later) under the control of the CPU 41.

[0018] When the fuel cell system 1 of the first embodiment having the above configuration is not in use, the hydrogen storage alloy tank 6 containing the hydrogen storage alloy is not heated by the heater 7. When the system is used in a place without an external power source, the system is characterized in that the hydrogen storage alloy tank 6 is heated by supplying power from the storage battery 5 to the heater 7.

[0019] <Power supply processing> The power supply process of the fuel cell system 1 of the first embodiment will be described with reference to FIG. 3. When the load power supply switch 29 of the operation panel 28 of the fuel cell system 1 is turned ON (S1: YES), the CPU 41 of the control circuit 4 is started up and reads and executes a power supply process program from the ROM 43. The CPU 41 supplies power from the storage battery 5 to the load 30 (S2). Therefore, the load 30 can operate even in places without an external power source. Furthermore, power can be supplied to the load 30 immediately upon startup of the fuel cell system 1. Next, the CPU 41 determines whether the load power supply switch 29 has been turned OFF (S3). If the CPU 41 determines that the load power supply switch 29 has been turned OFF (S3: YES), the supply of power from the storage battery 5 to the load 30 is stopped (S16).

[0020] If the CPU 41 does not determine that the load power supply switch 29 has been turned OFF (S3: NO), it determines whether the fuel cell 8 is likely to be able to complete preparations for power generation (S4). As an example, the CPU 41 determines whether the fuel cell 8 is likely to be able to complete preparations for power generation by estimating from the current power consumption of the load 30 detected by the power detector 12, the remaining charge of the storage battery 5, and the value of the hydrogen pressure in the hydrogen storage alloy tank 6 detected by the pressure sensor 2 (S4). The remaining charge of the storage battery 5 is estimated by the CPU 41 from the voltage input from the storage battery 5. For the fuel cell 8 to complete preparations for power generation, the remaining charge of the storage battery 5 must be sufficient to allow the heater 7 to heat the hydrogen storage alloy tank 6 with the power from the storage battery 5 until the fuel cell 8 meets the hydrogen supply conditions.

[0021] If the CPU 41 does not determine that the fuel cell 8 is likely to be able to complete preparation for power generation (S4: NO), it stops the heater 7 (S5). The CPU 41 proceeds to S2. If the CPU 41 determines that the fuel cell 8 is likely to be able to complete preparation for power generation (S4: YES), it determines whether the hydrogen storage alloy tank 6 satisfies a predetermined condition for supplying hydrogen (S6). An example of the predetermined condition may be whether the hydrogen pressure in the hydrogen storage alloy tank 6 is P1 or higher. Another example of the predetermined condition is whether the temperature of the hydrogen storage alloy tank 6 is X1 or higher. If the CPU 41 does not determine that the hydrogen pressure in the hydrogen storage alloy tank 6 is A1 or higher (S6: NO), it uses the heater 7 with power from the storage battery 5 to heat the hydrogen storage alloy tank 6 (S7). Furthermore, if the CPU 41 does not determine that the temperature of the hydrogen absorbing alloy tank 6 is equal to or higher than X1 (S6: NO), the CPU 41 may use the heater 7 with power from the storage battery 5 to heat the hydrogen absorbing alloy tank 6 (S7). Therefore, if power cannot be supplied to the heater 7 until a predetermined condition for supplying hydrogen to the fuel cell 8 from the storage battery 5 is met, power can be used effectively by prioritizing power supply to the load 30. Furthermore, since power can be supplied from the storage battery 5 to the heater 7 that heats the hydrogen absorbing alloy tank 6, even in the absence of an external power source (system power source 20), the heater 7 can heat the hydrogen absorbing alloy tank 6 and supply hydrogen to the fuel cell 8, thereby enabling the fuel cell 8 to start up. After processing S7, the CPU 41 advances the process to S2.

[0022] If the CPU 41 determines that the hydrogen absorbing alloy tank 6 satisfies the predetermined conditions for supplying hydrogen (S6: YES), it stops the heater 7, starts power generation by the fuel cell 8, and supplies power from the fuel cell 8 to the load 30 (S8). The CPU 41 stops the supply of power from the storage battery 5 to the load 30. Next, the CPU 41 determines whether the load power supply switch 29 has been turned OFF (S9). If the CPU 41 determines that the load power supply switch 29 has been turned OFF (S9: YES), it stops power generation by the fuel cell 8 (S15) and stops the supply of power to the load 30 (S16). If the CPU 41 does not determine that the load power supply switch 29 has been turned OFF (S9: NO), it determines whether the power consumption of the load 30 exceeds the rated output of the fuel cell 8 (S10). The rated output of the fuel cell 8 is pre-stored in the non-volatile memory 44. In the determination of S10, the CPU 41 reads the rated output of the fuel cell 8 from the non-volatile memory 44 and compares the power consumption of the load 30 detected by the power detector 12 with the rated output. If the CPU 41 determines that the power consumption of the load 30 exceeds the rated output of the fuel cell 8 (S10: YES), the fuel cell 8 and the storage battery 5 supply power to the load 30 (S12). Therefore, power is supplied to the load 30 from the fuel cell 8 and the storage battery 5, so that power higher than the rated output of the fuel cell 8 can be supplied to the load 30. If the CPU 41 does not determine that the power consumption of the load 30 exceeds the rated output of the fuel cell 8 (S10: NO), the CPU 41 charges the storage battery 5 while supplying power from the fuel cell 8 to the load 30 (S11). Therefore, by charging the storage battery 5 while the fuel cell 8 is generating power, an external power source (system power source 20) is not required to charge the storage battery 5.

[0023] Next, the CPU 41 determines whether the power consumption of the load 30 exceeds the warning value (S13). If the power consumption of the load 30 detected by the power detector 12 exceeds the sum of the rated capacity of the fuel cell 8 and the remaining capacity of the storage battery 5, the CPU 41 determines that the power consumption of the load 30 exceeds the warning value. If the CPU 41 does not determine that the power consumption of the load 30 exceeds the warning value (S13: NO), the CPU 41 proceeds to S9. If the CPU 41 determines that the power consumption of the load 30 exceeds the warning value (S13: YES), the CPU 41 executes control to issue an overload warning (S14). The warning may be displayed on the display 26, or may be a warning sound or audio warning, or both, from the speaker 27. An example of the warning displayed on the display 26 may be the display of an error number. If the error number is displayed, the error number indicates that an overload has occurred. Furthermore, text such as "Stopped due to overload" may be displayed on the display 26.

[0024] Next, the CPU 41 stops power generation by the fuel cell 8 (S15) and stops the supply of power from the fuel cell 8 and the storage battery 5 to the load 30 (S16). If the CPU 41 determines in the determination process of S13 that the power consumption of the load 30 exceeds the sum of the rated capacity of the fuel cell 8 and the remaining power of the storage battery 5 (S13: YES), it stops the power supply from the fuel cell 8 and the storage battery 5 to the load 30, thereby preventing the fuel cell system 1 from breaking down due to an overload. Furthermore, in the event of an overload, the CPU 41 executes control to issue a warning before stopping the supply of power to the load 30 (S14), thereby notifying the user that the supply of power to the load 30 has been stopped.

[0025] Next, with reference to the graphs shown in FIG. 4, the transition of the remaining battery charge of the storage battery 5 and the hydrogen pressure in the hydrogen storage alloy tank 6 in the first embodiment will be described. The graph in FIG. 4(1) shows the remaining battery charge of the storage battery 5 on the vertical axis and the time on the horizontal axis. The graph in FIG. 4(2) shows the hydrogen pressure in the hydrogen storage alloy tank 6 on the vertical axis and the time on the horizontal axis. The storage battery 5 is fully charged until the load power supply switch 29 is turned ON. As an example, at time T1, the temperature of the hydrogen storage alloy tank 6 is lower than temperature X1, and the hydrogen storage alloy tank 6 does not satisfy the conditions for supplying hydrogen. Therefore, in order for the fuel cell 8 to generate power, it is necessary to prepare for power generation by heating the hydrogen storage alloy tank 6 to temperature X1 with the heater 7. When the load power supply switch 29 is turned ON at time T1, power is supplied from the storage battery 5 to the heater 7 to heat the hydrogen storage alloy tank 6. Therefore, the remaining battery charge of the storage battery 5 decreases, and the hydrogen pressure in the hydrogen storage alloy tank 6 increases. The period from time T1 to time T2 is a period during which the hydrogen storage alloy tank 6 is heated until the hydrogen pressure in the hydrogen storage alloy tank 6 reaches a pressure sufficient to supply hydrogen to the fuel cell 8, and during which the fuel cell 8 is preparing to generate power. When the hydrogen pressure in the hydrogen storage alloy tank 6 reaches a pressure (A1) sufficient to supply hydrogen to the fuel cell 8 at time T2, the supply of power from the storage battery 5 to the heater 7 is stopped. After time T2, power is supplied from the fuel cell 8 to the storage battery 5, so that the remaining battery charge of the storage battery 5 increases from time T2, and at time T3, the storage battery 5 is fully charged. Next, at time T4, when the user turns off the load power supply switch 29 on the operation panel 28, the fuel cell 8 stops generating power and is turned off. After time T4, the storage battery 5 remains fully charged. As the temperature of the hydrogen storage alloy tank 6 drops, the hydrogen pressure in the hydrogen storage alloy tank 6 decreases.

[0026] Next, with reference to the graphs shown in Fig. 5, the state transitions of the power consumption of the load 30, the output of the fuel cell 8, and the output and remaining capacity of the storage battery 5 in the first embodiment will be described. The graph in Fig. 5(1) is a graph where the vertical axis indicates the power consumption of the load 30 and the horizontal axis indicates time. The graph in Fig. 5(2) is a graph where the vertical axis indicates the output of the fuel cell 8 and the horizontal axis indicates time. The graph in Fig. 5(3) is a graph where the vertical axis indicates the discharge amount and charge amount of the storage battery 5, with the upward direction indicating the discharge amount of the storage battery 5 and the downward direction indicating the charge amount of the storage battery 5, and the horizontal axis indicating time. The graph in Fig. 5(4) is a graph where the vertical axis indicates the remaining capacity of the storage battery 5 and the horizontal axis indicates time.

[0027] An example of the power consumption of the load 30 changes as shown in FIG. 5(1). That is, the power consumption of the load 30 increases at time P1 and further increases at time P2. The power consumption of the load 30 reaches the same value as the rated output of the fuel cell 8 at time P3 and remains above the rated output of the fuel cell 8 between times P4 and P5. The power consumption of the load 30 reaches the same value as the rated output of the fuel cell 8 at time P5, falls below the rated output of the fuel cell 8 at time P6, and further decreases at time P8. At time P9, the load 30 stops, and the power consumption becomes zero. In contrast, as shown in FIG. 5(2), the fuel cell 8 starts generating power at time P1, reaches the rated output of the fuel cell 8 at time P3, and at time P6, the output of the fuel cell 8 decreases in accordance with the decrease in the power consumption of the load 30. Next, the output of the fuel cell 8 decreases in accordance with the decrease in the power consumption of the load 30 at time P8. At time P9, the power generation of the fuel cell 8 stops in accordance with the stop of the load 30. As shown in Figures 5(3) and (4), charging of the storage battery 5 begins at time P1 using the output from the fuel cell 8, and the remaining battery capacity increases. After time P2, charging stops at time P3. Discharging begins at time P4, and the portion of the power consumed by the load 30 exceeds the rated output of the fuel cell 8. Therefore, the output of the shaded portion shown in Figure 5(1) can be supplied by the output of the storage battery 5 (S12 in Figure 3). At time P5, the power consumed by the load 30 becomes the same as the rated output of the fuel cell 8, so the storage battery 5 stops discharging. At time P6, the power consumed by the load 30 becomes lower than the rated output of the fuel cell 8, so the storage battery 5 is charged by the output of the fuel cell 8. At time P7, the storage battery 5 is fully charged, and charging stops.

[0028] Second Embodiment Next, a second embodiment will be described with reference to Fig. 6. In the second embodiment, the configuration of the fuel cell system 1 differs from that of the first embodiment in that it includes a solar panel 40 and a DC-DC converter 13. Since the other configurations are the same as those of the first embodiment, a description of the other configurations will be omitted. The output of the solar panel 40 is input to the DC-DC converter 13, converted to 48V DC, and fed to the power feeder 25. Therefore, charging power for the storage battery 5 and power for the heater 7 can be supplied from sunlight. Therefore, the storage battery 5 can be charged even when the system power supply 20, which is an external power source, is not available.

[0029] Third Embodiment Next, a third embodiment will be described with reference to Fig. 7. In the third embodiment, the configuration of the fuel cell system 1 differs from that of the first embodiment in that it includes a small wind power generator 50 and a DC-DC converter 13. Since the other configurations are the same as those of the first embodiment, a description of the other configurations will be omitted. The output of the small wind power generator 50 is converted to 48V DC by the DC-DC converter 13 and fed to the power feeder 25. Therefore, charging power for the storage battery 5 and power for the heater 7 can be fed from the small wind power generator 50. Therefore, the storage battery 5 can be charged even when the system power supply 20, which is an external power source, is not available.

[0030] In the above embodiment, the hydrogen storage alloy tank 6 is an example of a "hydrogen storage container" of the present invention. The storage battery 5 is an example of a "power storage device" of the present invention. The control circuit 4 or the CPU 41 is an example of a "controller" of the present invention. The system power supply 20 is an example of an "external power supply" of the present invention. The load 30 is an example of an "electrical load" of the present invention. The solar panel 40 is an example of a "photovoltaic power generation device" of the present invention. The small wind power generator 50 is an example of a "wind power generation device" of the present invention. The processing of S6: NO and S7 is an example of a "first control process" of the present invention. The processing of S2 is an example of a "second control process" of the present invention. The processing of S11 is an example of a "third control process" of the present invention. The processing of S2, S4: NO, and S5 is an example of a "fourth control process" of the present invention. The processing of S12 is an example of a "fifth control process" of the present invention. The processing of S13: YES and S15 is an example of a "sixth control process" of the present invention.

[0031] The present invention is not limited to the above embodiment and various modifications are possible. A temperature sensor may be provided on the surface of or inside the hydrogen storage alloy tank 6 to detect the temperature of the hydrogen storage alloy tank 6 or the hydrogen storage alloy contained therein and output the detected temperature to the control circuit 4. Since the temperature of the hydrogen storage alloy is proportional to the hydrogen pressure in the hydrogen storage alloy tank 6, the CPU 41 may determine the temperature of the hydrogen storage alloy tank 6 based on the hydrogen pressure in the hydrogen storage alloy tank 6 detected by the pressure sensor 2. In this case, the temperature of the hydrogen storage alloy tank 6 can be determined from the hydrogen pressure in the hydrogen storage alloy tank 6 without using a temperature sensor. Note that the CPU 41 may determine whether the predetermined condition is met in the determination of S6 based on whether the temperature of the hydrogen storage alloy tank 6 is below a supply temperature (for example, X1) at which hydrogen can be supplied to the fuel cell 8 or whether the hydrogen pressure in the hydrogen storage alloy tank 6 is below a supply pressure (A1) at which hydrogen can be supplied to the fuel cell 8. In this case, whether the hydrogen storage alloy tank 6 can supply hydrogen to the fuel cell 8 can be determined based on the temperature of the hydrogen storage alloy tank 6 or the pressure of hydrogen inside the hydrogen storage alloy tank 6. The value of the hydrogen pressure inside the hydrogen storage alloy tank 6 used in the determination of S6 may be determined based on the characteristics of the fuel cell 8. An all-solid-state battery or the like may be used for the storage battery 5. The device for issuing an overload warning is not limited to the display 26 and speaker 27, but may also be a light-emitting element such as an LED lamp or a device that emits a warning sound such as a buzzer. [Explanation of symbols]

[0032] 1: Fuel cell system 2: Pressure sensor 3: Temperature sensor 4: Control circuit 5: Storage battery 6: Hydrogen storage alloy tank 7: Heater 8: Fuel cell 12: Power detector 13: DC / DC converter 20: Grid power supply 26: Display 27: Speaker 28: Operation panel 30: Load 40: Solar panels 41:CPU 50: Small wind turbine

Claims

1. a fuel cell that generates electricity by reacting hydrogen and oxygen and is capable of supplying the electricity to an electrical load; a hydrogen storage container that stores the hydrogen and is capable of supplying the hydrogen to the fuel cell; a heater for heating the hydrogen storage container; an electricity storage device capable of supplying the electric power to the heater; Control unit and Equipped with A fuel cell system characterized in that the control unit executes a first control process to supply the power from the storage device to the heater when the hydrogen storage container does not satisfy a predetermined condition for supplying the hydrogen to the fuel cell.

2. 2. The fuel cell system according to claim 1, wherein the control unit executes a second control process to supply the electric power from the power storage device to the electric load while the electric power is being supplied from the power storage device to the heater.

3. 3. The fuel cell system according to claim 1, wherein the control unit executes a third control process to supply the electric power from the fuel cell to the electric load and the power storage device when the predetermined condition is satisfied.

4. 3. The fuel cell system according to claim 1, wherein, when the predetermined condition is not satisfied at the time of startup of the fuel cell system and when the remaining charge of the power storage device is less than the remaining charge necessary to supply the power to the heater until the predetermined condition is satisfied, the control unit executes a fourth control process to supply the power from the power storage device to the electrical load without supplying the power from the power storage device to the heater.

5. 3. The fuel cell system according to claim 1, wherein the control unit executes a fifth control process in which, when the output from the fuel cell to the electrical load exceeds a rated capacity of the fuel cell during power generation by the fuel cell, the control unit supplies the power from the fuel cell to the electrical load and supplies the power from the storage device to the electrical load.

6. 3. The fuel cell system according to claim 1, wherein the control unit executes a sixth control process to stop the supply of power from the power storage device and the fuel cell to the electrical load when the power consumption of the electrical load exceeds the sum of the rated capacity of the fuel cell and the capacity of the power storage device.

7. 7. The fuel cell system according to claim 6, wherein the control unit executes control to issue a warning in the sixth control process.

8. 3. The fuel cell system according to claim 1, wherein the power storage device can be supplied with the electric power from an external power source.

9. 3. The fuel cell system according to claim 1, wherein the hydrogen storage container contains a hydrogen absorbing alloy that releases the hydrogen through an endothermic reaction.

10. 3. The fuel cell system according to claim 1, wherein the control unit determines whether the predetermined condition is satisfied based on whether the temperature of the hydrogen storage container is lower than a supply temperature at which hydrogen can be supplied to the fuel cell, or whether the pressure of the hydrogen in the hydrogen storage container is lower than a supply pressure at which hydrogen can be supplied to the fuel cell.

11. 11. The fuel cell system according to claim 10, wherein the control unit determines the temperature of the hydrogen storage container based on the pressure of the hydrogen in the hydrogen storage container.

12. 3. The fuel cell system according to claim 1, further comprising a solar power generation device capable of supplying power to at least one of the heater and the power storage device.

13. 3. The fuel cell system according to claim 1, further comprising a wind power generator capable of supplying power to at least one of the heater and the power storage device.

Citation Information

Patent Citations

  • Ac uninterruptible power supply system

    JP2015177576A

Cited By

  • Fuel cell power pack warm-up device and method using solar heat recovery

    KR102953668B1