Fuel cell system and control method for it
By controlling the converter operation and fuel gas supply in fuel cell systems, the issue of excessive voltage rise is mitigated, maintaining safe output levels and preventing electrolyte membrane deterioration during intermittent operation.
Patent Information
- Application Number
- DE112009005040
- Authority / Receiving Office
- DE · DE
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2009-07-09
- Publication Date
- 2025-12-11
- Estimated Expiration
- 2029-07-09
AI Technical Summary
Existing fuel cell systems face issues with excessive output voltage rise when the first DC-DC converter is stopped, leading to potential deterioration of the electrolyte membrane due to insufficient fuel gas consumption, as the output voltage can exceed the high-voltage avoidance voltage.
Implement a control method and system that prevents the converter from stopping when sufficient fuel gas remains, controlling the output voltage to prevent excessive rises by driving the converter first when the threshold voltage is reached and then supplying fuel gas, thereby maintaining the output voltage within safe limits.
This approach reduces power consumption while preventing fuel cell deterioration by capping the output voltage, ensuring the system operates efficiently and safely during intermittent operation.
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Abstract
Description
Technical field
[0001] The present invention relates to a fuel cell system that can be mounted on a vehicle or the like, and in particular to an effective technology for reducing electricity consumption after stopping the power generation of a fuel cell. State of the art
[0002] A fuel cell system that can be mounted on a vehicle has been developed, comprising a plurality of DC-DC converters. For example, JP 2007-209 161 A discloses a fuel cell system with a first DC-DC converter located between an electrical storage device and an inverter, and a second DC-DC converter located between a fuel cell and an inverter.
[0003] In this system, if the target motor output exceeds a predetermined limit, the drive to the first DC-DC converter is stopped, the second DC-DC converter is switched to a directly connected electrical state, and the higher-output fuel cell output is preferentially supplied to the motor instead of the electrical storage device. Furthermore, if the target motor output is less than the limit, the first DC-DC converter is operated to supply auxiliary power from the electrical storage device, and the second DC-DC converter is switched to the directly connected electrical state. This configuration avoids a decrease in the vehicle's drive power and enables efficient power conversion (see JP 2007-209161A). Further fuel cell systems and control methods are described in JP 2008-4482A and US 2006 / 0216555A1.
[0004] Nevertheless, it was found that disadvantages arise when the drive of the first DC-DC converter is stopped, as in the teaching of JP 2007-209 161 A. In particular, when the drive of the first DC-DC converter is stopped, a certain amount of fuel gas remains in the fuel cell.
[0005] The first DC-DC converter controls the upper limit of the fuel cell's output voltage. When the drive to this first DC-DC converter stops, the fuel cell's output voltage is no longer limited. If a sufficient amount of fuel gas remains in the fuel cell to generate power when the drive to the first DC-DC converter stops, the fuel cell's output voltage will rise indefinitely. If the first DC-DC converter is in a directly connected electrical state when the drive stops, the fuel cell's output voltage could rise to the input voltage of the inverter, which is a high-voltage system.
[0006] However, the fuel cell's output voltage has an upper limit (hereinafter referred to as the "high-voltage avoidance voltage") to prevent deterioration of the electrolyte membrane, among other reasons. If the drive of the first DC-DC converter is stopped in a state where at least a sufficient amount of fuel gas remains in the fuel cell to generate power, the output voltage could rise to and exceed the high-voltage avoidance voltage.
[0007] In order to eliminate the aforementioned problem, it is therefore, according to a preferred embodiment of the invention, an objective to offer a fuel cell system and a control method therefor which are suitable to reduce power consumption while simultaneously avoiding deterioration of the fuel cell. Solution to the problem
[0008] One embodiment of the fuel cell system for solving the foregoing problem is a fuel cell system with the features of claim 1, comprising: a fuel cell; a converter connected between the fuel cell and a high-voltage system, which sets a peak output voltage of the fuel cell; and a control device that controls the fuel cell and the converter, wherein, when it is determined that at least a sufficient quantity of fuel gas for power generation remains in the fuel cell during an operating mode for temporarily halting power generation of the fuel cell (hereinafter also referred to as an intermittent operating mode), the control device prevents the converter from being temporarily stopped. When the output voltage of the fuel cell reaches a threshold voltage for supplying the fuel gas, the converter is driven first, and subsequently the fuel gas is supplied.
[0009] Another embodiment of the fuel cell system for solving the above problem is a fuel cell system with the features of claim 7, comprising: an inverter connected to a charging device; a first converter connected between a fuel cell and the inverter, which sets a peak output voltage of the fuel cell; a second converter connected between an electrical storage device and the inverter, which sets an input voltage of the inverter; and a control device controlling the first converter and the second converter, wherein, when it is determined that at least a sufficient quantity of fuel gas for power generation remains in the fuel cell during an intermittent operating mode to temporarily halt power generation of the fuel cell, the control device prevents the first converter from being temporarily stopped.
[0010] Another embodiment of the fuel cell system for solving the above problem is a fuel cell system with the features of claim 8, comprising a fuel cell and a converter connected between the fuel cell and a high-voltage system, which sets an output peak voltage of the fuel cell, comprising: a fuel gas supply stopping means for stopping the supply of fuel gas to the fuel cell in an operating mode for temporarily stopping the power generation of the fuel cell;A means of determining the remaining fuel gas quantity to ascertain whether at least a sufficient quantity of fuel gas for power generation remains in the fuel cell; a converter drive means for driving the converter such that, if it is determined that at least a sufficient quantity of fuel gas for power generation remains in the fuel cell, the peak output voltage of the fuel cell becomes a first voltage suitable for preventing deterioration of the fuel cell; and a converter stop means for temporarily stopping the converter if it is determined that at least a sufficient quantity of fuel gas for power generation does not remain in the fuel cell. When the output voltage of the fuel cell reaches a threshold voltage for supplying the fuel gas, the converter is driven first, and then the fuel gas is supplied.
[0011] One embodiment of the method for controlling the fuel cell system to solve the foregoing problem is a method with the features of claim 10, for controlling a fuel cell system with a fuel cell and a converter connected between the fuel cell and a high-voltage system and setting an output peak voltage of the fuel cell, comprising the following steps: stopping the supply of fuel gas to the fuel cell in an operating mode for temporarily halting power generation of the fuel cell; determining whether at least the amount of fuel gas sufficient for power generation remains in the fuel cell;Driving the converter such that, if it is determined that at least a sufficient quantity of fuel gas for power generation remains in the fuel cell, the peak output voltage of the fuel cell becomes a first voltage suitable for preventing deterioration of the fuel cell; and temporarily stopping the converter if it is determined that at least a sufficient quantity of fuel gas for power generation does not remain in the fuel cell. The method further comprises first driving the converter when the output voltage of the fuel cell reaches a threshold voltage for supplying the fuel gas; and subsequently supplying the fuel gas after the converter is driven.
[0012] When the fuel cell is in a temporarily halted or intermittent operating mode, power generation is stopped, and the supply of fuel gas to the fuel cell is generally stopped. Even when the fuel gas supply is stopped, there are cases where fuel gas remains in the fuel cell. If the peak output voltage limit is raised when there is a sufficient amount of residual fuel gas to generate power, the fuel cell's output power increases due to the remaining fuel gas and exceeds the high-voltage avoidance voltage.In this respect, setting the upper limit of the output peak voltage according to the present invention is effective, since the converter is not stopped when a sufficient amount of fuel gas remains to generate power, thus making it possible to avoid the output voltage reaching the high-voltage avoidance voltage.
[0013] The present invention can also selectively add the following elements as needed. (1) Preferably, if it is determined that at least a sufficient quantity of fuel gas for power generation remains in the fuel cell, the converter is controlled such that the peak output voltage of the fuel cell becomes a first voltage suitable for preventing deterioration of the fuel cell. Since, according to the above configuration, the output voltage of the fuel cell is capped or limited to the first voltage when at least a sufficient quantity of fuel gas for power generation remains, it is possible to prevent deterioration of the fuel cell. (2) Preferably, if the output voltage of the fuel cell is a predetermined limit voltage or higher, it is ensured that at least the amount of fuel gas sufficient for power generation remains. The output voltage of the fuel cell decreases when the fuel gas becomes scarce. Thus, the state of the remaining fuel gas can be accurately determined by comparing the output voltage of the fuel cell with the limit voltage to ascertain the presence of residual fuel gas. (3) Preferably, if the pressure of the fuel gas is a predetermined limit pressure or higher, it is ensured that at least the quantity of fuel gas sufficient for power generation remains. As the fuel gas decreases, its pressure also decreases. Thus, the state of the remaining fuel gas can be accurately determined by comparing its pressure with the limit pressure to ascertain whether residual fuel gas is present. (4) Preferably, the converter is stopped when it is determined that at least the amount of fuel gas sufficient for power generation does not remain in the fuel cell. If no fuel gas remains, the output voltage of the fuel cell does not increase, even if the output peak voltage limit is raised. By stopping the converter when it is determined that no fuel gas remains, it is possible to reduce the voltage consumed while simultaneously avoiding the disadvantage of an increasing output voltage. (5) Preferably, when the fuel cell output voltage reaches a threshold voltage for supplying the fuel gas, the converter is driven first, and then the fuel gas is supplied. Even in intermittent operation mode, excessive drops in the fuel cell's output voltage result in disadvantages. Therefore, when the output voltage decreases, it is necessary to supply an appropriate amount of fuel gas. Since, according to the configuration described above, the converter is driven first before the fuel gas is supplied, the limiting of the peak output voltage is already effective when the output voltage begins to rise due to the fuel gas supply, and it is possible to prevent the output voltage from reaching the high-voltage avoidance voltage. (6) Preferably, the converter is controlled such that the peak output voltage of the fuel cell becomes a second voltage suitable for preventing deterioration of the fuel cell. Since the peak output voltage is set to the second voltage after the first converter has been operated, it is possible to prevent the output voltage from reaching the high-voltage avoidance voltage. Advantageous effects of the invention
[0014] According to this invention, since the increase in the output voltage of the fuel cell is prevented when the converter stops, it is possible to reduce power consumption while preventing deterioration of the fuel cell. Brief description of the drawings Fig. Figure 1 shows a system diagram of the FCHV system according to an embodiment of the invention; Fig. 2 shows a diagram of functional blocks that perform the power control of the fuel cell system according to this embodiment; Fig. Figure 3 shows a transition diagram that represents the change in the output peak voltage Vfc_MAX as a command value to the first converter when applying the invention and the actual output voltage Vfc of the fuel cell 10; Fig. Figure 4 shows a transition diagram that represents the change in the output peak voltage Vfc_MAX as a command value to the first converter when the invention is not applied and the actual output voltage Vfc of the fuel cell 10; Fig. Figure 5 shows a transition diagram illustrating the change in the output peak voltage Vfc_MAX, the output voltage Vfc and the amount of fuel gas in the fuel cell 10 when applying the invention; Fig. Figure 6 shows a transition diagram illustrating the change in the output peak voltage Vfc_MAX, the output voltage Vfc and the fuel gas quantity of the fuel cell 10 when the invention is not applied; Fig. Figure 7 shows a control flow diagram illustrating the start-up state processing of the intermittent operating mode of this embodiment; and Fig. Figure 8 shows a control flow diagram illustrating the fuel gas supply processing during the intermittent operating mode of the embodiment. Description of embodiments
[0015] Preferred embodiments of the present invention are described below with reference to the drawings.
[0016] The following drawings are described schematically. The specific modification characteristics are to be determined by comparison with the subsequent explanation. Furthermore, it is self-evident that different characteristics are depicted in the various drawings. Although the following embodiments describe the execution of all steps with a single control device, they also include cases in which a plurality of control units are coordinated to perform the control processing according to the present invention. (Definitions)
[0017] The terms used in this description are defined as follows.
[0018] The term "intermittent operating mode" refers to an operating mode for temporarily halting the power or current generation of the fuel cell instead of completely shutting down the system. This is implemented when it is not necessary to directly supply power from the fuel cell, for example, due to a low load or other reasons. Power generation is performed intermittently to prevent adverse effects on the individual fuel cells resulting from excessive voltage drop.
[0019] The term "high-voltage system" refers to a system on the secondary side of the fuel cell converter (first converter 11 in the following explanation). This system is typically supplied with a voltage higher than the fuel cell's output voltage, based on the pressure boosting process of the fuel cell converter. However, this does not mean that the voltage on the secondary side, as a high-voltage system, is constantly higher than the voltage of the system on the primary side, to which the fuel cell is connected.
[0020] The term "fuel gas" refers to hydrogen gas and / or oxidizer gas (air). The term "power-generating quantity" refers to the quantity at which the output voltage can be increased if this quantity of fuel gas remains in the fuel cell. Specifically, this is the quantity of fuel gas that allows the output voltage Vfc to reach the open-circuit voltage OCV, which has negative effects on the fuel cell cells. (Forms of execution)
[0021] This embodiment is a mode to avoid stopping the converter when it is determined that at least a sufficient amount of fuel gas to generate power remains in the fuel cell during an intermittent operating mode. (System configuration)
[0022] Fig. Figure 1 shows a block diagram of a fuel cell system 100 that can be mounted on a vehicle according to the first embodiment. This type of vehicle is referred to as a fuel cell hybrid vehicle (FCHV).
[0023] The fuel cell system 100 comprises a fuel cell 10, a first converter 11, a second converter 12, a battery 13, an inverter 14, a motor 15, an auxiliary inverter 18, a high-voltage auxiliary machine 19 and a control device 20.
[0024] The fuel cell 10 is a power generation device formed by a plurality of unit cells stacked in series. The unit cells are configured such that they sandwich a membrane electrode assembly (MEA) with separators. The MEA consists of an ion-exchange membrane, for example, a polymer electrolyte membrane, sandwiched between an anode electrode and a cathode electrode. The anode electrode is formed by providing an anode catalyst layer on a porous support layer, and the cathode electrode is formed by providing a cathode catalyst layer on a porous support layer. Hydrogen gas is supplied to the anode electrode of each unit cell via a separator from a hydrogen gas supply system (not shown).Oxide gas (in this embodiment, air) is supplied to the cathode electrode of the respective unit cells via a separator by an oxidation gas supply system (not shown). A coolant line is formed at the separator, and the coolant is supplied by a coolant supply system (not shown). In fuel cell 10, the oxidation reaction of formula (1) occurs at the anode electrode, the reduction reaction of formula (2) occurs at the cathode electrode, and the electrogenic reaction (3) occurs throughout the entire fuel cell 10. H2 → 2H + + 2e - (1) (1 / 2)O2 + 2H + + 2e - → H2O (2) H2 + (1 / 2)O2 → H2O (3)
[0025] Since a plurality of unit cells are connected in series, fuel cell 10 outputs the output voltage Vfc at the output terminal. Fuel cell 10 has a predetermined current-voltage output characteristic (IV characteristic), and the output current and output power vary or change according to the change in the output voltage Vfc.
[0026] The interior of the fuel cell 10, for example the supply port or the discharge port as the opening of the hydrogen gas supply system of the fuel cell 10, is equipped with a pressure sensor 21. When the supply of hydrogen gas is blocked by the shut-off valve (not shown) provided for the aforementioned supply and discharge ports, the pressure sensor 21 detects the pressure of the hydrogen gas supply system in the fuel cell 10 and outputs a pressure detection signal S. PFurthermore, a cell monitoring device 22 is provided for the unit cells that form the fuel cell 10. The cell monitoring device 22 detects the voltage of the unit cell and outputs a cell voltage detection signal S. V out of.
[0027] The first converter 11 is a voltage converter according to the present invention and is configured as a DC-DC converter. When a three-phase operating system is used, the first converter 11 has, for example, a switching configuration of a bridge-type three-phase converter or the like. The bridge-type three-phase converter comprises a switching element consisting of a reactor, a rectifier diode, an IGBT (insulated gate bipolar transistor), and the like. As a result of the assembly of these elements, a switching section is formed that is similar to an inverter, which converts the input DC voltage into an AC voltage, as well as a section that rectifies the AC voltage and converts it into another DC voltage.It should be noted that the circuit configuration of the first converter 11 is not limited to the aforementioned configuration, but different configurations can be used as long as it is possible to control the output voltage Vfc of the fuel cell 10.
[0028] The first converter 11 is connected on a primary side to an output terminal of the fuel cell 10, and on a secondary side to an input terminal of the inverter 14. The secondary side corresponds to the high-voltage system of this embodiment. The terminal voltage of the fuel cell 10, i.e., the upper limit of the output terminal voltage Vfc, is determined according to instruction C. VfcThe control device 20 regulates the primary side's peak output voltage Vfc_MAX. Accordingly, when the first converter 11 is operating, the fuel cell 10's output voltage Vfc does not exceed the set peak output voltage Vfc_MAX. The first converter 11 is operated to subject the fuel cell 10's output voltage Vfc to a voltage conversion (pressure boost) so that it matches the inverter 14's input voltage Vinv, which defines the secondary side's high-voltage system voltage. Furthermore, the first converter 11 starts and stops operation according to command C. Vfc from the control device 20, which regulates the drive / stop. In particular, it switches when the first converter 11 receives the command C from the control device 20. VfcTo stop operation, it activates part of the internal switching elements, causing the primary and secondary sides to be directly electrically connected. Furthermore, when the first converter 11 receives the command C from the control device 20... Vfc Upon receiving the signal that dictates the drive, it executes the control in such a way that the output voltage Vfc of the fuel cell 10 on the primary side falls to the output peak voltage Vfc_MAX, which was preset, or below Vfc_MAX.
[0029] The battery 13 is an electrical storage device and serves as a storage source for excess energy generated by the fuel cell 10, as a storage source for regenerative braking, and as an energy buffer during load changes associated with the acceleration or deceleration of the fuel cell vehicle. For example, secondary batteries such as a nickel-cadmium battery, a nickel-hydrogen battery, or a lithium secondary battery can be used as battery 13. The output terminal voltage V BAT The input voltage of the second converter 12 is supplied by battery 13.
[0030] The second converter 12 is a voltage converter and, like the first converter 11, is configured as a DC-DC converter. The second converter 12 is connected on its primary side to an output terminal of the battery 13, and on its secondary side to an input terminal of the inverter 14. The second converter 12 is configured to adjust the terminal voltage of the secondary side (input voltage Vinv of the inverter 14) according to instruction C. Vinv to control the control device 20. For example, if the required power of the motor 15 is changed, the second converter 12 changes the input voltage Vinv of the inverter 14 until it reaches the set target input voltage. Additionally, the first converter 11 controls the output voltage Vfc of the fuel cell 10. It should be noted that various configurations can be used for the switching configuration of the second converter 12, as long as it is possible to control the input voltage Vinv of the inverter 14.
[0031] Inverter 14 is a power converter configured to convert the DC current supplied to the input terminal into AC current and supply it to motor 15. The switching configuration of inverter 14 includes, for example, a PWM inverter circuit controlled by pulse-width modulation. Inverter 14 is designed to supply motor 15 with three-phase AC power at a predetermined drive voltage Vd (RMS value).
[0032] The motor 15 is a traction motor for propelling a vehicle and provides driving force to the vehicle when supplied with drive power, and generates regenerative power when the vehicle decelerates or brakes. The differential 16 is a deceleration device and is configured to reduce the high speed of the motor 15 to a predetermined ratio, and rotates a shaft fitted with a tire or wheel 17. The motor 15 is equipped with a speed sensor 24. The speed sensor 24 detects the speed of the motor 15 and outputs a speed signal S. N to the control device 20.
[0033] The auxiliary inverter 18 is a power converter configured to convert the DC current supplied to the input terminal into an AC current and supply it to the high-voltage auxiliary machine 19. The switching configuration of the auxiliary inverter 18 is the same as that of the inverter 14 described above. It should be noted that the high-voltage auxiliary machine 19 is used as a collective term for a humidifier, an air compressor, a hydrogen pump, and a coolant pump, all of which are not shown and are used to make the fuel cell system 100 function.
[0034] The control device 20 is a computer system for controlling the fuel cell system 100 and includes, for example, a CPU, RAM, ROM, and the like. The control device 20 receives the pressure sensing signal S. Pfrom pressure sensor 21 and detects the pressure of the hydrogen gas. In addition, the control device 20 can determine the voltage value of the respective unit cells by inputting or receiving the voltage detection signal S. V from the cell monitoring device 22. The control device 20 can also measure the rotational speed N of the motor 15 by detecting the rotational speed signal S. Nfrom the speed sensor 23. Furthermore, the control device 20 performed the various calculations necessary for control by inputting different signals from a sensor group 22. It should be noted that the sensor group 22 includes an accelerator opening sensor, which detects the opening of an accelerator (not shown), a current sensor, which detects the output current of the fuel cell 10, a voltage sensor, which detects the output voltage Vfc of the fuel cell 10, a temperature sensor, which measures the coolant temperature of the fuel cell 10, and a speed sensor, which detects the speed of the air compressor, the hydrogen pump, the coolant pump, and the like.
[0035] The control device 20 controlled the entire system by reference to the aforementioned signals. For example, the control device 20 performs the following processing (or processing) operations, but is not limited to this. (1) To input a switching signal from an ignition switch (not shown) and to cause the fuel cell system 10 to start or stop; (2) To enable the opening of an accelerator not shown, the switching position detection signal and the speed detection signal S N to obtain from speed sensor 24, and to calculate the control parameters, such as the power required by the system, as the required power input quantity; (3) To obtain the pressure sensing signal Sp from the pressure sensor 21 and to control the rotational speed of an air compressor (not shown) such that the hydrogen gas supply quantity of the hydrogen gas supply system (not shown) becomes a suitable quantity; (4) To implement a control so that the amount of oxidation exhaust gas discharged from an oxidation exhaust gas line (not shown) becomes an appropriate amount; (5) In order to control, based on the relative pressure value of various pressure sensors provided at the respective points of the hydrogen gas supply line and the oxidation gas supply line, the opening of the Root valve (not shown) or the pressure of the ejector such that the quantity of hydrogen gas supplied to the hydrogen gas supply line becomes an appropriate quantity; (6) To control the rotational speed of the hydrogen pump (not shown) or the opening of the purge valve (not shown) so that the amount of hydrogen exhaust gas circulating in the circulation line of the hydrogen gas supply system becomes a suitable amount; (7) To control the opening and closing of the respective valves according to the operating mode; (8) To calculate the coolant circulation quantity based on the relative value of the coolant temperature and to control the speed of the coolant pump provided in the cooling system not shown; (9) To estimate the water content of the fuel cell 10 based on the output voltage Vfc of the fuel cell 10, which is detected by the voltage sensor, and the output current Ifc, which is detected by the current sensor, and to control the purge quantity when the vehicle is stopped; and (10) To control the device that configures the power system of the first converter 11, the second converter 12 and the like.
[0036] In particular, the control device 20 performs the following processing as the control to be carried out by the power system.
[0037] First, in normal operating mode, the control device 20 calculates the torque required by the motor based on the accelerator (gas pedal) opening and the motor speed N. It then calculates the power required by the motor based on this torque and the motor speed N. Next, the control device 20 calculates the power that must be generated based on the power required by the motor and the power required by the high-voltage auxiliary machine. Finally, using the current-voltage (IV) characteristic of the fuel cell 10, it calculates the output voltage Vfc of the fuel cell 10 required to deliver the power to be generated. If necessary, the control device 20 determines the distribution of the respective power outputs of the fuel cell 10 and the battery 13. Finally, the control device 20 sends the command C to the first converter 11. Vfcto cause the requested output voltage Vfc to become the peak output voltage Vfc_MAX of the fuel cell 10. Additionally, the control device 20 sends the command C to the second converter 12. Vinv out, so that the required power of the battery 13 can be obtained, and thereby controls the input voltage Vinv of the inverter 14, i.e. the voltage of the high voltage system.
[0038] In an intermittent operating mode, the control device 20 performed the control processing of the present invention. In particular, in the intermittent operating mode, when it is determined that fuel gas (hydrogen gas in this embodiment) remains in the fuel cell 10 in at least the quantity necessary for power generation, the control device 20 is characterized in that it prevents the first converter 11 from being stopped. The function and operation are explained in detail below. (Function block)
[0039] Fig. Figure 2 shows a diagram of functional blocks of the fuel cell system 100, which is functionally realized by the control device 20 of the first embodiment. These functional blocks are functionally realized by the control device 20, which regularly or irregularly executes the programs for carrying out the control processing (see Figure 2). Fig. 7 and Fig. 8) of the present invention in intermittent operating mode.
[0040] It should be noted that the functional blocks in Fig. 2 are divided according to function for easier presentation, but not necessarily as in Fig. The functions shown in section 2 must be divided according to function. The same functions can be implemented with function blocks that differ from those shown in section 2. Fig. 2 are, as long as the configuration is suitable to use the first converter 11 based on the one in Fig. 2 shown inputs to start / stop and to regulate the output peak voltage Vfc_MAX of fuel cell 10.
[0041] As in Fig. As shown in Figure 2, the control device 20 comprises as functional blocks a fuel gas supply stop means 201, a determining means for a remaining fuel gas quantity 202, a converter drive means 203, a converter stop means 204 and a control means for intermittent operation 205.
[0042] The fuel gas supply stop device 201 is a functional block that stops the supply of fuel gas to the fuel cell 10 in intermittent operating mode. The aforementioned fuel gas is hydrogen gas and oxidation gas. For example, the fuel gas supply stop device 201 closes the shut-off valve (not shown) provided at the hydrogen gas supply port and the shut-off valve (not shown) provided at the oxidation gas supply port leading to the fuel cell 10.
[0043] The means of determining the remaining fuel gas quantity 202 is a functional block that determines whether fuel gas remains in the fuel cell 10 in at least an amount suitable for power generation. In this embodiment, the aforementioned fuel gas is hydrogen gas. However, the same process can also be carried out for oxidizer gas. Furthermore, the same process can also be carried out for both oxidizer gas and hydrogen gas. The determination of whether the amount of gas remaining in the fuel cell 10 is suitable for power generation can be carried out, for example, based on the following methods. (1) If the determination is to be carried out using a detected voltage, it can be determined that at least a quantity of gas suitable for power generation remains in the fuel cell 10 when the output voltage (cell voltage) Vfc of the fuel cell 10 is a predetermined limit voltage Vth1 or higher. The output voltage Vfc of the fuel cell 10 decreases as the fuel gas becomes scarce. The remaining quantity of gas correlates with the output voltage Vfc of the fuel cell 10. Thus, the state of the remaining gas can be accurately determined by comparing the output voltage Vfc of the fuel cell 10 with the limit voltage Vth1 to determine the presence of residual fuel gas. It should be noted that the voltage to be detected is the voltage of one or more unit cells that can be detected by the cell monitoring device 22, or the voltage of all laminated or stacked unit cells, i.e.,the output voltage Vfc which is measured at the output terminal of the fuel cell 10. (2) If the determination is to be carried out using a measured pressure, it is preferably determined that the fuel gas has remained in the fuel cell 10 in at least the quantity suitable for power generation if the fuel gas pressure Pfc is a predetermined limit pressure Pth or higher. If the fuel gas decreases, then the fuel gas pressure in the fuel cell 10 also decreases. The fuel gas pressure correlates directly with the remaining gas quantity. Thus, the state of the remaining gas can be accurately determined by comparing the fuel gas pressure P with the limit pressure to determine the presence of residual fuel gas. It should be noted that, although the hydrogen gas pressure of the hydrogen gas supply system is measured in this embodiment, the configuration can also be such that the oxidizer gas pressure of the oxidizer gas supply system is measured.
[0044] The converter drive means 203 is a functional block that drives the first converter 11 such that the output peak voltage Vfc_MAX of the fuel cell 10 becomes the first voltage V1 suitable to avoid deterioration of the fuel cell 10 if it is determined that at least the amount of fuel gas suitable for power generation remains in the fuel cell 10.
[0045] In fuel cell 10, the output voltage Vfc could rise to the open-circuit voltage OCV if the peak output voltage Vfc_MAX is not limited based on the drive of the first converter 11. However, if the output voltage Vfc rises to the open-circuit voltage OCV, negative effects such as deterioration of the electrolyte membrane of the unit cells of fuel cell 10 will occur. Therefore, the output voltage Vfc of fuel cell 10 should be controlled such that it reaches a predetermined voltage (hereinafter referred to as the "high-voltage avoidance voltage") Vh_LIM or less, which is suitably lower than the open-circuit voltage OCV, so that it does not rise to a voltage that would cause negative effects.
[0046] However, generally speaking, in an intermittent operating mode, the first converter 11 must be stopped. When the drive of the first converter 11 is stopped, the primary and secondary sides are electrically and directly connected in this embodiment. When the primary and secondary sides of the first converter 11 are directly connected, the primary-side voltage of the first converter 11 could rise to the secondary-side voltage, i.e., to the input voltage Vinv of the inverter 14. The input voltage Vinv of the inverter 14 is a voltage of the high-voltage system controlled by the second converter 14, and there are cases where this can be higher than the high-voltage avoidance voltage, even higher than the open-circuit voltage OCV of the fuel cell 10.Therefore, if a sufficient quantity of fuel gas for power generation remains in fuel cell 10, the output voltage Vfc must be prevented from rising to or exceeding the high-voltage avoidance voltage. Thus, if a sufficient quantity of fuel gas for power generation remains in fuel cell 10, the converter drive 203 controls the peak output voltage Vfc_Max of fuel cell 10 such that it becomes the first voltage V1 suitable for preventing deterioration of fuel cell 10. The first voltage V1 must be at least equal to or less than the high-voltage avoidance voltage Vh_LIM.
[0047] The converter stop device 204 is a functional block that stops the first converter 11 when it is determined that the amount of fuel gas remaining in the fuel cell 10 is insufficient to generate power. If the amount of fuel gas remaining in the fuel cell 10 falls below the amount sufficient to generate power, the output voltage Vfc of the fuel cell 10 will not increase, even if the upper limit of the peak output voltage Vfc is raised. Therefore, if it is determined that no fuel gas remains in the fuel cell 10, the converter stop device 204 stops the first converter 11. To stop the first converter 11, the converter stop device 204 issues a command C. FC_OFFThe drive is stopped at the first converter 11. Simultaneously with the cessation of operation, the primary and secondary sides of the first converter 11 are directly connected, and the voltage on the primary side rises to the input voltage Vinv of the inverter 14 on the secondary side. However, since the fuel gas is exhausted at this point, the output voltage Vfc of the fuel cell 10 does not rise.
[0048] It should be noted that, using a predefined limit value, it can be determined whether fuel gas is present in the fuel cell 10 in at least the quantity necessary for electricity or power generation. If the determination is performed using the output voltage Vfc (cell voltage) of the fuel cell 10, it is determined whether the output voltage Vfc has fallen to or below the predefined limit voltage Vth1. If the determination is performed using the fuel gas pressure of the fuel cell 10, it is determined whether the fuel gas pressure Pfc has fallen to or below the predefined limit pressure Pth.
[0049] The functions of the aforementioned converter drive element 203 and the converter stop element 204 are described below with reference to the Fig. 3 and Fig. 4 described in detail.
[0050] For normal operating mode, it is assumed that the peak output voltage Vfc_MAX of the first converter 11 is maintained at the specified voltage V0 to achieve suitable power or current generation. Based on the upper limit setting of the first converter 11, the output voltage Vfc of the fuel cell 10 is also around the specified voltage V0.
[0051] As described above, when the intermittent operating mode is activated, the first converter 11 must generally be stopped. If, for example, in Fig. As shown in Figure 4, with the intermittent operation flag, which indicates the intermittent operating mode, turned on, there should be no problem with the immediate switching from the ON state of the drive state of the first converter 11 to the OFF state, i.e., a stopped state. When the first converter 11 assumes the stopped state, as shown in Figure 4, the following should occur: Fig. As shown in Figure 4, the voltage on the primary side of the first converter 11 could rise to the voltage on the secondary side, i.e., the input voltage Vinv of the inverter 14. However, immediately after entering the intermittent operating mode, there is a small amount of residual fuel gas. Therefore, immediately after the first converter 11 stops, power is generated using the remaining fuel gas, and the actual output voltage Vfc of the fuel cell 10 rises suddenly, as shown in Figure 4. Fig. Figure 4 shows the input voltage Vinv of inverter 14 as the secondary voltage of the first converter 11. However, there are cases where the secondary voltage of the first converter 11 is higher than the high-voltage avoidance voltage Vh_LIM of the fuel cell 10. Therefore, the output voltage Vfc of the fuel cell 10 will exceed the avoidance voltage Vh_LIM. When the fuel gas is consumed by power generation, the output voltage Vfc gradually decreases. However, in the area B with the diagonal lines in Fig. 4 shown area, generates an output voltage Vfc which has negative effects on the fuel cell 10.
[0052] In contrast, as in Fig. 3 shown, in this embodiment, if it is determined that fuel gas remains in the fuel cell 10 in at least an amount suitable for power generation, the output peak voltage Vfc_MAX of the fuel cell 10 is controlled to become the first voltage V1 suitable to prevent the deterioration of the fuel cell 10 before the converter drive means 203 stops the first converter 11.
[0053] In particular, as in Fig. Figure 3 shows that even after entering intermittent operating mode and with the intermittent-operation flag set, the first converter 11 is not stopped immediately. Instead, a command C is executed. Vfc_V1Output to the first converter 11 causes the peak output voltage Vfc_MAX of fuel cell 10 to become the first voltage V1. Therefore, although sufficient fuel gas remains after entering intermittent operating mode, even when the fuel gas supply is stopped, the output voltage Vfc of fuel cell 10 does not rise to or above the first voltage V1. When the fuel gas remaining in fuel cell 10 is consumed and falls below the amount suitable for power generation, the output voltage Vfc begins to fall to or below the first voltage V1.
[0054] Furthermore, it stops, as in Fig. 3 shown, when the output voltage Vfc of the fuel cell 10 falls to or below the aforementioned predetermined limit voltage Vth1 (or limit pressure Pth), the converter stopping agent 204 stops the first converter 11.
[0055] It should be noted that if the peak output voltage Vfc_MAX of fuel cell 10 changes significantly after switching from normal operating mode to intermittent operating mode, processing (hereinafter referred to as "rate processing") can be performed to gradually change the peak output voltage Vfc_MAX. Fig. 3. Rate processing is applied for a short period (range A) to change the output peak voltage Vfc_MAX from the predetermined voltage V0 in normal operating mode to the first voltage V1 in intermittent operating mode. As a result of rate processing, it is possible to prevent damage to fuel cell 10 due to the sudden increase in output power. Rate processing can be implemented by limiting the rate of change of the output peak voltage Vfc_MAX to a constant value or less (or to a constant value).
[0056] The control device for intermittent operation 205 is a functional block that first drives the first converter 11 and then supplies the fuel gas when the output voltage Vfc of the fuel cell 10 reaches the threshold voltage Vth2 for fuel gas supply. If the output voltage Vfc of the fuel cell 10 drops excessively, the electrolyte membrane of the unit cells can be damaged. Therefore, the threshold voltage Vth2 is set as the voltage at which fuel gas is to be supplied, and a small amount of fuel gas is supplied when the output voltage Vfc drops to the threshold voltage Vth2. It should be noted that, instead of the threshold voltage Vth2, the pressure of the remaining fuel gas up to the threshold voltage Vth2 can be used as the threshold pressure.In addition, the fuel gas can also be supplied, for example, based on a process to open the (not shown) shut-off valve of the oxidation gas supply system of the fuel cell 10 and subsequently drive the compressor for a short period of time.
[0057] Here, the control unit for intermittent operation 205 controls the peak output voltage Vfc_MAX of the fuel cell 10 such that it becomes the second voltage V2, which is suitable to prevent deterioration of the fuel cell 10 after the first converter 11 is driven. Since the supply of the aforementioned fuel gas serves to supply fuel gas for power generation in the fuel cell 10, the output voltage Vfc of the fuel cell 10 increases as soon as the fuel gas is supplied. If this voltage exceeds the high-voltage avoidance voltage Vh_LIM, this has negative effects on the fuel cell 10. Therefore, the control unit for intermittent operation 205 sets the peak output voltage Vfc_MAX to the second voltage V2 after the first converter 11 is driven. The second voltage V2 must be set to a value that is not greater than the high-voltage avoidance voltage Vh_LIM.
[0058] The functions of the aforementioned tax instrument for intermittent operation 205 are explained in detail below with reference to the Fig. 5 and Fig. 6 described.
[0059] As in Fig. As shown in Figure 6, assume that the fuel gas is consumed over time and that the limiting voltage Vth2 for supplying fuel gas has been reached at time t2. The supply quantity of fuel gas is still zero (0). Here, as shown in Fig. Figure 6 shows that a certain quantity q of fuel gas is supplied while the first converter 11 is still stopped. Since this quantity q of fuel gas exceeds the amount suitable for power generation, the output voltage Vfc of the fuel cell 10 then rises dramatically. Here, the first converter 11 is in a stopped state, i.e., the primary and secondary sides are directly electrically connected, and it is possible for the output voltage Vfc to rise to the input voltage Vinv of the inverter 14 on the secondary side. Therefore, the output voltage Vfc of the fuel cell 10 rises to the voltage Vinv on the secondary side. If the voltage on the secondary side Vinv is greater than the high-voltage avoidance voltage Vh_LIM of the fuel cell 10, a voltage occurs that is undesirable for the electrolyte of the fuel cell 10.
[0060] Therefore, the control means for intermittent operation 205 of this embodiment activates the drive state of the first converter 11 before the supply of the fuel gas, as in Fig. 5 shown. In other words: When the output voltage Vfc reaches the limit voltage Vth2 at time t2, the control device for intermittent operation 205 first issues a command C FC_ON to start the drive of the first converter 11, and simultaneously issues a command C Vfc_V2The output voltage Vfc of fuel cell 10 is set to the second voltage V2, which is the output peak voltage Vfc_MAX. Subsequently, at time t3, after the output peak voltage Vfc_MAX on the primary side of the first converter 11 becomes the second voltage V2, a control is executed to supply the fuel gas in a certain quantity q. At the time the fuel gas is supplied, since the limiting of the output peak voltage Vfc_MAX is already in effect, the output voltage Vfc remains at the second voltage V2, which is not greater than the high-voltage avoidance voltage, even when the fuel gas is supplied.
[0061] The supply of fuel gas is stopped again at time t4, after a time period T has elapsed during which sufficient gas has been supplied to reduce the output voltage Vfc of the fuel cell 10 to a specific value. Afterwards, as described in Fig. 3 shows the first converter 11 being driven until the remaining amount of gas becomes an amount suitable for power generation or less, and the first converter is then stopped. (Operation)
[0062] The control processing of the fuel cell system 100 of the first embodiment, which is implemented by the aforementioned functional blocks, is described below with reference to the Fig. 7 and Fig. 8 described. The subsequent tax processing is a process that is repeated regularly or irregularly. For example, in this embodiment, it is assumed that a software program is used to execute the operations described in the Fig. 7 and Fig. The tax processing shown in section 8 is queried (called) for each specified tax cycle.
[0063] First, when the operating mode is switched to intermittent operating mode, the fuel gas supply stop agent 201 is deactivated. Fig. 2. The intermittent operation flag (switches this on) stops the supply of fuel gas. When the fuel gas supply is stopped, the fuel gas remaining in fuel cell 10 is gradually consumed.
[0064] The respective steps of Fig. Figure 7 shows the processing carried out by the determining agent for the remaining fuel gas quantity 202, the converter driving agent 203 and the converter stopping agent 204 of Fig. 2 is implemented. In step S10 of Fig. 7 determines the control device 20 whether the intermittent operation flag, which indicates that the operating mode is the intermittent operating mode, is switched on (set), and whether a fuel gas shortage determination flag, which indicates that the fuel gas is available in an amount suitable for power generation or less, is switched off.
[0065] In a state where the intermittent operation flag is not on (NO), the normal operating mode is present, and since this has nothing to do with the aforementioned processing, the routine resets the processing.
[0066] When the intermittent operation flag is turned on (set) and the fuel gas shortage determination flag is turned off (YES), this indicates that fuel gas is still present in at least a sufficient quantity to generate power. Immediately after entering intermittent operation mode, a plentiful supply of fuel gas remains due to the design, and therefore the fuel gas shortage determination flag is turned off. Therefore, processing continues with step S11, and the converter drive 203 issues a command C. Vfc_V1 off and sets the primary side voltage of the first converter 11, i.e. the output peak voltage Vfc_MAX, to the first voltage V1.
[0067] The processing then continues with step S12, and the remaining fuel gas determiner 202 determines whether the output voltage Vfc of fuel cell 10 is a fuel gas shortage determination threshold voltage Vth1 or less, which is used to determine whether fuel gas is present in a quantity suitable for power generation. As a result of the determination, if it is determined that the output voltage Vfc of fuel cell 10 is not equal to or less than the fuel gas shortage determination threshold voltage Vth1 (NO), i.e., a large quantity of fuel gas remains, the processing continues with step S15, and the converter drive 203 turns off the fuel gas shortage determination flag fl, indicating that fuel gas is present in a quantity suitable for power generation or less. The processing then continues with step S16, and the converter drive 203 issues the commands C FC_ON and CVfc_V1 The first converter 11 is driven and the output peak voltage Vfc_MAX is set to the first voltage V1. In this state, the consumption of fuel gas continues. When this process is performed a second time after entering intermittent operating mode, steps S 15 and 16 are executed as long as the remaining amount of fuel gas is greater than the amount suitable for power generation.
[0068] Furthermore, if in step S12 the determination is found to be that the output voltage Vfc of fuel cell 10 has fallen to the fuel gas shortage determination limit voltage Vth1 or less (JA), i.e., that the remaining quantity is no longer suitable for power generation, processing continues with step S13 and the converter stop device 204 (sets) activates the fuel gas shortage determination flag fl. Subsequently, processing continues with step S14, and the converter stop device 204 issues a command C. FC_OFF off and stops the first converter 11.
[0069] After steps S16 and S14 are completed, the processing is reset.
[0070] The respective steps from Fig. Figure 8 shows the processing carried out by the tax credit for intermittent operation 205 from Fig. 2 is implemented. In step S 20 of Fig.Step 8 determines whether the intermittent operation flag is set. If the intermittent operation flag is set (YES), processing continues with step S21, and the intermittent operation control 205 determines whether the output voltage Vfc of fuel cell 10 is below the threshold voltage Vth2 for the minimum required fuel gas supply. If the threshold voltage Vth2 is not reached (NO), processing is reset, as this means that the remaining gas quantity has not decreased to a value that would have negative effects on fuel cell 10.
[0071] If the determination in step S21 shows that the fuel gas supply determination limit voltage Vth2 has been reached or fallen below (YES), this means that the remaining gas quantity has decreased to a value that has negative effects on the fuel cell 10. Therefore, the processing continues with step S22, and the intermittent operation control device 205 first issues a command C. FC_ON out and controlled the activation of the first converter 11. Subsequently, processing continues with step S23 and the intermittent operation control unit 205 issues a command C. Vfc_V2The process then switches off and sets the output peak voltage Vfc_MAX of the first converter to the second voltage V2 as the deterioration avoidance voltage. The processing then continues with step S24, and the intermittent operation control unit 205 determines whether the output peak voltage Vfc_MAX of the first converter 11 has reliably reached the second voltage V2. If the determination confirms that the output peak voltage Vfc_MAX of the first converter 11 has reached the second voltage V2 (YES), the processing continues with step S25, and the intermittent operation control unit 205 starts the fuel gas supply. If the determination shows that the output peak voltage Vfc_MAX of the first converter 11 has not yet reached the second voltage V2 (NO), the processing is reset again to wait until the output peak voltage Vfc_MAX of the first converter 11 has reached the second voltage V2. (Advantages of the first embodiment)
[0072] The following advantages are achieved with the first embodiment. (1) According to this embodiment, since the first converter is not stopped when it is determined that fuel gas remains in at least an amount suitable for power generation, the upper limit of the output voltage Vfc of the fuel cell 10 is effectively set by the peak output voltage Vfc_MAX. This makes it possible to prevent adverse effects on the fuel cell 10. (2) According to this embodiment, since the output voltage Vfc of the fuel cell 10 is capped at the first voltage V1, which is not greater than the high-voltage avoidance voltage Vh_LIM, it is possible to prevent the deterioration of the fuel cell if it is determined that fuel gas remains at least in an amount suitable for power generation. (3) According to this embodiment, it is possible to determine exactly the state of the remaining fuel gas, since it is determined that fuel gas remains at least in an amount suitable for power generation when the output voltage Vfc of the fuel cell 10 is a predetermined limit voltage Vth1 or more. (4) According to this embodiment, it is ensured that at least the quantity of fuel gas suitable for power generation remains when the fuel gas pressure is a predetermined limit pressure Pth or higher. Therefore, it is possible to determine the exact state of the remaining fuel gas. (5) According to this embodiment, since the first converter 11 is only stopped when it is determined that no quantity of fuel gas suitable for power generation remains in the fuel cell 10, it is possible to effectively reduce the consumed voltage while avoiding the disadvantage associated with the voltage increase. (6) According to this embodiment, when the output voltage Vfc of the fuel cell 10 reaches the limit voltage Vth2 for supplying the fuel gas, the first converter 11 is driven first, followed by the supply of the fuel gas. Since the upper limit of the output voltage Vfc of the fuel cell 10 is set by the peak output voltage Vfc_MAX as soon as the output voltage begins to rise due to the supply of fuel gas, it is possible to prevent the output voltage Vfc from reaching the high-voltage avoidance voltage Vh_LIM. (7) According to this embodiment, since the output peak voltage Vfc_MAX is set to the second voltage V2 before the fuel gas is supplied after the first converter 11 is driven, it is possible to prevent the output voltage Vfc from reaching the high voltage avoidance voltage Vh_LIM. (Variations)
[0073] The present invention is not limited to the embodiments described above but can be modified and adapted as needed, as long as it does not deviate from the core of the invention.
[0074] For example, in the foregoing embodiments, the present invention was applied to a fuel cell system with the first converter 11, the second converter 12, and the inverter 14, but is not limited to this configuration. The present invention can also be applied to a system comprising only one DC-DC converter or to a fuel cell system with three or more DC-DC converters.
[0075] Although the residual amount of hydrogen gas was measured in the aforementioned embodiment, the amount of oxidation gas can also be measured. Furthermore, both the residual amount of hydrogen gas and the residual amount of oxidation gas can be measured.
[0076] Although oxidizer gas was used as the fuel gas in the aforementioned embodiment during periods of fuel gas shortage, it is possible to supply hydrogen gas. Furthermore, both oxidizer gas and hydrogen gas can be supplied. Commercial applicability
[0077] The fuel cell system according to the invention, as well as the control method therefor, can also be mounted and used for other movable bodies without being limited to vehicles. Such movable bodies can be considered to be trains, ships, aircraft, submarines, and the like. Furthermore, without being limited to a movable body such as a vehicle, the present invention can also be used for stationary power systems or portable power systems. Reference symbol list 10 Fuel cell, 11 first converter, 12 second converter, 13 Battery, 14 inverters, 15 engine, 16 Differential, 17 tires, 18 auxiliary inverters, 19 High-voltage auxiliary machine, 20 Control device, 21 Pressure sensor, 22 cell monitoring device, 23 groups with different sensors, 24 Speed sensor, 100 fuel cell systems, 201 fuel gas supply stopper, 202 Determining means for the remaining quantity of fuel gas, 203 Converter propellant, 204 Converter stop agent, 205 tax revenues for intermittent operation, N Engine speed, S N Speed signal S P Pressure detection signal, S V Voltage detection signal, Vfc output voltage of the fuel cell 10, Vinv input voltage of the inverter 14, Vfc_MAX peak output voltage of the first converter 11, Vh_LIM High Voltage Avoidance Voltage, OCV open circuit voltage, C Vfc Control command for the first converter 11, C Vinv Drive control command for the second converter 12
Claims
[1] Fuel cell system (100), comprising: a fuel cell (10); a converter (11) connected between the fuel cell (10) and a high-voltage system, and which sets an output peak voltage of the fuel cell (10); and a control device (20) that controls the fuel cell (10) and the converter (11), wherein, if it is determined that at least a sufficient quantity of fuel gas for power generation remains in the fuel cell (10) during an operating mode for temporarily halting the power generation of the fuel cell (10), the control device (20) prevents the converter (11) from being temporarily stopped, and wherein, when the output voltage of the fuel cell (10) reaches a limit voltage for supplying the fuel gas, the converter (11) is driven first, and then the fuel gas is supplied. [2] Fuel cell system (100) according to claim 1, wherein, when it is determined that at least a sufficient quantity of fuel gas for power generation remains in the fuel cell (10), the converter (11) is controlled such that the output peak voltage of the fuel cell (10) becomes a first voltage suitable to avoid deterioration of the fuel cell (10). [3] Fuel cell system (100) according to claim 1, wherein, if an output voltage of the fuel cell (10) is a predetermined limit voltage or higher, it is determined that at least the amount of fuel gas sufficient to generate power remains. [4] Fuel cell system (100) according to claim 1, wherein, if the pressure of the fuel gas is a predetermined limit pressure or more, it is determined that at least the amount of fuel gas sufficient to generate power remains. [5] Fuel cell system (100) according to any one of claims 1 to 4, wherein the converter (11) is temporarily stopped when it is determined that not at least the amount of fuel gas sufficient to generate power remains in the fuel cell (10). [6] Fuel cell system (100) according to claim 1, wherein the converter (11) is controlled such that the output peak voltage of the fuel cell (10) becomes a second voltage suitable to avoid deterioration of the fuel cell (10). [7] Fuel cell system (100), comprising: an inverter (14) connected to a charging device; a first converter (11) which is connected between a fuel cell (10) and the inverter (14) and which sets an output peak voltage of the fuel cell (10); a second converter (12) connected between an electrical storage device and the inverter (14), which sets an input voltage of the inverter (14); and a control device (20) that controls the first converter (11) and the second converter (12), wherein, if it is determined that at least a sufficient quantity of fuel gas for power generation remains in the fuel cell (10) during an operating mode for temporarily halting the power generation of the fuel cell (10), the control device (20) prevents the first converter (11) from being temporarily stopped. [8] Fuel cell system (100) comprising a fuel cell (10) and a converter (11) connected between the fuel cell (10) and a high-voltage system, which sets an output peak voltage of the fuel cell (10), comprising: a fuel gas supply stopping device (201) for stopping the supply of fuel gas to the fuel cell (10) in an operating mode for temporarily stopping the power generation of the fuel cell (10); a means of determining the remaining quantity of fuel gas (202) to determine whether at least a sufficient quantity of fuel gas for power generation remains in the fuel cell (10), a converter drive means (203) for driving the converter (11) such that, when it is determined that at least a sufficient quantity of fuel gas for power generation remains in the fuel cell (10), the output peak voltage of the fuel cell (10) becomes a first voltage suitable to avoid deterioration of the fuel cell (10), and a converter stopping device (204) for temporarily stopping the converter (11) when it is determined that at least the amount of fuel gas sufficient to generate power does not remain in the fuel cell (10). wherein, when the output voltage of the fuel cell (10) reaches a limit voltage for supplying the fuel gas, the converter (11) is driven first, and then the fuel gas is supplied. [9] Fuel cell system (100) according to claim 8, further comprising: a control device for intermittent operation (205) to first drive the converter (11) and then supply the fuel gas when the output voltage of the fuel cell (10) reaches a limit voltage for supplying the fuel gas. [10] Method for controlling a fuel cell system (100) with a fuel cell (10) and a converter (11) connected between the fuel cell (10) and a high-voltage system and setting an output peak voltage of the fuel cell (10), comprising the following steps: Stopping the supply of fuel gas to the fuel cell (10) in an operating mode for temporarily stopping the power generation of the fuel cell (10); Determine whether at least the amount of fuel gas sufficient to generate power remains in the fuel cell (10); Driving the converter (11) such that, when it is determined that at least a sufficient quantity of fuel gas for power generation remains in the fuel cell (10), the output peak voltage of the fuel cell (10) becomes a first voltage suitable to prevent deterioration of the fuel cell (10); and temporary stopping of the converter (11) if it is determined that at least the amount of fuel gas sufficient for power generation does not remain in the fuel cell (10). the procedure further exhibits: first, drive the converter (11) when the output voltage of the fuel cell (10) reaches a threshold voltage for supplying the fuel gas; and subsequent supply of the fuel gas after the converter (11) is driven.
Citation Information
Patent Citations
Fuel cell system and method for removing residual fuel gas
US20060216555A1
JP002008004482A