Fuel Cell Power Generation Equipment

The fuel cell power plant addresses gas and moisture removal challenges by using a heating device and control system to automate degassing and dehydration, improving thermal oil performance and reducing start-up time.

JP7679707B2Active Publication Date: 2025-05-20FUJI ELECTRIC CO LTD
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Patent Information

Application Number
JP2021102937
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-06-22
Publication Date
2025-05-20
Estimated Expiration
2041-06-22

AI Technical Summary

Technical Problem

Conventional fuel cell systems face challenges in effectively removing gas and moisture from the cooling system, leading to issues like cavitation in circulation pumps, temperature fluctuations, abnormal pressure rises, and deterioration of thermal oil performance.

Method used

A fuel cell power plant design incorporating a heating device, shutoff valve, and control device to remove gas and moisture by heating and releasing them through an expansion tank, with automated control for efficient degassing and dehydration processes.

Benefits of technology

Effectively removes gas and moisture from the cooling system, enhancing thermal oil performance and reducing start-up time, while automating the dehydration process for labor savings and improved operational efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

To provide a fuel cell power generation device capable of removing gases and moisture from a cooling system.SOLUTION: A fuel cell power generation device comprises: a fuel cell; a cooling system that supplies heating medium oil to the fuel cell; a pump provided on the cooling system to circulate the heating medium oil to the cooling system; a tank provided at a top of the cooling system to store the heating medium oil; heating equipment for heating the heating medium oil between an outlet of the fuel cell and a suction port of the pump; a cutoff valve connected with an upper space in the tank where gases are collected; and a control device that opens the cutoff valve to discharge gases and water in the cooling system from the cutoff valve via the tank.SELECTED DRAWING: Figure 1
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Description

[Technical field]

[0001] The present disclosure relates to fuel cell power plants. [Background technology]

[0002] 2. Description of the Related Art A fuel cell power generation system is known that prevents a decrease in the amount of power generation by removing gas that has accumulated in a coolant passage of a fuel cell stack when the fuel cell is started up (see, for example, Patent Document 1). [Prior art documents] [Patent documents]

[0003] [Patent Document 1] JP 2007-280748 A Summary of the Invention [Problem to be solved by the invention]

[0004] Thermal oil such as insulating oil or water such as pure water is often used as a heat transfer medium to be passed through the cooling system of a fuel cell. When using thermal oil as a heat transfer medium, it is necessary to remove the gas remaining in the cooling system when starting up the fuel cell, as well as the moisture that has condensed in the cooling system and the water remaining in the cooling system. If gas and moisture are mixed into the cooling system, for example, the following problems are likely to occur.

[0005] Damage caused by cavitation in circulation pumps - Fluctuations in the temperature of thermal oil due to fluctuations in the flow rate of thermal oil - Abnormal pressure rise in the cooling system -Deterioration of heat transfer performance of thermal oil - Deterioration of heat transfer performance and insulation due to deterioration of thermal oil etc.

[0006] However, with conventional technology, it is not easy to sufficiently remove the gas and moisture that cause these problems from the cooling system. Since gas and liquid have different phases (gas phase and liquid phase) at room temperature and different thermodynamic properties, degassing and dehydration fundamentally differ in the methods of removing substances.

[0007] The present disclosure provides a fuel cell power plant that is capable of removing gas and moisture from the cooling system. [Means for solving the problem]

[0008] In one aspect of the present disclosure, A fuel cell; a cooling system for supplying thermal oil to the fuel cell; a pump provided in the cooling system for circulating the thermal oil through the cooling system; A tank provided at the top of the cooling system for storing the thermal oil; a heating device for heating the thermal oil between an outlet of the fuel cell and a suction port of the pump; a shutoff valve connected to an upper space in which gas accumulates in the tank; a control device that opens the shutoff valve so that gas and water in the cooling system are released from the shutoff valve through the tank. Effect of the Invention

[0009] According to one aspect of the present disclosure, gas and moisture can be removed from a cooling system. [Brief description of the drawings]

[0010] [Figure 1] 1 is a diagram showing an example of the configuration of a fuel cell power generating device according to a first embodiment; [Diagram 2] 4 is a flowchart showing an example of a start-up method for the fuel cell power generator according to the first embodiment. [Diagram 3] 10 is a flowchart showing an example of a method for calculating a time required for evaporation from the amount of condensed water. [Figure 4]FIG. 11 is a diagram showing an example of the configuration of a fuel cell power generating device according to a second embodiment. [Diagram 5] 10 is a flowchart showing an example of a start-up method for a fuel cell power generator according to a second embodiment. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0011] An embodiment will be described below.

[0012] Fig. 1 is a diagram showing an example of the configuration of a fuel cell power generation system according to the first embodiment. The fuel cell power generation system 11 shown in Fig. 1 is a system that introduces a fuel gas and an oxidizing gas and converts them into electrical energy. The fuel cell power generation system 11 includes, for example, a fuel cell 13, a DC-AC converter 12, a cooling system 27, a pump 28, a heater 19, a temperature sensor 17, an expansion tank 24, an oil level gauge 21, a pressure sensor 23, a shutoff valve 29, a control device 20, a temperature sensor 18, and a bypass path 26.

[0013] The fuel cell 13 is a device that electrochemically converts the chemical energy of fuel such as hydrogen or methanol into electrical energy. The fuel cell 13 has a fuel electrode 14, an air electrode 15, and a cooling plate 16. The fuel cell 13 generates electricity through an electrochemical reaction between hydrogen or hydrogen-rich gas supplied to the fuel electrode 14 and oxygen contained in reaction air supplied to the air electrode 15 by an air blower 22. The heat generated by the power generation of the fuel cell 13 is removed by the cooling plate 16 incorporated in the cell stack, and the temperature of the fuel cell 13 is maintained at a predetermined operating temperature.

[0014] The fuel cell 13 has an inlet 13b through which thermal oil for cooling the fuel cell 13 is introduced, and an outlet 13a through which the thermal oil is discharged after passing through a cooling plate 16 of the fuel cell 13. The heat generated in the fuel cell 13 is released together with the thermal oil discharged from the cooling plate 16 to the outlet 13a.

[0015] The DC-AC converter 12 is a DC-AC converter that converts the DC power obtained by power generation in the fuel cell 13 into AC power and supplies it to a load (not shown). The DC-AC converter 12 may be replaced with a DC-DC converter that converts the voltage of the DC power obtained by power generation in the fuel cell 13 into DC power of a different voltage and supplies it to a load (not shown).

[0016] The cooling system 27 is a cooling circuit that supplies thermal oil such as insulating oil to the fuel cell 13. The cooling system 27 includes, for example, a cooling plate 16 provided in the fuel cell 13, an outlet path 27a connecting the outlet 13a of the fuel cell 13 and the suction port 28a of the pump 28, and an inlet path 27b connecting the discharge port 28b of the pump 28 and the inlet 13b of the fuel cell 13. The thermal oil discharged from the discharge port 28b of the pump 28 to the inlet path 27b circulates through the cooling system 27.

[0017] The pump 28 is a circulation pump provided in the cooling system 27, and circulates the thermal oil through the cooling system 27. The pump 28 has a suction port 28a which is an inlet for the thermal oil, and a discharge port 28b which is an outlet for the thermal oil. The pump 28 is operated by a motor (not shown) controlled by the control device 20.

[0018] The heater 19 is an example of a heating device that heats the thermal oil between the outlet 13a of the fuel cell 13 and the suction port 28a of the pump 28. The heater 19 is, for example, a circulation heater provided in the outlet path 27a between the outlet 13a and the suction port 28a, and heats the thermal oil flowing in the outlet path 27a. The heating device that heats the thermal oil in the cooling system 27 is not limited to a heater such as a circulation heater, and may be other heating equipment such as a start-up burner.

[0019] The temperature sensor 17 measures the temperature T of the thermal oil between the heater 19 and the suction port 28a, and outputs a sensor signal corresponding to the measured temperature T to the control device 20. The temperature sensor 17 is provided, for example, in a path portion between the outlet of the heater 19 and the suction port 28a of the pump 28 in the outlet path 27a, and measures the temperature T of the thermal oil that has passed through the outlet of the heater 19. In the example shown in FIG. 1, the temperature sensor 17 measures the temperature T between the expansion tank 24 and the heater 19.

[0020] The expansion tank 24 branches off from the outlet path 27a of the cooling system 27 and is connected to the outlet path 27a downstream of the heater 19. The expansion tank 24 has, for example, a function of absorbing the expansion or contraction of the thermal oil and a function of releasing gas generated in the thermal oil and discharging it into the atmosphere. The expansion tank 24 is provided at the top of the cooling system 27 and is installed, for example, so that the liquid level L of the thermal oil stored in the expansion tank 24 is higher than the uppermost cooling plate 16 (FIG. 1 shows the position on the circuit and does not show the actual installation position).

[0021] The oil level gauge 21 is a level gauge that measures the liquid level L of the thermal oil in the expansion tank 24 and outputs a measurement result signal corresponding to the measured liquid level L to the control device 20.

[0022] The pressure sensor 23 measures the pressure P of the upper space in the expansion tank 24 where the gas accumulates, and outputs a sensor signal corresponding to the measured pressure P to the control device 20.

[0023] The shutoff valve 29 is connected to an upper space in which gas accumulates within the expansion tank 24, and is driven to open and close by the control device 20. The shutoff valve 29 may be an electromagnetically driven valve or an air-driven valve.

[0024] The control device 20 is a controller that increases or decreases the flow rate of thermal oil flowing through the cooling system 27 in accordance with the temperature measured by the temperature sensor 17. The control device 20 can increase or decrease the flow rate of thermal oil passing through the heater 19 in the cooling system 27, for example, by increasing or decreasing the flow rate of thermal oil discharged from the discharge port 28b of the pump 28 to the inlet path 27b of the cooling system 27 in accordance with the temperature T measured by the temperature sensor 17. The control device 20 is, for example, a programmable logic controller (PLC).

[0025] The control device 20 energizes the heater 19 to heat the thermal oil, and deenergizes the heater 19 to stop heating the thermal oil by the heater 19. The control device 20 controls the operation of the pump 28, and more specifically, controls an inverter that drives a motor that drives the pump 28.

[0026] The functions of the control device 20 may be realized by a processor such as a CPU (Central Processing Unit) operating according to a program stored in a memory. The functions of the control device 20 may be realized by a Field Programmable Gate Array (FPGA) or an Application Specific Integrated Circuit (ASIC).

[0027] When the fuel cell power generation system 11 is started up or when the temperature of the heat medium flowing through the cooling system 27 is below a predetermined temperature threshold, the control device 20 heats the heat medium flowing through the cooling system 27 using the heater 19, thereby quickly warming up the fuel cell 13.

[0028] The temperature sensor 18 measures the temperature t of the thermal oil between the discharge port 28b of the pump 28 and the inlet 13b of the fuel cell 13, and outputs a sensor signal corresponding to the measured temperature t to the control device 20. The temperature sensor 18 is provided, for example, in a path portion between the discharge port 28b of the pump 28 and the inlet 13b of the fuel cell 13 in the inlet path 27b, and measures the temperature t of the thermal oil just before it enters the inlet 13b.

[0029] The control device 20 controls the flow rate of the thermal oil flowing through the cooling system 27 in accordance with the temperature t measured by the temperature sensor 18, and increases or decreases the lower limit of the flow rate of the thermal oil flowing through the cooling system 27 in accordance with the temperature T measured by the temperature sensor 17. This makes it possible to adjust the flow rate of the thermal oil flowing through the cooling system 27 in accordance with the temperature t on the inlet 13b side of the fuel cell 13, and to adjust the lower limit of the flow rate of the thermal oil flowing through the cooling system 27 in accordance with the temperature T on the outlet side of the heater 19.

[0030] The fuel cell power generation system 11 may include a bypass path 26 connected in parallel to the pump 28. The bypass path 26 is a circulation path whose inlet side is connected to the discharge port 28b and whose outlet side is connected to the suction port 28a. The bypass path 26 is provided with a control valve 25 and a heat exchanger 31. The cooling system 27 is formed so that a part of the heat transfer oil discharged from the pump 28 is sent to the cooling plate 16 of the fuel cell 13, and the remaining heat transfer oil is returned to the suction port 28a side of the pump 28 via the heat exchanger 31 and the control valve 25 on the bypass path 26.

[0031] The control device 20 adjusts the temperature of the thermal oil flowing through the cooling system 27 by controlling the aperture of the regulating valve 25 in accordance with the temperature t of the thermal oil measured by the temperature sensor 18. The control device 20 can control the temperature t of the thermal oil measured by the temperature sensor 18 to a predetermined target temperature, for example, by controlling the aperture of the regulating valve 25. In this way, the control device 20 can adjust the temperature of the fuel cell 13 to a target temperature corresponding to the power generation current of the fuel cell 13.

[0032] The heat exchanger 31 is supplied with an external heat medium such as external cooling water and exchanges heat with the heat transfer oil flowing in the bypass path 26. The external heat medium is heat exchanged by passing through a heat exchanger 36 and is supplied to a radiator 38. The radiator 38 is, for example, a cooler that air-cools the external heat medium using a fan or the like. The external heat medium whose temperature has been reduced by the radiator 38 is supplied to the heat exchanger 31.

[0033] 2 is a flow chart showing an example of a start-up method of the fuel cell power generation system according to the first embodiment. When the fuel cell power generation system 11 is started by turning on the main power supply (step S11), the control device 20 operates an oil supply pump (not shown) to fill the cooling system 27 with thermal oil (step S15) with the shutoff valve 29 open (step S13). In step S15, the control device 20 operates the oil supply pump (not shown) until the liquid level L of the thermal oil in the expansion tank 24 measured by the oil level gauge 21 reaches or exceeds a certain level. The oil supply pump is a pump that supplies thermal oil to the cooling system 27 from outside the cooling system 27.

[0034] In step S17, the control device 20 removes gas contained in the thermal oil in the cooling system 27 at room temperature with the shutoff valve 29 open (room temperature degassing step). For example, the control device 20 operates the pump 28 so that the thermal oil circulates through the cooling system 27, thereby degassing the thermal oil in the cooling system 27 at room temperature for a degassing time Tg that is predetermined by a timer. In this way, the control device 20 can circulate the thermal oil in the cooling system 27 and release the gas contained in the thermal oil from the shutoff valve 29 via the expansion tank 24.

[0035] In step S19, the control device 20 removes gas contained in the thermal oil in the cooling system 27 at a high temperature with the shutoff valve 29 open (heating and degassing process). For example, the control device 20 operates the heater 19 that heats the thermal oil in the cooling system 27 to heat the thermal oil and degas it at a high temperature. This allows the control device 20 to warm up the thermal oil and release the gas contained in the thermal oil from the shutoff valve 29 via the expansion tank 24. In other words, the heating and degassing process can be used as a process for warming up the thermal oil and the fuel cell 13, so the start-up time of the fuel cell 13 can be shortened.

[0036] In step S21, the control device 20 removes moisture contained in the thermal oil in the cooling system 27 at a high temperature with the shutoff valve 29 open (heating and dehydration process). For example, the control device 20 operates the heater 19 that heats the thermal oil in the cooling system 27 to heat the thermal oil and dehydrate it at a high temperature. As a result, the control device 20 can warm up the thermal oil and release the steam of the moisture contained in the thermal oil from the shutoff valve 29 via the expansion tank 24. In other words, the heating and dehydration process can be used as a process for warming up the thermal oil and the fuel cell 13, so the start-up time of the fuel cell 13 can be shortened.

[0037] In step S23, controller 20 determines whether or not to continue the heating dehydration process of step S21 (dehydration continuation determination step). Controller 20 determines whether or not to continue the heating dehydration process by, for example, determining whether temperature T measured by temperature sensor 17 has risen to or above a predetermined temperature threshold.

[0038] In step S23, the control device 20 may determine whether or not to continue by judging whether the temperature T measured by the temperature sensor 17 while the thermal oil is being heated by the heater 19 has risen to or above a predetermined temperature threshold value after remaining in a constant state for a predetermined time or more. This is because a constant state (temperature-maintained state) for a predetermined time or more represents a state in which the heating energy from the heater 19 is being used to dehydrate the thermal oil, and an increase in temperature T after the temperature-maintained state can be regarded as indicating that most of the moisture contained in the thermal oil has evaporated.

[0039] In step S23, the control device 20 may determine whether or not the temperature-raising and dehydration process in step S21 needs to be continued by determining whether or not a predetermined heating time Th has elapsed since the start of heating the thermal oil by the heater 19. The heating time Th is counted by a timer or the like. The heating time Th is a time that is set in advance, and an example of its calculation will be described later.

[0040] In step S23, when the controller 20 determines that the temperature increasing dehydration process needs to be continued, the controller 20 continues the temperature increasing dehydration process (step S21). On the other hand, when the controller 20 determines that the temperature increasing dehydration process does not need to be continued, the controller 20 closes the shutoff valve 29 (step S25) and stops heating the thermal oil by the heater 19, thereby completing the temperature increasing dehydration process (step S27).

[0041] After completing the temperature-raising dehydration process, the controller 20 proceeds to the power generation process in step S29, and causes the fuel cell 13 to start power generation.

[0042] In this way, according to the first embodiment, it is possible to remove not only gas but also moisture from the cooling system 27.

[0043] Next, an example of calculating the heating time Th will be described.

[0044] FIG. 3 is a flow chart showing an example of a method for calculating the time required for evaporation from the amount of condensed water. The heating time Th may be set to a time equal to or longer than the "time required for evaporation" calculated by this method. The method shown in FIG. 3 may be executed by the control device 20, which may automatically set the heating time Th based on the calculated time. Alternatively, a person may calculate the "time required for evaporation" in advance according to the method shown in FIG. 3, and derive the heating time Th based on the calculated time. The derived heating time Th is reflected in advance in the memory and program of the control device 20.

[0045] For example, when the temperature difference between 40°C and 0°C is 40°C, the difference in the amount of saturated water vapor in the air from the relative humidity [g / m 3 ] is 46.27(=51.12-4.85) [g / m 3 ] is calculated as 46.27 [g / m 3 ] with the internal volume of the cooling system 27 being 0.16 [m 3], the amount of condensation is calculated as 7.4 [g] (step S31). In step S33, the amount of condensation is multiplied by the specific heat and the temperature difference K when heating to 100°C to calculate the amount of heat [kJ] required to evaporate the condensed water (0.0074 [kg] × 4.186 [kJ / kgK] × 100 [K] = 3.097 [kJ]).

[0046] On the other hand, the capacity of the heater 19 is 25 [kW], the specific heat of water is 4.186 [kJ / kgK], the specific heat of the thermal oil is 1.8 [kJ / kgK], and the mass of the thermal oil is 160 [kg]. In this case, in step S35, the amount of heat per unit time that the capacity of the heating equipment such as the heater 19 contributes to the evaporation of water in the thermal oil is calculated to be 2.7 [J / s] (25 [kW] × (0.0074 × 4.186 / (160 × 1.8 + 0.0074 × 4.186) = 0.0027 [kW] = 2.7 [W] = 2.7 [J / s]).

[0047] Therefore, in step S37, the time required for evaporation (heating time Th) from the amount of condensed water is calculated to be 19 minutes (3.097 [kJ] / 0.0027 [kJ / s] / 3600=0.32 [h]=19 [min]).

[0048] FIG. 4 is a diagram showing a configuration example of a fuel cell power generation device according to a second embodiment. In the second embodiment, the description of the configuration, action, and effect similar to those of the first embodiment will be omitted or simplified by invoking the above description. The fuel cell power generation device 41 shown in FIG. 4 includes a suction pump 42, a moisture measuring device 43, and a purge valve 44.

[0049] The suction pump 42 is a pump that reduces the pressure in the cooling system 27, lowers the relative humidity, and sucks out evaporated moisture before the process of filling the cooling system 27 with thermal oil. The suction pump 42 is operated by a motor (not shown) controlled by the control device 20.

[0050] The moisture measuring device 43 measures the moisture content in the piping on the output side of the suction pump 42, and outputs a sensor signal corresponding to the measured moisture content to the control device 20. Specific examples of the moisture measuring device 43 include a dew point meter and a moisture analyzer.

[0051] The purge valve 44 is a shutoff valve that injects an inert dry gas (e.g., nitrogen) into the cooling system 27 to exhaust steam from the cooling system 27. The purge valve 44 is connected to, for example, a path portion between the heater 19 and the outlet 13a of the outlet path 27a, and injects the inert dry gas into the cooling system 27 from that path portion.

[0052] 5 is a flowchart showing an example of a start-up method for the fuel cell power generation system according to the second embodiment. When the control device 20 starts up the fuel cell power generation system 41 by turning on the main power supply (step S41), it starts dehydrating the thermal oil in the cooling system 27 with the shutoff valve 29 closed (step S43).

[0053] In step S45, the control device 20 operates the suction pump 42 before filling the cooling system 27 with thermal oil, thereby reducing the pressure in the cooling system 27, lowering the relative humidity, and causing the suction pump 42 to suck out evaporated moisture from the cooling system 27. For example, when the pressure is reduced to one-fifth of atmospheric pressure and the volume expands five-fold, the relative humidity becomes approximately one-fifth, or 20% of the saturated state.

[0054] In step S47, the control device 20 judges whether or not a predetermined depressurization time Tdp has elapsed since the start of depressurization by the suction pump 42. The depressurization time Tdp is calculated, for example, based on the difference in vapor pressure between water and thermal oil. If the predetermined depressurization time Tdp has not elapsed, the control device 20 continues depressurization by the suction pump 42 (step S45). On the other hand, if the predetermined depressurization time Tdp has elapsed, the control device 20 performs the judgment process of step S49.

[0055] In step S49, the control device 20 determines whether the moisture content measured by the moisture meter 43 is less than a predetermined allowable amount Wa. The allowable amount Wa is set, for example, to a moisture content that is allowable in terms of the performance of the thermal oil. If the moisture content is equal to or greater than the allowable amount Wa, the control device 20 continues depressurization by the suction pump 42 (step S45). On the other hand, if the moisture content is less than the allowable amount Wa, the control device 20 performs the process of step S51.

[0056] In step S51, the control device 20 switches the purge valve 44 from closed to open in order to perform purging by injecting an inert dry gas such as nitrogen into the cooling system 27 to flush out impurities in the thermal oil.

[0057] In step S53, the controller 20 determines whether a predetermined purge time Tp has elapsed since the start of purging. If the predetermined purge time Tp has not elapsed, the controller 20 continues the depressurization by the suction pump 42 (step S45). On the other hand, if the predetermined purge time Tp has elapsed, the controller 20 switches the purge valve 44 from open to closed (step S55), stops the depressurization by the suction pump 42, and completes the spin-drying process (step S57).

[0058] In step S59, the controller 20 operates an oil supply pump (not shown) to fill the cooling system 27 with thermal oil, similar to step S15 in Fig. 2, with the shutoff valve 29 open. In step S61, the controller 20 degasses the thermal oil at room temperature, similar to step S17 in Fig. 2. In step S63, the controller 20 raises the temperature of the thermal oil and degasses it at a high temperature, similar to step S19 in Fig. 2. After completing the temperature raising and dehydration process, the controller 20 proceeds to the power generation process in step S65 and starts power generation by the fuel cell 13.

[0059] In this way, according to the second embodiment, it is possible to remove not only gas but also moisture from the cooling system 27.

[0060] Furthermore, in conventional fuel cell power generation systems that use thermal oil such as insulating oil, workers would go to the site during the dehydration process, and labor would be required for adjustment work for the dehydration process each time. In contrast, the fuel cell power generation device and start-up method thereof according to the first and second embodiments automates dehydration and detection of completion of dehydration, making it possible to automate the dehydration process. By automating the dehydration process, for example, - Labor saving for dehydration adjustment work -Reduction of dehydration work errors (incomplete dehydration, human error) -Reduces the time and effort required for changing dehydration work setup -Remote startup - Realization of fully automatic operation according to the start-up sequence The following effects can be obtained:

[0061] Although the embodiments have been described above, the technology of the present disclosure is not limited to the above-described embodiments. Various modifications and improvements, such as combinations with or substitutions for part or all of other embodiments, are possible. [Explanation of symbols]

[0062] 11 Fuel cell power generation equipment 12 DC-AC converter 13 Fuel Cell 13a Exit 13b Entrance 14 Fuel electrode 15 Air pole 16 Cooling plate 17 Temperature Sensor 18 Temperature Sensor 19 Heater 20 Control device 21 Oil level gauge 22 Air Blower 23 Pressure Sensor 24 Expansion tank 25 Control valve 26 Bypass Route 27 Cooling system 27a Exit Route 27b Entrance route 28 Pump 28a Intake port 28b Outlet 29 Shut-off valve 31 Heat exchanger 36 Heat exchange equipment 38 Heat sink 41 Fuel cell power generation equipment 42 Suction Pump 43 Moisture Meter 44 Purge valve

Claims

1. A fuel cell; a cooling system for supplying thermal oil to the fuel cell; a pump provided in the cooling system for circulating the thermal oil through the cooling system; A tank provided at the top of the cooling system for storing the thermal oil; a heating device for heating the thermal oil between an outlet of the fuel cell and a suction port of the pump; a shutoff valve connected to an upper space in which gas accumulates in the tank; a control device that opens the shutoff valve so that gas and water in the cooling system are released from the shutoff valve through the tank.

2. 2. The fuel cell power generation apparatus of claim 1, wherein the control device operates the heating device to raise the temperature of the thermal oil while the shut-off valve is open, thereby causing gas contained in the thermal oil to be released from the shut-off valve via the tank and causing water vapor contained in the thermal oil to be released from the shut-off valve via the tank.

3. The fuel cell power generation system according to claim 2 , wherein the control device operates the heating device after the thermal oil is filled in the cooling system.

4. A temperature sensor is provided between the heating device and the intake port to measure the temperature of the thermal oil, The fuel cell power generation apparatus of claim 2 or 3, wherein the control device starts heating the thermal oil by the heating equipment, and when the temperature measured by the temperature sensor rises above a predetermined temperature threshold, stops heating the thermal oil by the heating equipment.

5. 4. The fuel cell power generation system according to claim 2, wherein the control device starts heating the thermal oil by the heating device, and stops heating the thermal oil by the heating device after a predetermined heating time has elapsed.

6. a suction pump for reducing the pressure in the cooling system; 2. The fuel cell power generation system according to claim 1, wherein the control device operates the suction pump before the thermal oil is poured into the cooling system, thereby causing the suction pump to suck out moisture in the cooling system.

7. a purge valve for injecting an inert dry gas into the cooling system; 7. The fuel cell power generation system according to claim 6, wherein the control device starts depressurization by the suction pump and opens the purge valve after a predetermined depressurization time has elapsed.

8. a moisture meter for measuring the moisture content of the piping on the output side of the suction pump; 8. The fuel cell power generation system according to claim 7, wherein the control device opens the purge valve when the amount of moisture measured by the moisture meter is lower than a predetermined allowable amount.

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