Fuel cell system
The fuel cell system addresses the issue of temperature-induced water imbalance by using sensors and a control unit to adjust the valve opening, ensuring optimal humidity levels and maintaining power generation efficiency and fuel cell longevity.
Patent Information
- Application Number
- JP2023199962
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2023-11-27
- Publication Date
- 2025-06-06
AI Technical Summary
The existing fuel cell systems face challenges in maintaining optimal operating conditions within the fuel cell, as temperature fluctuations can lead to water accumulation or dryness, resulting in decreased power generation efficiency and potential fuel cell deterioration.
A fuel cell system equipped with a temperature sensor, current sensor, voltage sensor, and a control unit that adjusts the opening of a valve in the off-gas exhaust passage based on temperature and output voltage differences to maintain appropriate humidity levels within the fuel cell.
This solution effectively adjusts the internal state of the fuel cell according to temperature, preventing water accumulation or dryness, thus maintaining power generation efficiency and prolonging fuel cell lifespan.
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Figure 2025086126000001_ABST
Abstract
Description
[Technical field]
[0001] The present disclosure relates to a fuel cell system having a fuel cell that generates electricity when supplied with a fuel gas and an oxidant gas. [Background technology]
[0002] Patent document 1 discloses a fuel cell system having an adjustment valve that adjusts the flow rate of air (oxidizing gas) flowing from the supply flow path to the exhaust flow path to increase the flow rate of air supplied to the fuel cell when it is determined that the inside of the fuel cell is dry. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] JP 2010-114039 A Summary of the Invention [Problem to be solved by the invention]
[0004] The fuel cell system disclosed in Patent Document 1 uses an adjustment valve to reduce the amount of air supplied from the supply flow path to the fuel cell when it is determined that the inside of the fuel cell is dry, regardless of the temperature of the fuel cell. However, when the temperature of the fuel cell is low, there is a risk that a large amount of water will accumulate inside the fuel cell, while when the temperature of the fuel cell is high, there is a risk that the inside of the fuel cell will become dry.
[0005] If a large amount of water accumulates inside the fuel cell, or if the inside of the fuel cell becomes dry, the chemical reactions occurring during power generation in the fuel cell are inhibited, causing FC overvoltage, which may result in a decrease in the power generation efficiency of the fuel cell and deterioration of the fuel cell. Thus, if the inside of the fuel cell is not appropriately adjusted according to the temperature of the fuel cell, the power generation efficiency of the fuel cell may decrease and the fuel cell may deteriorate. Note that "the occurrence of FC overvoltage" means that the output voltage of the fuel cell drops and a large difference appears between the optimum value (i.e., the optimum value for improving the power generation efficiency of the fuel cell).
[0006] Therefore, the present disclosure has been made to solve the above-mentioned problems, and aims to provide a fuel cell system that can adjust the state inside the fuel cell to an appropriate state depending on the temperature of the fuel cell, thereby suppressing a decrease in the power generation efficiency of the fuel cell and deterioration of the fuel cell. [Means for solving the problem]
[0007] One form of the present disclosure made to solve the above problems is a fuel cell system having a fuel cell that generates electricity by receiving a supply of fuel gas and an oxidant gas, an off-gas exhaust passage through which oxidant off-gas, which is the oxidant gas that is not used for power generation, is exhausted from the fuel cell, and a valve provided in the off-gas exhaust passage, the system further comprising a temperature sensor that measures the temperature of the fuel cell, a current sensor that measures the output current of the fuel cell, a voltage sensor that measures the output voltage of the fuel cell, and a control unit that controls the valve, wherein when the difference between an optimal value of the output voltage of the fuel cell corresponding to the measured value of the output current of the fuel cell measured by the current sensor and the measured value of the output voltage of the fuel cell measured by the voltage sensor is defined as an output voltage difference, the control unit controls the opening degree of the valve based on the measured value of the temperature of the fuel cell measured by the temperature sensor and the output voltage difference.
[0008] According to this aspect, the valve opening can be controlled according to the state inside the fuel cell using the measured values of the fuel cell temperature, output current, and output voltage, thereby making it possible to adjust the state inside the fuel cell to an appropriate state according to the fuel cell temperature and to prevent a decrease in the power generation efficiency of the fuel cell and the occurrence of deterioration of the fuel cell.
[0009] In the above aspect, it is preferable that the control unit controls the opening of the valve in the opening direction when the measured temperature of the fuel cell is less than a predetermined temperature and the output voltage difference is greater than or equal to a judgment value.
[0010] According to this aspect, when the temperature of the fuel cell is low and the measured value of the fuel cell output voltage is far from the optimum value, it is determined that a large amount of water has accumulated in the fuel cell, and the valve opening is increased to facilitate the discharge of water from the fuel cell to the outside. This reduces the amount of water accumulated in the fuel cell, thereby preventing a decrease in the power generation efficiency of the fuel cell and the occurrence of deterioration of the fuel cell.
[0011] In the above aspect, it is preferable that the control unit controls the opening of the valve in the closing direction when the measured temperature of the fuel cell is less than a predetermined temperature and the output voltage difference is less than a judgment value.
[0012] According to this aspect, when the temperature of the fuel cell is low but the measured output voltage of the fuel cell is close to the optimum value, it is determined that not much water has accumulated in the fuel cell, and the valve opening is reduced to make it difficult for water to be discharged from the fuel cell to the outside. This makes it easier for water to be retained in the fuel cell, and prevents the inside of the fuel cell from becoming dry, thereby preventing a decrease in the power generation efficiency of the fuel cell and deterioration of the fuel cell.
[0013] In the above aspect, it is preferable that the control unit controls the opening of the valve in the closing direction when the measured temperature of the fuel cell is equal to or higher than a predetermined temperature and the output voltage difference is equal to or higher than a judgment value.
[0014] According to this aspect, when the temperature of the fuel cell is high and the measured value of the output voltage of the fuel cell is far from the optimum value, it is determined that the inside of the fuel cell is in a dry state, and the opening of the valve is reduced to make it difficult for water to be discharged from the inside of the fuel cell to the outside. This makes it easier for water to be retained in the fuel cell, and the dry state inside the fuel cell can be alleviated, thereby suppressing a decrease in the power generation efficiency of the fuel cell and the occurrence of deterioration of the fuel cell.
[0015] In the above aspect, it is preferable that the control unit controls the valve in an opening direction when the measured temperature of the fuel cell is equal to or higher than a predetermined temperature and the output voltage difference is less than a judgment value.
[0016] According to this aspect, when the temperature of the fuel cell is high but the measured output voltage of the fuel cell is close to the optimum value, it is determined that the inside of the fuel cell is not dry, and the valve opening is increased to facilitate the discharge of water from the fuel cell to the outside. This prevents a large amount of water from accumulating in the fuel cell, thereby preventing a decrease in the power generation efficiency of the fuel cell and deterioration of the fuel cell. Effect of the Invention
[0017] According to the fuel cell system of the present disclosure, the condition inside the fuel cell can be appropriately adjusted according to the temperature of the fuel cell, thereby preventing a decrease in the power generation efficiency of the fuel cell and preventing the occurrence of deterioration of the fuel cell. [Brief description of the drawings]
[0018] [Figure 1] 1 is a diagram showing a schematic configuration of a fuel cell system according to an embodiment of the present invention; [Diagram 2] FIG. 4 is a flowchart showing the contents of the opening and closing control of the outlet air valve performed in this embodiment. [Diagram 3] FIG. 1 shows the IV characteristics of an FC stack. [Figure 4] FIG. 11 is a diagram showing an example of a map that defines the relationship between a measured FC current value and an estimated FC voltage value. [Diagram 5]FIG. 13 is a diagram showing an example of a map that defines the relationship between a measured FC current value and a determination value.
[0019] An embodiment of a fuel cell system according to the present disclosure will now be described.
[0020] <Outline of the fuel cell system> First, an overview of a fuel cell system 1 according to the present embodiment will be described. The fuel cell system 1 is a system that is mounted on a fuel cell vehicle and supplies electric power to its drive motor (not shown).
[0021] (General configuration of fuel cell system) 1, the fuel cell system 1 has an FC stack 11, a hydrogen system 12, an air system 13, a cooling system 14, and a control unit 15. The FC stack 11 is an example of the "fuel cell" of the present disclosure.
[0022] The FC stack 11 generates power by receiving a supply of fuel gas and oxidant gas. In this embodiment, the fuel gas is hydrogen gas, and the oxidant gas is air. That is, the FC stack 11 generates power by receiving a supply of hydrogen gas from a hydrogen system 12 and a supply of air from an air system 13. The power generated by the FC stack 11 is then supplied to a drive motor (not shown) via an inverter (not shown).
[0023] The FC stack 11 is also provided with a temperature sensor 16 that measures the temperature of the FC stack 11, a current sensor 17 that measures the output current of the FC stack 11, and a voltage sensor 18 that measures the output voltage of the FC stack 11. Note that the "output current of the FC stack 11" is the current of the power generated by the FC stack 11. Also, the "output voltage of the FC stack 11" is the voltage of the power generated by the FC stack 11.
[0024] The hydrogen system 12 is provided on the anode side of the FC stack 11. The hydrogen system 12 includes a hydrogen filling passage 20, a hydrogen gas supply passage 21, a hydrogen off-gas discharge passage 22, and a hydrogen circulation passage .
[0025] The hydrogen filling passage 20 is a passage for filling hydrogen gas into the hydrogen tank 31 from the filling port 30. The hydrogen gas supply passage 21 is a passage for supplying hydrogen gas from the hydrogen tank 31 to the FC stack 11.
[0026] The hydrogen off-gas discharge passage 22 is a passage through which hydrogen off-gas, which is hydrogen gas not used for power generation, is discharged from the FC stack 11. The hydrogen circulation passage 23 is a passage for circulating at least a portion of the hydrogen off-gas from the hydrogen off-gas discharge passage 22 to the hydrogen gas supply passage 21.
[0027] The hydrogen system 12 includes, in the hydrogen gas supply passage 21, a valve 32, a pressure reducing valve 33, an injector 34, and an ejector 35, in that order from the hydrogen tank 31 side.
[0028] The valve 32 switches between supplying and cutting off hydrogen gas from the hydrogen tank 31 to the hydrogen gas supply passage 21, and between supplying and cutting off hydrogen gas from the filling port 30 to the hydrogen tank 31. The pressure reducing valve 33 is a pressure regulating valve for reducing the pressure of hydrogen gas. The injector 34 is a valve that injects hydrogen gas toward the ejector 35. The ejector 35 is a device that merges the hydrogen gas introduced from the injector 34 with hydrogen off-gas sucked from the hydrogen off-gas discharge passage 22, and circulates the combined gas to the FC stack 11.
[0029] Furthermore, the hydrogen system 12 includes a gas-liquid separator 41 and an exhaust drain valve 42 in the hydrogen off-gas discharge passage 22 .
[0030] The gas-liquid separator 41 is a device that separates moisture in the hydrogen off-gas. The gas-liquid separator 41 is connected to the ejector 35 via the hydrogen circulation passage 23. The exhaust drain valve 42 is a valve that controls the discharge of the hydrogen off-gas discharged from the FC stack 11 to the outside.
[0031] The air system 13 is provided on the cathode side of the FC stack 11. The air system 13 includes an air supply passage 51 and an air off-gas discharge passage 52. The air off-gas discharge passage 52 is an example of the "off-gas discharge passage" of the present disclosure.
[0032] The air supply passage 51 is a passage for supplying air to the FC stack 11 from outside the fuel cell system 1. The air off-gas discharge passage 52 is a passage for discharging air off-gas, which is air not used for power generation, from the FC stack 11.
[0033] The air system 13 includes an air compressor 61 in the air supply passage 51. The air compressor 61 is a device that supplies air to the FC stack 11.
[0034] Furthermore, the air system 13 is provided with an outlet air valve 71 in the air off-gas discharge passage 52. The outlet air valve 71 is a valve that adjusts the flow rate of air off-gas discharged from the FC stack 11 to the air off-gas discharge passage 52. The outlet air valve 71 is an example of a "valve" in this disclosure.
[0035] The cooling system 14 is a system that cools the FC stack 11, and includes a cooling water passage 81 and a cooling fan 82. The cooling water passage 81 is a passage through which the cooling water flows. The cooling fan 82 is a device that cools the cooling water flowing through the cooling water passage 81.
[0036] The control unit 15 is a device having, for example, an arithmetic processing unit such as a CPU, a storage unit such as a ROM for storing control programs and control data processed by the CPU and a RAM used as various work areas for control processing, and an input / output interface unit. The control unit 15 performs various controls of the fuel cell system 1 according to the control programs stored in the storage unit.
[0037] Specifically, the control unit 15 controls, for example, the rotation speed of the air compressor 61 and the opening degree of the outlet air valve 71. The control unit 15 also controls the valve 32, the pressure reducing valve 33, the injector 34, the exhaust drain valve 42, the cooling fan 82, and the like.
[0038] (About the operation of the fuel cell system) In the fuel cell system 1 configured as described above, in the hydrogen system 12, hydrogen gas supplied from the hydrogen gas supply passage 21 to the FC stack 11 is used for power generation in the FC stack 11 and then discharged as hydrogen off-gas from the FC stack 11 to the outside via the hydrogen off-gas discharge passage 22, or is sucked into the ejector 35 via the hydrogen off-gas discharge passage 22 and the hydrogen circulation passage 23. In addition, in the air system 13, air supplied from the air supply passage 51 to the FC stack 11 is used for power generation in the FC stack 11 and then discharged as air off-gas from the FC stack 11 to the outside via the air off-gas discharge passage 52.
[0039] <Opening and closing control of the outlet air valve> When the temperature of the FC stack 11 is low, there is a risk that a large amount of water will accumulate inside the FC stack 11, whereas when the temperature of the FC stack 11 is high, there is a risk that the inside of the FC stack 11 will become dry. When a large amount of water accumulates inside the FC stack 11 or the inside of the FC stack 11 becomes dry in this way, chemical reactions during power generation in the FC stack 11 are suppressed, causing the output voltage of the FC stack 11 to deviate from the optimum value (i.e., the optimum value for improving the power generation efficiency of the FC stack 11), and an FC overvoltage will occur, which may result in a decrease in the power generation efficiency of the FC stack 11 and deterioration of the FC stack 11. Note that "the occurrence of an FC overvoltage" means that the output voltage of the FC stack 11 drops and a large difference occurs between the output voltage and the optimum value.
[0040] In this way, there is a risk of a decrease in the power generation efficiency of the FC stack 11 and deterioration of the FC stack 11 if the inside of the FC stack 11 is not adjusted to an appropriate state according to the temperature of the FC stack 11. For this reason, it is desirable to adjust the inside of the FC stack 11 to an appropriate state according to the temperature of the FC stack 11, thereby preventing a decrease in the power generation efficiency of the FC stack 11 and deterioration of the FC stack 11.
[0041] Therefore, in this embodiment, the control unit 15 controls the opening of the outlet air valve 71 based on measurements of the temperature, output current, and output voltage of the FC stack 11 to adjust the inside of the FC stack 11 to an appropriate state.
[0042] Specifically, the control unit 15 controls the opening degree of the outlet air valve 71 based on the FC temperature measurement value and the FC voltage difference, which is the difference between the FC voltage estimate value and the FC voltage measurement value.
[0043] The FC temperature measurement value is the measurement value of the temperature of the FC stack 11 measured by the temperature sensor 16. The FC voltage estimate value is the optimum value of the output voltage of the FC stack 11 corresponding to the FC current measurement value, and is an example of the "optimum value of the output voltage of the fuel cell" in the present disclosure. The FC voltage measurement value is the measurement value of the output voltage of the FC stack 11 measured by the voltage sensor 18. The FC voltage difference is an example of the "output voltage difference" in the present disclosure.
[0044] More specifically, the control unit 15 performs control shown in the flowchart in Fig. 2. During operation of the fuel cell system 1, the control unit 15 performs the control shown in Fig. 2 at predetermined time intervals (for example, every second).
[0045] As shown in FIG. 2, the control unit 15 determines whether or not the FC temperature measurement value is less than a predetermined temperature (for example, 50° C.) (step S1).
[0046] If the FC temperature measurement value is less than the predetermined temperature (step S1: YES), the control unit 15 determines whether or not the condition of the following formula is satisfied (step S2). [Number 1] (FC voltage estimate - FC voltage measurement) ≥ judgment value That is, the control unit 15 determines whether or not the value obtained by subtracting the FC voltage measurement value from the FC voltage estimation value, that is, the FC voltage difference, is equal to or greater than the determination value.
[0047] Here, the FC voltage estimated value and the FC voltage measured value are each expressed as shown in Fig. 3 in the IV characteristics of the FC stack 11. The FC voltage estimated value is estimated from the FC current measured value, for example, using the map in Fig. 4. The judgment value is calculated from the FC current measured value, for example, using the map in Fig. 5.
[0048] In the map of Figure 5, the judgment value changes in proportion to the measured FC current. For example, when the measured FC current value is 10 A, the judgment value is 3 V, and when the measured FC current value is 30 A, the judgment value is 5 V.
[0049] Then, when the condition of the formula [Mathematical Expression 1] is satisfied, that is, when the FC voltage difference is equal to or greater than the judgment value (Step S2: YES), the control unit 15 sets (target outlet valve opening when FC temperature is low) to (old outlet valve target opening when FC temperature is low) + (Δ opening (e.g., 0.5°)) and controls the opening of the outlet air valve 71 in the opening direction by Δ opening.
[0050] In this manner, when the FC temperature measurement value is less than the predetermined temperature and the FC voltage difference is equal to or greater than the determination value, the control unit 15 controls the opening degree of the outlet air valve 71 in the opening direction.
[0051] That is, in this embodiment, when the FC temperature is low and the FC voltage difference is large (i.e., when the measured FC voltage value is far from the estimated FC voltage value), the control unit 15 determines that a large amount of water has accumulated in the FC stack 11. Then, the control unit 15 increases the opening of the outlet air valve 71 to make it easier for the water to be discharged from inside the FC stack 11 to the outside.
[0052] This reduces the amount of water accumulated in the FC stack 11, promoting the chemical reaction between hydrogen and oxygen in the FC stack 11 and bringing the output voltage of the FC stack 11 closer to the optimum value. This makes it possible to prevent a decrease in the power generation efficiency of the FC stack 11 and to prevent deterioration of the FC stack 11.
[0053] On the other hand, if the condition of the formula [Equation 1] is not satisfied in step S2, that is, if the FC voltage difference is less than the judgment value (step S2: NO), the control unit 15 sets (outlet valve target opening when FC temperature is low) to (old outlet valve target opening when FC temperature is low) - (Δ opening (e.g., 0.01°)) and controls the opening of the outlet air valve 71 in the valve closing direction by Δ opening (step S4). Note that the Δ opening in step S4 is set to a value much smaller than the Δ opening in step S3.
[0054] In this way, when the FC temperature measurement value is less than the predetermined temperature and the FC voltage difference is less than the determination value, the control unit 15 controls the opening degree of the outlet air valve 71 in the valve closing direction.
[0055] That is, in this embodiment, when the FC temperature is low but the FC voltage difference is small (i.e., when the measured FC voltage value is close to the estimated FC voltage value), the control unit 15 determines that not much water has accumulated in the FC stack 11. Then, the control unit 15 reduces the opening of the outlet air valve 71 to make it difficult for water to be discharged from inside the FC stack 11 to the outside.
[0056] This makes it easier for water to be retained within the FC stack 11, preventing the inside of the FC stack 11 from becoming dry, promoting the chemical reaction between hydrogen and oxygen in the FC stack 11 and bringing the output voltage of the FC stack 11 closer to the optimum value. This makes it possible to prevent a decrease in the power generation efficiency of the FC stack 11 and to prevent deterioration of the FC stack 11.
[0057] In particular, when it is determined that a large amount of water has accumulated within the FC stack 11, the opening of the outlet air valve 71 is increased to make it easier for the water to be discharged from within the FC stack 11 to the outside. Therefore, when the inside of the FC stack 11 is about to become dry, the opening of the outlet air valve 71 is reduced to make it more difficult for the water to be discharged from within the FC stack 11 to the outside, thereby preventing the inside of the FC stack 11 from becoming dry.
[0058] Also, in step S1, if the FC temperature measurement value is equal to or higher than the predetermined temperature (step S1: NO), the control unit 15 determines whether or not the condition of the above-mentioned formula [Mathematical Expression 1] is satisfied, as in step S2 (step S5).
[0059] Then, when the condition of the formula [Mathematical Expression 1] is satisfied (Step S5: YES), the control unit 15 sets (target outlet valve opening when FC temperature is high) to (old outlet valve target opening when FC temperature is high) - (Δ opening (e.g., 0.5°)), and controls the opening of the outlet air valve 71 in the closing direction by Δ opening.
[0060] In this manner, when the FC temperature measurement value is equal to or higher than the predetermined temperature and the FC voltage difference is equal to or higher than the determination value, the control unit 15 controls the opening degree of the outlet air valve 71 in the valve closing direction.
[0061] In other words, when the FC temperature is high and the measured FC voltage value is far from the estimated FC voltage value, it is determined that the inside of the FC stack 11 is dry, and the opening of the outlet air valve 71 is reduced, making it difficult for water to be discharged from the FC stack 11 to the outside.
[0062] This makes it easier for water to be retained within the FC stack 11, alleviating the dry state within the FC stack 11, promoting the chemical reaction between hydrogen and oxygen in the FC stack 11 and bringing the output voltage of the FC stack 11 closer to the optimum value. This makes it possible to prevent a decrease in the power generation efficiency of the FC stack 11 and to prevent deterioration of the FC stack 11.
[0063] On the other hand, if the condition of the formula [Equation 1] is not satisfied in step S5 (step S5: NO), the control unit 15 sets (target outlet valve opening when FC temperature is high) to (old target outlet valve opening when FC temperature is high) + (Δ opening (e.g., 0.01°)) and controls the opening of the outlet air valve 71 in the valve opening direction by Δ opening. Note that the Δ opening in step S7 is set to a value much smaller than the Δ opening in step S6.
[0064] In this way, when the FC temperature measurement value is equal to or higher than the predetermined temperature and the FC voltage difference is less than the determination value, the control unit 15 controls the opening degree of the outlet air valve 71 in the opening direction.
[0065] That is, in this embodiment, when the FC temperature is high but the measured FC voltage value is close to the estimated FC voltage value, it is determined that the inside of the FC stack 11 is not dry, and the opening of the outlet air valve 71 is increased to make it easier for water to be discharged from the FC stack 11 to the outside.
[0066] This prevents a large amount of water from accumulating inside the FC stack 11, promoting the chemical reaction between hydrogen and oxygen in the FC stack 11 and bringing the output voltage of the FC stack 11 closer to the optimum value. This makes it possible to prevent a decrease in the power generation efficiency of the FC stack 11 and to prevent deterioration of the FC stack 11.
[0067] In particular, since the opening of the outlet air valve 71 is reduced when it is determined that the inside of the FC stack 11 is dry, making it difficult for water to be discharged from inside the FC stack 11 to the outside, when a large amount of water is about to accumulate inside the FC stack 11, the opening of the outlet air valve 71 can be increased, making it easier for water to be discharged from inside the FC stack 11 to the outside, thereby reducing the water accumulated inside the FC stack 11.
[0068] It should be noted that the above-described embodiments are merely examples and do not limit the present disclosure in any way. Needless to say, various improvements and modifications are possible without departing from the spirit and scope of the present disclosure.
[0069] For example, the control unit 15 may perform control by switching the order of steps S1 and S2, or the order of steps S1 and S5 in FIG. [Explanation of symbols]
[0070] 1. Fuel cell system 11 FC Stack 12 Hydrogen Systems 13 Air Systems 14 Cooling system 15 Control section 16 Temperature Sensor 17 Current Sensor 18 Voltage Sensor 51 Air supply passage 52 Air off-gas exhaust passage 71 Outlet air valve
Claims
1. A fuel cell that generates electricity by receiving a fuel gas and an oxidant gas; an off-gas exhaust passage through which an oxidant off-gas, which is the oxidant gas not used for power generation, is exhausted from the fuel cell; a valve provided in the off-gas exhaust passage; In a fuel cell system, A temperature sensor for measuring a temperature of the fuel cell; a current sensor for measuring an output current of the fuel cell; a voltage sensor for measuring an output voltage of the fuel cell; A control unit for controlling the valve, When the difference between the optimum value of the output voltage of the fuel cell corresponding to the measured value of the output current of the fuel cell measured by the current sensor and the measured value of the output voltage of the fuel cell measured by the voltage sensor is defined as the output voltage difference, The control unit is controlling an opening degree of the valve based on a measured value of the temperature of the fuel cell measured by the temperature sensor and the output voltage difference; A fuel cell system comprising:
2. 2. The fuel cell system of claim 1, The control unit is the measured temperature of the fuel cell is less than a predetermined temperature; And, when the output voltage difference is equal to or greater than the judgment value, Controlling the opening of the valve in an opening direction; A fuel cell system comprising:
3. 3. The fuel cell system according to claim 1, The control unit is the measured temperature of the fuel cell is less than a predetermined temperature; And, when the output voltage difference is less than the judgment value, Controlling the opening of the valve in a closing direction; A fuel cell system comprising:
4. 2. The fuel cell system of claim 1, The control unit is the measured temperature of the fuel cell is equal to or higher than a predetermined temperature, And, when the output voltage difference is equal to or greater than the judgment value, Controlling the opening of the valve in a closing direction; A fuel cell system comprising:
5. 5. The fuel cell system according to claim 1, The control unit is the measured temperature of the fuel cell is equal to or higher than a predetermined temperature, And, when the output voltage difference is less than the judgment value, Controlling the valve in an opening direction; A fuel cell system comprising:
Citation Information
Patent Citations
Fuel cell system
JP2010114039A