WO2012077492A1 - 燃料電池のシール構造 - Google Patents
燃料電池のシール構造 Download PDFInfo
- Publication number
- WO2012077492A1 WO2012077492A1 PCT/JP2011/076847 JP2011076847W WO2012077492A1 WO 2012077492 A1 WO2012077492 A1 WO 2012077492A1 JP 2011076847 W JP2011076847 W JP 2011076847W WO 2012077492 A1 WO2012077492 A1 WO 2012077492A1
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- WO
- WIPO (PCT)
- Prior art keywords
- electrolyte membrane
- gasket
- separator
- seal structure
- membrane
- Prior art date
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M8/00—Fuel cells; Manufacture thereof
- H01M8/02—Details
- H01M8/0202—Collectors; Separators, e.g. bipolar separators; Interconnectors
- H01M8/0267—Collectors; Separators, e.g. bipolar separators; Interconnectors having heating or cooling means, e.g. heaters or coolant flow channels
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M8/00—Fuel cells; Manufacture thereof
- H01M8/02—Details
- H01M8/0271—Sealing or supporting means around electrodes, matrices or membranes
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M8/00—Fuel cells; Manufacture thereof
- H01M8/10—Fuel cells with solid electrolytes
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M8/00—Fuel cells; Manufacture thereof
- H01M8/02—Details
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M8/00—Fuel cells; Manufacture thereof
- H01M8/02—Details
- H01M8/0271—Sealing or supporting means around electrodes, matrices or membranes
- H01M8/0273—Sealing or supporting means around electrodes, matrices or membranes with sealing or supporting means in the form of a frame
-
- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M8/00—Fuel cells; Manufacture thereof
- H01M8/02—Details
- H01M8/0271—Sealing or supporting means around electrodes, matrices or membranes
- H01M8/0276—Sealing means characterised by their form
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01M—PROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
- H01M8/00—Fuel cells; Manufacture thereof
- H01M8/10—Fuel cells with solid electrolytes
- H01M2008/1095—Fuel cells with polymeric electrolytes
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02E—REDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
- Y02E60/00—Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
- Y02E60/30—Hydrogen technology
- Y02E60/50—Fuel cells
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02P—CLIMATE CHANGE MITIGATION TECHNOLOGIES IN THE PRODUCTION OR PROCESSING OF GOODS
- Y02P70/00—Climate change mitigation technologies in the production process for final industrial or consumer products
- Y02P70/50—Manufacturing or production processes characterised by the final manufactured product
Definitions
- the present invention relates to a fuel cell seal structure.
- FIG. 9 a structure having a membrane electrode assembly 51 provided with a pair of electrode layers 53 and 54 on both sides of an electrolyte membrane 52, and having the membrane electrode complex 51 sandwiched by a pair of separators 55 and 56
- the fuel cell of is known (see Patent Document 1). Further, in this fuel cell, gaskets 57 and 58 are respectively assembled on the anode side and the cathode side at the peripheral portion of the membrane electrode assembly 51 in order to seal the fluid such as the fuel gas, and in the example of FIG.
- Grooves 55a and 56a are provided at corresponding positions of the separators 55 and 56, and gaskets 57 and 58 are attached to the grooves 55a and 56a, respectively, and the gaskets 57 and 58 are in close contact with the electrolyte membrane 52.
- gaskets 57 and 58 are integrally formed at corresponding positions of the pair of separators 55 and 56, and the respective gaskets 57 and 58 are in close contact with the electrolyte membrane 52.
- An object of the present invention is to provide a fuel cell seal structure which can realize easy assembly and cost reduction.
- a seal structure according to claim 1 of the present invention has a membrane electrode complex in which a pair of electrode layers are provided on both sides of an electrolyte membrane, and a pair of separators sandwiching the membrane electrode complex.
- the planar dimensions of the pair of electrode layers are set equal to each other, the planar dimension of the electrolyte membrane is set larger than the electrode layer, and the planar dimension of the separator is set larger than the electrolyte membrane.
- the seal structure includes a first gasket held by one of the pair of separators and in close contact with the other separator, and held by the one separator on the inner peripheral side of the first gasket.
- the surface side of the electrolyte membrane is protected at a position overlapping in a plane with the reinforcing member provided on the back side of the electrolyte membrane.
- a member is provided, and the second gasket is in close contact with the protection member.
- the seal structure according to claim 3 of the present invention is characterized in that, in the seal structure according to claim 1 or 2, the reinforcing member is made of a resin film.
- the seal structure according to claim 4 of the present invention is characterized in that, in the seal structure according to claim 2 or 3 described above, the protective member is made of a resin film.
- a membrane-electrode complex having a pair of electrode layers provided on both sides of an electrolyte membrane and a pair of separators sandwiching the membrane-electrode complex are provided.
- the planar dimensions of the pair of electrode layers are set to be equal to each other, the planar dimension of the electrolyte membrane is set larger than that of the electrode layer, and the planar dimension of the separator is set larger than that of the electrolyte membrane.
- one of the pair of separators sandwiching the membrane electrode assembly is provided with both a portion facing the other separator and a portion facing the electrolyte membrane on the inner peripheral side, and the anode side gasket is provided at both portions.
- the breakdown of the gasket includes a first gasket held by one separator and in close contact with the other separator, and a second gasket held by one separator on the inner circumferential side of the first gasket and in close contact with the electrolyte membrane. Will be provided.
- the seal surface pressure can be secured between the first gasket and the other separator, but the electrolyte film is the second gasket. Since the space is left behind on the back side of the cover, the electrolyte membrane made of a soft material escapes to this space, and therefore the seal surface pressure can not be secured. Therefore, in the present invention, a reinforcing member is also installed in this space, relief is prevented, and seal surface pressure is secured.
- these components can not be used as a reinforcing member because of the size and size relationship of each component in the above basic configuration, so a component dedicated to reinforcement is prepared, and this is used as an electrolyte membrane and the other separator. Place in between.
- the component dedicated to reinforcement is not limited as long as it has a hardness greater than that of the second gasket for the purpose of installation, but it is, for example, a resin film, ie, equivalent to the distance between the electrolyte membrane and the other separator. A resin film with a thickness is used as a dedicated part.
- a protective member for example, a resin film is used, that is, a resin film having a predetermined thickness is used as a dedicated part.
- the present invention has the following effects.
- the anode side gasket and the cathode side gasket are both concentrated on one of the pair of separators sandwiching the membrane electrode assembly, the other separator is provided with a gasket. There is no need to apply groove processing or gasket integral molding for holding. Therefore, simplification of part shape, facilitation of manufacture and assembly, and cost reduction can be realized at this point.
- a reinforcing member is provided between the electrolyte membrane and the other separator so as to reinforce the electrolyte membrane in close contact with the second gasket from the back surface side, sufficient seal surface pressure is provided for both the anode side gasket and the cathode side gasket. It can be secured.
- a reinforcing member is provided between the electrolyte membrane and the other separator so as to reinforce the electrolyte membrane in close contact with the second gasket from the back surface side, sufficient seal surface pressure is provided for both the anode side gasket and the cathode side gasket. It can be secured.
- relatively expensive parts need to be additionally prepared, which significantly increases the part cost.
- relatively inexpensive parts such as resin films are used. It is also possible to prevent this kind of harmful effect from occurring.
- the electrolyte membrane in connection with the installation of the reinforcing member on the back surface side of the electrolyte membrane, can be protected by installing the protective member on the front surface side of the electrolyte membrane together, that is, a gasket is formed on the electrolyte membrane. It is possible to suppress damage to the surface of the electrolyte membrane in close proximity.
- the present invention includes the following embodiments. (1) The present invention relates to a seal structure of a fuel cell, and also relates to a seal structure by a general gasket. (2) Issues The spread of fuel cells in the future requires cost reduction of the stack, and the same problem is also imposed on the gaskets used for the stack. When the gasket which consists of a rubber
- the MEA end reinforced with resin or the like is an unreinforced surface with one side of the exposed portion of the electrolyte membrane
- a fuel cell seal structure characterized by sealing only see FIGS. 1 to 3.
- a reinforcing member was used on one side of the end of the electrolyte membrane, and the gasket was further integrated on one side of the MEA.
- the reinforcing member exhibits a reinforcing function as long as it has the rubber hardness or more of the gasket, and preferably, a film or a thin plate of which height dimension is controlled such as resin is preferable.
- Configuration 3 A structure in which gaskets on the anode surface / cathode surface are integrated into one plate.
- the surface area of the anode diffusion electrode (GDL) and the cathode diffusion electrode (GDL) is made to have the same size, and the electrolyte film is reinforced by placing a resin film on one side of the electrolyte film that is popping out.
- the surface area of the anode diffusion electrode (GDL) and the cathode diffusion electrode (GDL) is made to have the same dimension, and the electrolyte film is reinforced by placing resin films on both sides of the protruding electrolyte film.
- FIG. 1 shows a cross section of the main part of a fuel cell seal structure according to a first embodiment of the present invention, and the seal structure is configured as follows.
- a membrane electrode assembly (MEA) 1 in which a pair (anode side and cathode side) electrode layers 3 and 4 are provided on both sides in the thickness direction of the electrolyte membrane 2 is provided. 1 is sandwiched by a pair of separators 7 and 8 via a pair of gas diffusion layers (GDL) 5 and 6.
- GDL gas diffusion layers
- the planar dimensions of the pair of electrode layers 3 and 4 and the pair of gas diffusion layers 5 and 6 are set equal to each other, and the planar dimension of the electrolyte membrane 2 is the electrode layer 3.
- the exposed portion 2a is provided consisting of a predetermined width w 1 of the electrode layers 3 and 4 on both surfaces thereof is not provided.
- the exposed portion 7a of the electrolyte membrane 2 facing the other separator 8 and the inner peripheral side (left side in the figure) of the separator 7 Both the part 2a and the part 7b which opposes are provided.
- the combination of one electrode layer 3 and gas diffusion layer 5 and the combination of the other electrode layer 4 and gas diffusion layer 6 may be referred to as the anode side or cathode side diffusion electrode, respectively, and this term is used.
- a membrane electrode assembly (MEA) 1 in which a pair (anode side and cathode side) diffusion electrodes are provided on both sides in the thickness direction of the electrolyte membrane 2 is provided. It will be said that it is pinched by eight.
- both the anode-side gasket and the cathode-side gasket are collectively provided on both the portions 7a and 7b, that is, integrally formed on one of the separators 7 at the portion 7a facing the other separator 8
- the lip end 9a is in close contact with the other separator 8 at the inner circumferential side of the first gasket 9 at a portion 7b facing the exposed portion 2a of the electrolyte membrane 2 on the inner circumferential side thereof.
- a second gasket is formed integrally with one of the separators 7 and has a lip end 10 a in close contact with the exposed portion 2 a of the electrolyte membrane 2. 10 is provided.
- the lip end 9 a is in close contact with the other separator 8, whereby a sufficient seal with the other separator 8 is achieved.
- Surface pressure is secured.
- the second gasket 10 a space is left on the back surface side (downward in the figure) of the exposed portion 2a of the electrolyte membrane 2, so the exposed portion 2a of the electrolyte membrane 2 made of a soft material escapes to this space Therefore, the seal surface pressure can not be secured. So, in the said seal structure, the reinforcement member 11 is installed in this space, the relief of the exposure part 2a is prevented by this, and seal
- these components can not be used as a reinforcing member in view of the size and size relationship of each component in the above basic configuration, so a component dedicated to reinforcement, specifically, a resin film is prepared. A resin film is disposed between the exposed portion 2 a of the electrolyte membrane 2 and the other separator 8.
- the resin film which is the reinforcing member 11 is formed into a flat rectangular frame like the gasket 10 according to that each component is a flat rectangular and the gasket 10 is also a flat rectangular frame. It is possible to reinforce the exposed portion 2a of the electrolyte membrane 2 over the entire circumference.
- the thickness of the resin film which is the reinforcing member 11 is set equal to the distance between the exposed portion 2a of the electrolyte membrane 2 and the other separator 8 so that the escape of the exposed portion 2a is almost completely prevented.
- the resin film which is the reinforcing member 11 is fixed to one or both of the exposed portion 2a of the electrolyte membrane 2 and the other separator 8 by fixing means such as heat press or adhesion, but the electrolyte membrane is not fixed. It may only be interposed between the two exposed portions 2 a and the other separator 8.
- reinforcing member 11 is provided between exposed portion 2a of electrolyte membrane 2 and the other separator 8 in order to reinforce exposed portion 2a of electrolyte membrane 2 in close contact with second gasket 10 from the back surface side, A sufficient sealing surface pressure is secured not only for the first gasket 9 but also for the second gasket 10.
- these relatively expensive parts must be prepared with an increase in area, but in this embodiment, they are relatively inexpensive and part shape Since a resin film which is easy to manufacture is used, simplification of the part shape, facilitation of manufacture and assembly, and cost reduction are realized from this point as well.
- the width w 2 of the reinforcing member 11 is set smaller than the width w 1 of the exposed portion 2a of the electrolyte membrane 2 (w 1> w 2), the space on the inner peripheral portion
- the reinforcing member 11 includes the membrane electrode assembly 1 including the exposed portion 2 a of the electrolyte membrane 2.
- the width w 2 of the reinforcing member 11 is preferably as much as possible greater.
- FIG. 2 shows a second embodiment
- the handling workability of the membrane electrode assembly 1 is improved.
- the reinforcing member 11 since the reinforcing member 11 is in contact with the end surfaces of the electrode layer 4 and the gas diffusion layer 6, depending on the material of the reinforcing member 11, the end of the reinforcing member 11 is impregnated into the end of the gas diffusion layer 6 Integration is also conceivable.
- FIG. 3 shows a third embodiment, the width w 2 of the reinforcing member 11 is set larger than the width w 1 of the exposed portion 2a of the electrolyte membrane 2 (w 1 ⁇ w 2), thereby a membrane electrode The handling workability of the composite 1 is further improved. Also in this case, since the reinforcing member 11 is in contact with the end surfaces of the electrode layer 4 and the gas diffusion layer 6, depending on the material of the reinforcing member 11, the end of the reinforcing member 11 is impregnated and integrated into the end of the gas diffusion layer 6 It is conceivable.
- FIG. 4 shows a cross section of the main part of a fuel cell seal structure according to a fourth embodiment of the present invention, and the seal structure is configured as follows.
- a membrane electrode assembly (MEA) 1 in which a pair (anode side and cathode side) electrode layers 3 and 4 are provided on both sides in the thickness direction of the electrolyte membrane 2 is provided. 1 is sandwiched by a pair of separators 7 and 8 via a pair of gas diffusion layers (GDL) 5 and 6.
- GDL gas diffusion layers
- the planar dimensions of the pair of electrode layers 3 and 4 and the pair of gas diffusion layers 5 and 6 are set equal to each other, and the planar dimension of the electrolyte membrane 2 is the electrode layer 3.
- the exposed portion 2a is provided consisting of a predetermined width w 1 of the electrode layers 3 and 4 on both surfaces thereof is not provided.
- the exposed portion 7a of the electrolyte membrane 2 facing the other separator 8 and the inner peripheral side (left side in the figure) of the separator 7 Both the part 2a and the part 7b which opposes are provided.
- the combination of one electrode layer 3 and gas diffusion layer 5 and the combination of the other electrode layer 4 and gas diffusion layer 6 may be referred to as the anode side or cathode side diffusion electrode, respectively, and this term is used.
- a membrane electrode assembly (MEA) 1 in which a pair (anode side and cathode side) diffusion electrodes are provided on both sides in the thickness direction of the electrolyte membrane 2 is provided. It will be said that it is pinched by eight.
- both the anode-side gasket and the cathode-side gasket are collectively provided on both the portions 7a and 7b, that is, integrally formed on one of the separators 7 at the portion 7a facing the other separator 8
- the lip end 9a is in close contact with the other separator 8 at the inner circumferential side of the first gasket 9 at a portion 7b facing the exposed portion 2a of the electrolyte membrane 2 on the inner circumferential side thereof.
- a second gasket integrally formed on one of the separators 7 and in close contact with a protection member 14 whose lip end 10a will be described later 0 is provided.
- the lip end 9 a is in close contact with the other separator 8, whereby a sufficient seal with the other separator 8 is achieved.
- Surface pressure is secured.
- the second gasket 10 a space is left on the back surface side (downward in the figure) of the exposed portion 2a of the electrolyte membrane 2, so the exposed portion 2a of the electrolyte membrane 2 made of a soft material escapes to this space Therefore, the seal surface pressure can not be secured. So, in the said seal structure, the reinforcement member 11 is installed in this space, the relief of the exposure part 2a is prevented by this, and seal
- these components can not be used as a reinforcing member in view of the size and size relationship of each component in the above basic configuration, so a component dedicated to reinforcement, specifically, a resin film is prepared. A resin film is disposed between the exposed portion 2 a of the electrolyte membrane 2 and the other separator 8.
- the resin film which is the reinforcing member 11 is formed into a flat rectangular frame like the gasket 10 according to that each component is a flat rectangular and the gasket 10 is also a flat rectangular frame. It is possible to reinforce the exposed portion 2a of the electrolyte membrane 2 over the entire circumference.
- the thickness of the resin film which is the reinforcing member 11 is set equal to the distance between the exposed portion 2a of the electrolyte membrane 2 and the other separator 8 so that the escape of the exposed portion 2a is almost completely prevented.
- the resin film which is the reinforcing member 11 is fixed to one or both of the exposed portion 2a of the electrolyte membrane 2 and the other separator 8 by fixing means such as heat press or adhesion, but the electrolyte membrane is not fixed. It may only be interposed between the two exposed portions 2 a and the other separator 8.
- the protective member 14 is disposed on the surface side of the exposed portion 2 a of the electrolyte membrane 2 in accordance with the reinforcement member 11 disposed on the back side of the exposed portion 2 a of the electrolyte membrane 2.
- the lip end 10 a of the second gasket 10 is in close contact with the protective member 14. Therefore, the electrolyte membrane 2 can be protected by the protective member 14.
- a component dedicated for protection specifically, a resin film is prepared.
- the resin film is disposed on the surface of the exposed portion 2 a of the electrolyte membrane 2.
- the resin film as the protective member 14 is formed into a flat rectangular frame like the gasket 10 according to that each component is a flat rectangular and the gasket 10 is also a flat rectangular frame. It is possible to protect the exposed portion 2a of the electrolyte membrane 2 along the entire circumference.
- the thickness of the resin film as the protective member 14 is set to be slightly smaller than that of the reinforcing member 11. Further, although the resin film which is the protective member 14 is fixed to the exposed portion 2a of the electrolyte membrane 2 by fixing means such as heat press or adhesion, it is mounted on the surface of the exposed portion 2a of the electrolyte membrane 2 without being fixed. You may be alone.
- reinforcing member 11 is provided between exposed portion 2a of electrolyte membrane 2 and the other separator 8 in order to reinforce exposed portion 2a of electrolyte membrane 2 in close contact with second gasket 10 from the back surface side, A sufficient sealing surface pressure is secured not only for the first gasket 9 but also for the second gasket 10.
- these relatively expensive parts must be prepared with an increase in area, but in this embodiment, they are relatively inexpensive and part shape Since a resin film which is easy to manufacture is used, simplification of the part shape, facilitation of manufacture and assembly, and cost reduction are realized from this point as well.
- the protective member 14 is disposed on the surface side of the exposed portion 2 a of the electrolyte membrane 2 in accordance with the reinforcement member 11 disposed on the back side of the exposed portion 2 a of the electrolyte membrane 2.
- the electrolyte membrane 2 can be protected, that is, the surface of the electrolyte membrane 2 can be prevented from being damaged by the gasket 10 being in close contact with the electrolyte membrane 2 directly.
- the reinforcing member 11 and the width w 2 of the protecting member 14 is set smaller than the width w 1 of each exposed portion 2a of the electrolyte membrane 2 (w 1> w 2), the inner and outer Although the space portions 12 and 13 are formed in the peripheral portion, when the reinforcing member 11 and the protective member 14 are fixed to the exposed portion 2 a of the electrolyte membrane 2, the reinforcing member 11 and the protective member 14 are electrolyte membrane it is possible to improve handling workability at the time of individual parts to reinforce the membrane electrode assembly 1 including a second exposed portion 2a, the width w 2 of the reinforcing member 11 and the protective member 14 that as much as possible greater Is preferred.
- FIG. 5 shows a fifth embodiment
- the reinforcing member 11 and the protective member 14 are in contact with the end surfaces of the electrode layers 3 and 4 and the gas diffusion layers 5 and 6, depending on the materials of the reinforcing member 11 and the protective member 14, the reinforcing member 11 and It is also conceivable to impregnate and integrate the end of the protective member 14 into the end of the gas diffusion layers 5 and 6.
- FIG. 6 shows a sixth embodiment, the reinforcing member 11 and the width w 2 of the protecting member 14 is set larger than the width w 1 of each exposed portion 2a of the electrolyte membrane 2 (w 1 ⁇ w 2) Thereby, the handling workability of the membrane electrode assembly 1 is further improved. Also in this case, since the reinforcing member 11 and the protective member 14 are in contact with the end surfaces of the electrode layers 3 and 4 and the gas diffusion layers 5 and 6, depending on the materials of the reinforcing member 11 and the protective member 14, this reinforcing member 11 and It is conceivable to impregnate and integrate the end of the protective member 14 into the end of the gas diffusion layers 5 and 6.
- the reinforcing member 11 and the protective member 14 is not necessarily equal to the width w 2 and the planar shape.
- the first and second gaskets 9 and 10 are provided on one of the separators 7, but the gaskets 9 and 10 are formed separately from each other.
- both the gaskets 9 and 10 may be formed integrally with each other.
- both gaskets 9 and 10 are formed integrally with each other through the connecting portion 15.
- the fixing means of the first and second gaskets 9 and 10 with respect to one of the separators 7 is integrally formed, but the fixing means is not particularly limited.
- both the gaskets 9 and 10 may be formed integrally with each other as in the seventh embodiment.
- the gaskets 9 and 10 are described as having the lip ends 9a and 10a, and in the drawings, the cross sectional shapes of the gaskets 9 and 10 are drawn as triangles.
- the cross-sectional shape is not limited at all.
- the gaskets 9 and 10 may not have the lip ends 9a and 10a, and may have a cross sectional shape other than a triangle.
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Abstract
Description
(1)本発明は、燃料電池のシール構造に係り、また一般ガスケットによるシール構造に関する。
(2)課題
これからの燃料電池の普及にはスタックの低コスト化が必要であり、スタックに使用されるガスケットも同様の課題が課せられている。上記課題に対し、ゴム単体からなるガスケットを使用した場合、取り扱い性が課題となる。
(3-1)従来技術では、MEAを挟む2枚のセパレータそれぞれへの溝加工やガスケット一体成形が必要であり、組立性向上やコスト低減に課題がある。本発明では、一般的なMEA構造における電解質膜の露出面片面に補強体を用い、MEAを挟む片側プレートへガスケットを集約・一体化することで、組立性、コスト改善が可能となる(図1~3参照)。
(3-2)アノードおよびカソードの電極およびGDLの平面寸法が同等のMEA端部をシールするガスケット構造において、電解質膜露出部の片面側を樹脂等により補強されたMEA端部を未補強面でのみでシールすることを特徴とする燃料電池シール構造(図1~3参照)。
(3-3)電解質膜の端部片面に補強部材を使用する構成とし、さらにガスケットをMEAの片面側へ集約した。上記補強部材はガスケットのゴム硬度以上であれば補強機能が発現し、好ましくは、樹脂等の高さ寸法が管理されたフィルム、薄板が望ましい。この場合、MEAを挟む2枚のセパレータ両方へのガスケット一体化が不要となり、コスト削減が可能となる(図1参照)。
(3-4)補強効果が必要な補強部材形状の上記(3-3)に対し、MEA(電解質膜)片面全面を補強することで、MEA取扱性の向上が可能となる(図2参照)。
(3-5)上記(3-3)(3-4)に対し、MEA(電解質膜)端部より大きな補強部材を用いることで、MEA取扱性のさらなる向上が可能となる(図3参照)。
(4-1)従来技術では、MEAを挟む2枚のセパレータそれぞれへの溝加工やガスケット一体成形が必要であり、組立性向上やコスト低減に課題がある。本発明では、一般的なMEA構造における電解質膜の露出面両面に補強体を用い、MEAを挟む片側プレートへガスケットを集約・一体化することで、組立性、コスト改善が可能となる(図4~6参照)。
(4-2)アノードおよびカソードの電極およびGDLの平面寸法が同等のMEA端部をシールするガスケット構造において、電解質膜露出部の両面側を樹脂等により補強されたMEA端部を片側の補強面でのみでシールすることを特徴とする燃料電池シール構造(図4~6参照)。
(4-3)電解質膜の端部両面に補強部材を使用する構成とし、さらにガスケットをMEAの片面側へ集約した。上記補強部材はガスケットのゴム硬度以上であれば補強機能が発現し、好ましくは、樹脂等の高さ寸法が管理されたフィルム、薄板が望ましい。この場合、MEAを挟む2枚のセパレータ両方へのガスケット一体化が不要となり、コスト削減が可能となる(図4参照)。
(4-4)補強効果が必要な補強部材形状の上記(4-3)に対し、MEA(電解質膜)両面全面を補強することでMEA取扱性の向上が可能となる(図5参照)。
(4-5)上記(4-3)(4-4)に対し、MEA(電解質膜)端部より大きな補強部材を用いることで、MEA取扱性のさらなる向上が可能となる(図6参照)。
(5-1)アノード面/カソード面のガスケットを1枚のプレートに集約する構造である。
(5-2)アノード拡散電極(GDL)とカソード拡散電極(GDL)の表面積を同寸法として、飛び出している電解質膜の片面に樹脂フィルムを設置することで電解質膜の補強を行なう。
(5-3)アノード拡散電極(GDL)とカソード拡散電極(GDL)の表面積を同寸法として、飛び出している電解質膜の両面に樹脂フィルムを設置することで電解質膜の補強を行なう。
(5-4)工程としては、反応面部分を切り取った枠体形状の樹脂フィルムにガスケットを一体成形後、電解質膜をフィルム上に設置、あるいはフィルムで電解質膜を挟み込み、ヒートプレスにより樹脂フィルムとMEAを一体化する。
図1は、本発明の第一実施例に係る燃料電池用シール構造の要部断面を示しており、当該シール構造は以下のように構成されている。
尚、上記第一実施例では、補強部材11の幅寸法w2が電解質膜2の露出部2aの幅寸法w1よりも小さく設定され(w1>w2)、その内外周部には空間部12,13が形成されているが、この補強部材11が電解質膜2の露出部2aに固定される場合にはこの補強部材11が電解質膜2の露出部2aを含む膜電極複合体1を補強して部品単体時における取り扱い作業性を向上させることができるために、補強部材11の幅寸法w2は可及的に大きいことが好ましい。
図4は、本発明の第四実施例に係る燃料電池用シール構造の要部断面を示しており、当該シール構造は以下のように構成されている。
尚、上記第四実施例では、補強部材11および保護部材14の幅寸法w2がそれぞれ電解質膜2の露出部2aの幅寸法w1よりも小さく設定され(w1>w2)、その内外周部には空間部12,13が形成されているが、この補強部材11および保護部材14が電解質膜2の露出部2aに固定される場合にはこの補強部材11および保護部材14が電解質膜2の露出部2aを含む膜電極複合体1を補強して部品単体時における取り扱い作業性を向上させることができるため、補強部材11および保護部材14の幅寸法w2は可及的に大きいことが好ましい。
上記各実施例では、第一および第二ガスケット9,10は何れも一方のセパレータ7に設けられるが、このガスケット9,10同士は互いに別々に成形されている。これに対し両ガスケット9,10を互いに一体に成形するようにしても良く、第七実施例として示す図7では、両ガスケット9,10が連結部15を介して互いに一体に成形されている。
上記各実施例では、第一および第二ガスケット9,10の一方のセパレータ7に対する固定手段は一体成形方式とされているが、この固定手段は特に限定されるものではなく、例えば第八実施例として示す図8では、両ガスケット9,10が取付シート16である薄手の樹脂フィルム上に一体成形されたうえで、このシート16が接着などの手段によって一方のセパレータ7に固定されている。この場合、両ガスケット9,10を互いに一体に成形するようにしても良いことは上記第七実施例と同様である。
2 電解質膜
2a 露出部
3,4 電極層
5,6 ガス拡散層
7,8 セパレータ
9,10 ガスケット
9a,10a リップ端
11 補強部材
12,13 空間部
14 保護部材
15 連結部
16 取付シート
Claims (4)
- 電解質膜の両面に一対の電極層を設けた膜電極複合体と、前記膜電極複合体を挟み込む一対のセパレータとを有し、前記一対の電極層の平面寸法は互いに同等に設定され、前記電解質膜の平面寸法は前記電極層より大きく設定され、前記セパレータの平面寸法は前記電解質膜より更に大きく設定されている燃料電池に備えられるシール構造であって、
前記一対のセパレータのうちの一方のセパレータに保持されるとともに他方のセパレータに密接する第一ガスケットと、前記第一ガスケットの内周側において前記一方のセパレータに保持されるとともに前記電解質膜に密接する第二ガスケットとを有し、
前記第二ガスケットが密接する前記電解質膜をその裏面側から補強すべく前記電解質膜と前記他方のセパレータとの間に前記電極層とは別体の補強部材が設けられていることを特徴とする燃料電池のシール構造。 - 請求項1記載のシール構造において、
前記電解質膜の裏面側に設けられる前記補強部材と平面上重なる位置において前記電解質膜の表面側に保護部材が設けられ、この保護部材に対し前記第二ガスケットが密接することを特徴とする燃料電池のシール構造。 - 請求項1または2記載のシール構造において、
前記補強部材は、樹脂フィルムよりなることを特徴とする燃料電池のシール構造。 - 請求項2または3記載のシール構造において、
前記保護部材は、樹脂フィルムよりなることを特徴とする燃料電池のシール構造。
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US13/990,021 US20130241158A1 (en) | 2010-12-06 | 2011-11-22 | Seal structure for fuel cell |
KR1020137013907A KR20140045296A (ko) | 2010-12-06 | 2011-11-22 | 연료전지의 시일 구조 |
CN2011800584163A CN103250289A (zh) | 2010-12-06 | 2011-11-22 | 燃料电池的密封构造 |
EP11847550.8A EP2650957A4 (en) | 2010-12-06 | 2011-11-22 | SEALED SEALING STRUCTURE FOR FUEL CELL |
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JP2010271248A JP2012123922A (ja) | 2010-12-06 | 2010-12-06 | 燃料電池のシール構造 |
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JP6487701B2 (ja) * | 2015-01-30 | 2019-03-20 | Nok株式会社 | 燃料電池用ガスケット |
KR101918354B1 (ko) * | 2016-10-12 | 2018-11-14 | 현대자동차주식회사 | 연료전지용 가스켓 |
FR3060209A1 (fr) * | 2016-12-12 | 2018-06-15 | Compagnie Generale Des Etablissements Michelin | Procede de fabrication d'assemblage membrane-electrode pour pile a combustible |
KR102017264B1 (ko) | 2017-09-12 | 2019-09-02 | 장재성 | 휠 결합형 접이식 휠체어 |
KR102304939B1 (ko) | 2019-08-01 | 2021-09-24 | 장재성 | 가변형 휠체어 |
SE544864C2 (en) * | 2020-12-18 | 2022-12-13 | Powercell Sweden Ab | Fuel cell assembly |
CN114695913A (zh) * | 2020-12-30 | 2022-07-01 | 上海德迩新能源技术有限公司 | 密封圈组件、密封圈的装配方法以及治具 |
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- 2011-11-22 EP EP11847550.8A patent/EP2650957A4/en not_active Withdrawn
- 2011-11-22 US US13/990,021 patent/US20130241158A1/en not_active Abandoned
- 2011-11-22 CN CN2011800584163A patent/CN103250289A/zh active Pending
- 2011-11-22 WO PCT/JP2011/076847 patent/WO2012077492A1/ja active Application Filing
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KR20140045296A (ko) | 2014-04-16 |
EP2650957A1 (en) | 2013-10-16 |
JP2012123922A (ja) | 2012-06-28 |
US20130241158A1 (en) | 2013-09-19 |
EP2650957A4 (en) | 2015-04-08 |
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