1. Field of the Invention
The present invention relates generally to a cooling device for fuel cell system, and in particularly to a cooling system for cooling an air-cooled fuel cell stack including a plurality of cooling air channels formed therein.
2. Description of the Prior Art
A fuel cell is a power-generating unit that generates electrical energy through electrochemical reaction of hydrogen and oxygen. The fuel cell has the advantages of high energy conversion efficiency, clean exhaust gas, low noise, and non-use of conventional fuels, as compared with a conventional internal combustion engine. In the past few years, it has been highly promoted and developed worldwide. Among these known fuel cells, the proton exchange membrane fuel cell (PEMFC) is the best-developed technique, having the advantages of low operation temperature, fast start-up and high power density. As a whole, PEMFC has high value for industry.
Generally, a fuel cell system should be maintained at an appropriate operation temperature and humidity for optimal performance. Besides anode gas channels and cathode gas channels, a fuel cell system is usually provided with coolant channels, such that the heat generated in operation of the fuel cell system is removed by the coolant flowing therethrough and the fuel cell is maintained at a proper temperature. There are two major cooling techniques conventionally employed in fuel cell system, the liquid cooling system and the air cooling system. Comparatively, the liquid cooling system has better cooling effect, but it has to be used with other components that makes the fuel cell system more complicated in structure. It is not suitable to use the liquid cooling system in a low power fuel cell system which is small in size and simple in structure. Therefore, air cooling system is usually employed in the low power fuel cell system.
Thus, an object of the present invention is to provide an air cooling system for fuel cell system, such that heat generated in operation of the fuel cell system is removed by the cooling air and the fuel cell system is maintained at a proper temperature.
Another object of the present invention is to provide a cooling system with a simple structure for an air-cooled fuel cell system. By means of a cooling air generating device, such as a fan or a blower, the fuel cell system comprising simple cooling channels can be effectively cooled.
A further object of the present invention is to provide an air cooling system for fuel cell system, capable of recirculating the cooling air to the fuel cell stack. The air cooling system comprises at least one fan, a fan casing and a guiding lid. With the arrangements, the cooling air generated by the fan is recirculated to the humidifer for humidification, and then conveyed to the cathode gas inlet of the fuel cell stack for reaction.
To achieve the above objects, in accordance with the present invention, there is provided an air cooling system for air-cooled fuel cell system including a plurality of cooling air channels. The fuel cell system is provided with a fan casing at a cooling air inlet side of the cooling air channels. At least one fan is mounted to an opening of the fan casing. When the fan is turned on, it generates a cooling air flow which flows in from the cooling air inlets, through the cooling air channels and flows out from the cooling air outlets. A temperature sensor is arranged at a position between an anode plate of a single cell unit and a cathode plate of an adjacent single cell unit for detecting a temperature of the fuel cell system. Preferably, a filter casing is provided to fuel cell system at the cooling air inlet side, and a filter is mounted to an opening of the filter casing for filtering dust and impurities. A cooling air guiding cover may be further provided at an external side of the fan casing for guiding the cooling air to a humidifier. The humidified cooling air is recirculated via a recirculation pipeline to the fuel cell system.
The present invention will be apparent to those skilled in the art by reading the following description of preferred embodiments thereof, with reference to the attached drawings, in which:
With reference to the drawings and in particular to
As shown, the fuel cell system 1 comprises a fuel cell stack 10. The fuel cell stack 10 is provided with an anode collector 11, an anode insulator 12 and an anode endplate 13 at an anode side of the fuel cell stack 10, and a cathode collector 21, a cathode insulator 22 and a cathode endplate 23 at a cathode side of the fuel cell stack 10.
The anode endplate 13 is formed with a cathode gas inlet 131 and a cathode gas outlet 132. Cathode gas (air) is conveyed to the cathode gas inlet 131 of the anode endplate 13, through a cathode gas inlet 121 of the anode insulator 12 and a cathode gas inlet 111 of the anode collector 11 to a cathode gas inlet 101 of the fuel cell stack 10 in sequence. The cathode gas proceeds electrochemical reaction in the fuel cell stack 10 and then flows out from a cathode gas outlet 102 of the fuel cell stack 10. Then, the cathode gas is conveyed through a cathode gas outlet 112 of the anode collector 11 and a cathode gas outlet 122 of the anode insulator 12 to a cathode gas outlet 132 of the anode endplate 13 in sequence. The cathode gas inlet 131 and cathode gas outlet 132 of the anode endplate 13 may be further respectively connected with a cathode gas inlet connector 141 and a cathode gas outlet connector 142.
Similarly, the cathode endplate 23 is formed with an anode gas inlet 231. Anode gas is conveyed from the anode gas inlet 231 to the fuel cell stack 10 for proceeding electrochemical reaction. Then, the anode gas flows out from an anode gas outlet 133 of the anode endplate 13.
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The single cell unit 10a includes a membrane electrode assembly (MEA) 103a which comprises a proton exchange membrane, an anode catalyst layer coated on an anode side of the proton exchange membrane, and a cathode catalyst layer coated on a cathode side of the proton exchange membrane. On an anode side of the membrane electrode assembly 103a, there is arranged an anode gas diffusion layer 104a and an anode flow field plate 105a, while on a cathode side of the membrane electrode assembly 103a, there is arranged a cathode gas diffusion layer 106a and a cathode flow field plate 107a.
Similarly, the single cell unit 10b includes a membrane electrode assembly (MEA) 103b which comprises a proton exchange membrane, an anode catalyst layer coated on an anode side of the proton exchange membrane, and a cathode catalyst layer coated on a cathode side of the proton exchange membrane. On an anode side of the membrane electrode assembly 103b, there is arranged an anode gas diffusion layer 104b and an anode flow field plate 105b, while on a cathode side of the membrane electrode assembly 103b, there is arranged a cathode gas diffusion layer 106b and a cathode flow field plate 107b.
A plurality of cooling air channels 3 are formed between adjacent single cells for cooling air flowing therethrough, whereby the fuel cell stack 10 is properly cooled. As shown in
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Of course, the temperature sensor 71 may be disposed to any appropriate position for detecting the temperature of the fuel cell system 1. For example, the temperature sensor 71 may be mounted to a position close to the membrane electrode assembly of the fuel cell stack 10 for detecting the operation temperature of the fuel cell system 1.
The temperature sensor 71 detects the operation temperature of the fuel cell system 1 and generates and transmits a temperature signal s1 to the control device 7. Upon the receipt of the temperature signal s1, in accordance with the temperature detected, the control device 7 generates a fan speed control signal s2 to the fan 5, such that the speed of the fan 5 is regulated in correspondence to the temperature signal s1.
Furthermore, an external side of the casing 4 of the fuel cell stack 10 is provided with a cooling air guiding cover 8. An outlet of the cooling air guiding cover 8 is connected to a gas inlet 91 of a humidifier 9. Since the cooling air drawn out by the fan 5 has a moderate temperature of, for example 55˜65° C., when the cooling air flows to the gas inlet 91 of the humidifier 9 via the cooling air guiding cover 8, the relative humidity of the cooling air is increased. Accordingly, the cooling air has moderate temperature and relative humidity. The cooling air is conveyed from a gas outlet 92 of the humidifier 9 via a recirculation pipeline 93 and the cathode gas inlet connector 141 to the fuel cell stack 10.
Referring to
Furthermore, an external side of the casing 4 of the fuel cell stack 10 is provided with a cooling air guiding cover 8. An outlet of the cooling air guiding cover 8 is connected to a gas inlet 91 of a humidifier 9. Since the cooling air flown out from the cooling air outlet A2 has a moderate temperature, when the cooling air flows to the gas inlet 91 of the humidifier 9 via the cooling air guiding cover 8, the relative humidity of the cooling air is increased. Accordingly, the cooling air has moderate temperature and relative humidity. The cooling air is conveyed from a gas outlet 92 of the humidifier 9 via a recirculation pipeline 93 and the cathode gas inlet connector 141 to the fuel cell stack 10. Thereby, the fuel cell stack 10 is appropriately cooled, while the reactant air to the fuel cell stack is humidified to a moderate humidity. Preferably, the casing 62 further comprises a filter 6 at each of the positions where the fans 5 are located to remove dust and impurities from the inlet air.
From the above-described preferred embodiment, it is apparent that by applying an air cooling system, the fuel cell system is properly cooled. Moreover, the cooling air is conveyed to the humidifier via the guiding lid for humidifying. As a result, heat is efficiently recovered, and the performance of the fuel cell system is promoted. The present invention is novel and practical in use.
Although the present invention has been described with reference to the preferred embodiments thereof, it is apparent to those skilled in the art that a variety of modifications and changes may be made without departing from the scope of the present invention which is intended to be defined by the appended claims.
Number | Date | Country | Kind |
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92212815 | Jul 2003 | TW | national |