GB2023916A - A graphite-resin composite electrode structure, and a process for its manufacture - Google Patents

A graphite-resin composite electrode structure, and a process for its manufacture Download PDF

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Publication number
GB2023916A
GB2023916A GB7917394A GB7917394A GB2023916A GB 2023916 A GB2023916 A GB 2023916A GB 7917394 A GB7917394 A GB 7917394A GB 7917394 A GB7917394 A GB 7917394A GB 2023916 A GB2023916 A GB 2023916A
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Prior art keywords
electrode
pore
graphite
resin
forming agent
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GB2023916B (en
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Centro Ricerche Fiat SCpA
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Centro Ricerche Fiat SCpA
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    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M4/00Electrodes
    • H01M4/86Inert electrodes with catalytic activity, e.g. for fuel cells
    • H01M4/88Processes of manufacture
    • H01M4/8803Supports for the deposition of the catalytic active composition
    • H01M4/8807Gas diffusion layers
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M4/00Electrodes
    • H01M4/86Inert electrodes with catalytic activity, e.g. for fuel cells
    • H01M4/88Processes of manufacture
    • H01M4/8817Treatment of supports before application of the catalytic active composition
    • H01M4/8821Wet proofing
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M8/00Fuel cells; Manufacture thereof
    • H01M8/02Details
    • H01M8/0202Collectors; Separators, e.g. bipolar separators; Interconnectors
    • H01M8/023Porous and characterised by the material
    • H01M8/0234Carbonaceous material
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M8/00Fuel cells; Manufacture thereof
    • H01M8/02Details
    • H01M8/0202Collectors; Separators, e.g. bipolar separators; Interconnectors
    • H01M8/023Porous and characterised by the material
    • H01M8/0239Organic resins; Organic polymers
    • HELECTRICITY
    • H01ELECTRIC ELEMENTS
    • H01MPROCESSES OR MEANS, e.g. BATTERIES, FOR THE DIRECT CONVERSION OF CHEMICAL ENERGY INTO ELECTRICAL ENERGY
    • H01M8/00Fuel cells; Manufacture thereof
    • H01M8/02Details
    • H01M8/0202Collectors; Separators, e.g. bipolar separators; Interconnectors
    • H01M8/023Porous and characterised by the material
    • H01M8/0241Composites
    • YGENERAL 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
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02EREDUCTION OF GREENHOUSE GAS [GHG] EMISSIONS, RELATED TO ENERGY GENERATION, TRANSMISSION OR DISTRIBUTION
    • Y02E60/00Enabling technologies; Technologies with a potential or indirect contribution to GHG emissions mitigation
    • Y02E60/30Hydrogen technology
    • Y02E60/50Fuel cells
    • YGENERAL 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
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02PCLIMATE CHANGE MITIGATION TECHNOLOGIES IN THE PRODUCTION OR PROCESSING OF GOODS
    • Y02P70/00Climate change mitigation technologies in the production process for final industrial or consumer products
    • Y02P70/50Manufacturing or production processes characterised by the final manufactured product

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  • Chemical & Material Sciences (AREA)
  • General Chemical & Material Sciences (AREA)
  • Engineering & Computer Science (AREA)
  • Manufacturing & Machinery (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Electrochemistry (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Sustainable Development (AREA)
  • Sustainable Energy (AREA)
  • Composite Materials (AREA)
  • Inert Electrodes (AREA)
  • Fuel Cell (AREA)
  • Compositions Of Macromolecular Compounds (AREA)

Abstract

A composite graphite-resin porous electrode structure is made by intimately mixing powdered graphite with the resin monomers and partially polymerising and grinding the mixture before forming a moulding composition by adding a pore-forming agent removable by decomposition or leaching to form uniformly-sized pores. A catalyst for the electrode reaction is incorporated in the electrode with the pore-forming agent or in a thin layer during moulding and an electrically- conductive strengthening element which acts as a rheophore is also incorporated during moulding. Layers having different pore sizes may be formed and a water-repellent film is applied to one face of the electrode.

Description

SPECIFICATION A graphite-resin composite electrode structure, and a process for its manufacture The present invention relates to a graphite-resin composite electrode structure, and to a process for its manufacture.
The electrode of the invention is particularly, but not exclusively, applicable to use in fuel cells having acid electrolytes. Electrodes for such uses must be constructed in such a way as to allow contact between the reacting substances, the conductor for the electric current produced and any catalyst for the electrode reactions which may be present.
The most widely used structures consist of superimposed layers which are formed by various techniques (spraying, lamination, etc.) and include: a) porous compositions consisting of conducting carbons, catalysts and fluorinated polymer binders; b) a water-repellent membrane, consisting of fluorinated polymers; c) mechanical supports (sometimes functioning as an internal rheophore) comprising metallic materials or acid-resistant polymeric materials.
The layer in which the characteristic electrochemical reaction takes place is structure a), which, by its very nature, is not self supporting, and therefore requies the addition of structure c). The above electrode structures thus include inert masses which adversely affect thq weight of the electrochemical cell as a whole and hence its specific performance (power/weight; energy/weight). In addition, they can only be formed by complex processes including numerous stages and high costs.
The object of the present invention is to provide an electrode structure which is simpler and cheaper to produce than that of electrodes currently available, requiring fewer production stages for its manufacture, and which may be made from readily available, acid-resistant materials.
According to one aspect of the present invention there is provided an electrode for electrochemical cells comprising a porous, graphite-resin composite structure incorporating a catalyst, one face of the structure being treated so as to render it water-repellent and the said one face and the opposite face each having pores of substantially uniform size.
In this specificaion by 'graphite' is meant graphite per se and also other forms of electrically-conductive carbon, such as acetylene black.
The water-repellent surface is intended to face the gas supply of a fuel cell, in use, so as to allow passage of the gas through the surface into the porous electrode while preventing the passage of the electrolytic solution, with which the said opposite face would be in contact, therethrough. Preferably the said one face has a water repellent substance, such as a fluorinated polymer, applied to it.
An electrode according to the invention may have pores of substantially uniform size throughout but in some embodiments the composite structure includes two layers forming the said faces, the pores of one layer being of a different size from the pores of the other layer. The provision of two layers allows the catalyst to be concentrated in one of the layers or in the zone of contact between them, although it may alternatively be concentrated in any other desired zone or distributed throughout the structure as convenient for the intended use of the electrode. The actual pore sizes, their distribution and the surface area of the electrode may also be varied according to the nature of the electrolytic cell with which the electrode is to be used.
The composite structure preferably includes a strengthening element. This may be in the form of a compact, substantially non-porous zone which may also be electrically-conductive and arranged to act as a rheophore. Alternatively the strengthening element may comprise fibres of graphite or other acid-resistant material which are preferably interposed between two layers of the composite structure in the form of woven material or a mesh and which preferably also acts as a rheophore.
According to a further aspect of the invention there is provided a process for the manufacture of an electrode as described above, including the following stages: - mixing a prepolymer for the resin intimately with powdered graphite, and adding a removable pore-forming agent to form a moulding composition, - moulding the composition to form the electrode, and - forming the pores by removal of the pore-forming agent, and further including the introduction of the catalyst and treatment of one face of the electrode so as to render it water-repellent.
The advantage of the present process for the manufacture of electrodes over those used previously is that all the variations in the electrodes, such as the formation of pores of different sizes, introduction of or formation of strengthening elements, and addition of catalyst and other additives can all be achieved within the above three basic stages.
The first stage includes the mixing of the powdered graphite with the prepolymer, that is the polymer monomers, for the resin and is carried out by a method suitable for the chosen ingrendients. For example the prepolymer may comprise a mixture of monomers in liquid form, in a preferred embodiment the monomers being dissolved in a solvent, in which case the graphite would be dispersed in the liquid and the monomers would be partially polymerised to obtain a solid composition which would be ground to powder form before the addition of the pore-forming agent.
The pore-forming agent must be obtainable in powder form of a suitable grain size, preferably less than 100 microns and must be removable from the moulded electrode, for example, by decomposition, preferably at the temperature of cross-linking of the resin, or by leaching with a solvent, preferably water. The grain size and quantity of the pore-forming agent used, as of the graphite and resin, will depend on the intended use of the electrode, and hence on the desired characteristics of the electrode. For a fuel-cell electrode the composition should be within the following limits: a) polymer binder resin from 15-50% by weight b) conducting load 50-85% by weight c) pore-forming agent 30-120% by apparent volume.
The particle size of components a) and b) is preferably less than 50 microns.
The stages of the process for the manufacture of an electrode according to the invention will now be described in greater detail.
Stage 1 a) Preparation of the prepolymer-graphite mixture for a polyimide resin-graphite structure.
The dianhydride and the diamine which will form the poly-imide are dissolved in a suitable solvent, for example methanol, and the required quantity of powdered graphite to give the desired relative proportions of the resin monomers and graphite after drying is added. The resin monomers are then partially polymerized at a temperature of approximately 220 C to 280 C for 10 to 20 minutes, and the solvent is evaporated.
b) The resulting solid is ground to the desired particle size and intimately mixed with the pore-forming agent and possibly with finely-divided, solid catalyst.
The above stage is carried out with simple equipment but such as to obtain a homogeneous distribution of the various components in the mass since a non-homogeneous distribution, for example, of the pore-forming agent would result in discontinuity of the porosity in the final electrode with serious detriment to its electrochemical performance.
Stage 2 The composition from Stage 1 is moulded to the desired form by hot-pressing (in the case of a poly imide resin at 300 C) with a pressure greater than 200 Kg/cm2; the forming of the electrode is followed by annealing at a temperature lower than that of cross-linking of the resin (250 C).
Stage 3 a) Heat-decomposable pore-forming agent.
If the pore-forming agent added in Stage 1 b) is heat-decomposable, the formation of the porosity takes place simultaneously with Stage 2. In this case complex moulds which allow the discharge of gases resulting from the decomposition of the pore-forming agent must be used for forming the electrode but the operating conditions are substantially as above. The temperature of decomposition of the pore-forming agent is preferably close to that of cross-linking of the resin.
b) Leachable pore-forming agent.
Leaching is effected after the moulding stage with a solvent suitable for the chosen pore-forming agent.
For example: a) metals such as copper, aluminium, zinc, iron, nickel or their oxides may be leached with mineral acids or alkalis.
b) inorganic substances such as anhydrous sodium sulphate may be leached with water.
c) organic polymers may be leached with organic solvents.
Water-soluble pore-forming agents are preferred. Leaching may be carried out in a flow of solvent or in a static bath with frequent renewal of the solvent.
Catalyst The catalyst chosen depends on the desired nature of the electrode reaction but for electrodes of hydrogen-air fuel cells with an acidic electrolyte the catalyst is usually a noble metal, such as platinum or palladium, or tungsten carbide, or mixtures of these in varying proportions.
Although the catalyst may be added in Stage 1, as described above, to obtain a uniform distribution through an electrode it may alternatively be added during Stage 2 of the process of preparation. In the latter case, the powdered catalyst may be distributed in the mould by appropriate techniques to obtain a thin layer of the catalyst in the resulting electrode, thus achieving a high concentration of catalyst at the site of the electrode reaction, in use.
As a further alternative, the addition of the catalyst may be effected after Stage 3, by absorption of the catalyst from solution. For example platinum may be absorbed from solution in the form of chlorplatinic acid which is subsequently chemically reduced in situ to give the free metal.
Strengthening andlor electrically conductive elements Strengthening and/or electrically conductive elements may be incorported in the electrode structure during Stage 2. These may comprise fibres, preferably formed into a mesh or woven material, which are suitably disposed in the mould during filling with the electrode composition. Alternatively a non-porous, electrically-conductive strengthening zone may be formed in or around the porous structure.
Hydrophobic layer In use in a fuel cell, the hydrophobic or water-repellent layer prevents the passage of liquid electrolyte through the electrode in one direction, while allowing the passage of the gas in the opposite direction. The layer preferably consists of a thin film of sintered, porous polytetrafluoroethylene (P.T.F.E.) which is applied to a surface of the composite electrode structure by any one of the following techniques: a) Spraying a suspension of P.T.F.E. and a surface-active agent in water on to one surface of the electrode after Stage 3.
b) Dispersion of a thin layer of P.T.F.E. in the mould before the moulding in Stage 2.
After application of the P.T.F.e. by either of the above methods, the electrode is heated to sinner the P.T.F.E.
to ensure its optimum adhesion to the base material and the optimum degree of water-repellence.
Two electrodes according to the invention will now be more particularly described, by way of example, with reference to the accompanying drawings, in which: Figures 1 and 2 are partially cut-away perspective views of respective embodiments of the invention.
Referring to Figure 1 of the drawings, an electrode is shown comprising a composite structure including a plate 1 surrounded by a strengthening frame 2. The plate 1 is of a porous material comprising graphite particles bonded together by a heat-stable poly-imide resin and including a finely divided catalyst, the pores being of substantially uniform size and the pores and particulate material being substantially uniformly distributed through the plate.
The frame 2 is of a compact, non-porous graphite-resin material which has good electrical conductivity and also serves as a rheophore for the electrode.
One face of the plate 1 is treated with a water-repellent poly-tetrafluoroethylene.
Referring to Figure 2 of the drawings, a hydrogen electrode for a fuel cell is shown comprising a composite structure having two layers 3 and 4 each of a porous material formed from graphite particles bonded together by a heat-stable poly-imide resin, the layer 3 also including a finely divided platinum catalyst. Each of the layers 3 and 4 has pores of substantially uniform size with the pores and the particulate matter substantially uniformly distributed, but the size of the pores in the two layers differ from each other; the pores in layer 3 have diameters of less than 33 mircons whereas the pores in layer 4 have diameters of between 44 microns and 88 microns.
Between the layers 3 and 4 is interposed a mesh 5 of graphite fibres which act as a strengthening element and as a rheophore for the electrode.
One face of the electrode has a water-repellent film or poly tetrafluoroethylene applied to it.
The electrode of Figure 2 is made by the following process. The process for the manufacture of the oxygen electrode for the fuel cell is entirely similar, except for the introduction of the appropriate catalyst for the oxygen reaction.
Stage 1) The binder-resin monomers 4, 4' - carbonyl-diphthalic anhydride and 5 - norbornane - 2,3-dicarboxyl anhydride are dissolved in methyl alcohol in a 1:1 ratio with a stoichiometrically equivalent quantity of diaminodiphenylmethane. Graphite, in fine powder form, is then added so as to obtain a dense, homogenous suspension containing 70% by weight of graphite and 30% by weight of the binder-resin monomers.
The heating of the suspension is carried out in two stages, that is, a first stage in which it is heated at 1 500C until the methyl alcohol has evaporated completely, and a second stage in which it is heated at 2500C to effect partial cross-linking of the poly-amide resin around the graphite particles.
The resulting composition is ground in a ball mill to obtain a powder having a particle size of a few microns and is then mixed with sodium sulphate (pore-forming agent) and with tungsten carbide (catalyst) to form two different mixtures, as follows: mixture a) 1g of graphite-resin mixture; 0.5g of sodium sulphate having a particle size of less than 33 microns; 1.18g of tungsten carbide (catalyst) with a high specific surface area; mixture b) 1.5g of graphite-resin mixture; 29 of sodium sulphate having a particle size of between 44 and 88 microns.
The pore-forming agent is formed by grinding the sodium sulphate and sieving it through A.S.T.M. 170, 325,450 sieves so as to obtain two fractions:- a first consisting of particles having a size of less than 33 microns and a second consisting of particles having diameters of between 44 and 88 microns.
The quantities indicated are suitable for the manufacture of an electrode with a surface area of 27 cm2, and a thickness of approximately 1.1 mm.
Stage 2): Moulding This stage is effected with a stamping mould of N.C.D. 4 steel, provided with a heating ring. The mixture a) is placed in the mould first in a uniform layer followed by the graphite mesh and the mixture b) which is superimposed in a further, even layer.
The mould is then heated and put under pressure with the following operating conditions: - pressure of the plates 500 Kg/cm2 - temperature 3000C - moulding time 60 minutes When the moulding has been completed the electrode obtained is extracted from the mould and annealed at 2500C to complete the cross-linking of any remaining monomers in the resin.
Stage 3): Formation of the pores The pore-forming agent (sodium sulphate) is eliminated from the electrode by prolonged boiling in water.
Frequent changing of the washing water reduces the time needed for complete elimination of the pore-forming agent.
On average the treatment takes approximately two hours but it is advisable, after this length of time, to take a sample from the last washing water and subject itto qualitative analysis to ascertain whether any sulphate remains. If the result is negative the treatment may be stopped whereas if the result is positive, that is sulphate is still present, the treatment should be continued until further tests are negative.

Claims (24)

1. An electrode for electrochemical cells comprising a porous, graphite-resin composite structure incorporating a catalyst, one face of the structure being treated so as to render it water-repellent and the said one face and the opposite face each having pores of substantially uniform size.
2. An electrode as claimed in Claim 1, in which the composite structure includes two layers forming the said faces, the pores of one layer being of a different size from the pores of the other layer.
3. An electrode as claimed in Cliam 1 or Claim 2, in which a strengthening element is incorporated in the composite structure.
4. An electrode as claimed in Claim 3, in which the strengthening element is interposed between two layers of the structure.
5. An electrode as claimed in Claim 4, in which the strengthening element comprises fibres of graphite or other acid-resistant material.
6. An electrode as claimed in Claim 5, in which the fibres are woven or formed into a mesh.
7. An electrode as claimed in Claim 1, in which the composite structure incorporates a compact, electrically conductive zone arranged to act as a rheophore.
8. An electrode as claimed in Claim 7, in which the compact zone is formed around the periphery of the porous structure.
9. An electrode as claimed in any preceding claim, in which the resin is a polyimide resin.
10. An electrode as claimed in any preceding claim, for use in a fuel cell in which the porous structure includes from 15 to 50% by weight of heat-stable resin, from 50 to 85% by weight of electrically-conductive load and from 30 to 120% by apparent volume of pores, all the electrode materials being acid-resistant.
11. An electrode substantially as herein described with reference to, and as shown in, Figure 1 or Figure 2 of the accompanying drawings.
12. A process for the manufacture of an electrode according to any of Claims 1 to 11, comprising the following stages: - mixing a prepolymerforthe resin intimately with powdered graphite and adding a removable pore-forming agent to form a moulding composition; - moulding the composition to form the electrode, and - forming the pores by removal of the pore-forming agent, and further including the introduction of the catalyst and treatment of one face of the electrode so as to render it water-repellent.
13. A process as claimed in Claim 12, in which the prepolymer comprises a mixture of monomers in liquid form and the prepolymer-graphite mixture is partially polymerized to obtain a solid composition which is ground to powder form before the addition of the pore-forming agent.
14. A process as claimed in Claim 13, in which the mixture of monomers is dissolved in a solvent which is evaporated during the partial polymerization.
15. A process as claimed in Claim 12, Claim 13, or Claim 14, in which the moulding is carried out at a temperature at which cross-linking of the resin occurs.
16. A process as claimed in any of Claims 12 to 15, for the manufacture of the electrode of Claim 2, in which a pore-forming agent is ground and sieved to provide two powders having different particle sizes and each powder is mixed with a respective quantity of graphite-prepolymer mixture to form respective moulding compositions, a layer of one composition being superimposed on a layer of the other composition in a mould prior to moulding.
17. A process as claimed in any of Claims 12 to 16, in which a catalyst is added in finely divided form to the prepolymer-graphite mixture together with the pore-forming agent.
18. A process as claimed in any of Claims 12 to 16, in which the catalyst is distributed in the mould prior to moulding and arranged to occupy a thin layer of the moulded electrode.
19. A process as claimed in any of Claims 12 to 18, in which the pore-forming agent is decomposable at a temperature close to that of cross-linking of the resin and is removed by heating.
20. A process as claimed in any of Claims 12 to 18, in which the pore-forming agent is removed by leaching with a solvent.
21. A process as claimed in Claim 20, in which the solvent is water.
22. A process as claimed in any of Claims 12 to 21, in which one face of the electrode is treated with a water-repellent agent after the moulding stage.
23. A process as claimed in Claim 22, in which the water-repellent agent is polytetrafluoroethylene.
24. A process for the manufacture of an electrode according to any of Claims 1 to 11, substantially as herein described.
GB7917394A 1978-06-20 1979-05-18 Graphite-resin composite electrode structure and a process for its manufacture Expired GB2023916B (en)

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
IT68442/78A IT1111479B (en) 1978-06-20 1978-06-20 GRAPHITE Porous COMPOSITE STRUCTURE ELECTRODE RESIN FOR APPLICATION IN ELECTROCHEMICAL SYSTEMS

Publications (2)

Publication Number Publication Date
GB2023916A true GB2023916A (en) 1980-01-03
GB2023916B GB2023916B (en) 1983-02-02

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Family Applications (1)

Application Number Title Priority Date Filing Date
GB7917394A Expired GB2023916B (en) 1978-06-20 1979-05-18 Graphite-resin composite electrode structure and a process for its manufacture

Country Status (5)

Country Link
JP (1) JPS553197A (en)
DE (1) DE2924669C2 (en)
FR (1) FR2429501A1 (en)
GB (1) GB2023916B (en)
IT (1) IT1111479B (en)

Cited By (7)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB2126410A (en) * 1982-08-24 1984-03-21 Kureha Chemical Ind Co Ltd Ribbed substrate for fuel cell electrode
GB2126775A (en) * 1982-09-10 1984-03-28 Kureha Chemical Ind Co Ltd Ribbed substrate for fuel cell electrode
GB2157481A (en) * 1984-04-04 1985-10-23 Kureha Chemical Ind Co Ltd Fuel cell electrode substrates
GB2161833A (en) * 1984-07-12 1986-01-22 Kureha Chemical Ind Co Ltd Oxygen-cathode for use in the electrolysis of alkali chlorides
US4956131A (en) * 1984-04-06 1990-09-11 Kureha Kagaku Kogyo Kabushiki Kaisha Fuel cell electrode substrate incorporating separator as an intercooler and process for preparation thereof
EP1406327A1 (en) * 2001-07-09 2004-04-07 Honda Giken Kogyo Kabushiki Kaisha Method of manufacturing separator for fuel cell
WO2007072096A1 (en) * 2005-12-23 2007-06-28 Thalesnano Zrt. Electrode for electrochemical cell operating with high differential pressure difference, procedure for the manufacturing of such electrode and electrochemical cell for the use of such electrode

Families Citing this family (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE3437472A1 (en) * 1984-10-12 1986-04-24 Varta Batterie Ag, 3000 Hannover Process for manufacturing gas diffusion electrode bodies

Family Cites Families (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
DE1250791B (en) * 1960-07-04 1967-09-28 Siemens Aktiengesellschaft, Berlin und München, Erlangen; VARTA AKTIENGESELLSCHAFT, Frankfurt/Main Two-layer oxygen diffusion electrode
NL126475C (en) * 1961-08-02
GB1285199A (en) * 1968-11-18 1972-08-09 Westinghouse Electric Corp Gas diffusion electrode
JPS516339B1 (en) * 1971-02-03 1976-02-27
GB1378654A (en) * 1971-06-09 1974-12-27 Lucas Industries Ltd Air electrodes

Cited By (13)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
GB2126410A (en) * 1982-08-24 1984-03-21 Kureha Chemical Ind Co Ltd Ribbed substrate for fuel cell electrode
GB2126775A (en) * 1982-09-10 1984-03-28 Kureha Chemical Ind Co Ltd Ribbed substrate for fuel cell electrode
US4686072A (en) * 1984-04-04 1987-08-11 Kureha Kagaku Kogyo Kabushiki Kaisha Process for preparing a carbonaceous five-layer fuel cell electrode substrate with elongated holes for feeding reactant gases
GB2157481A (en) * 1984-04-04 1985-10-23 Kureha Chemical Ind Co Ltd Fuel cell electrode substrates
US4567086A (en) * 1984-04-04 1986-01-28 Kureha Kagaku Kogyo Kabushiki Kaisha Carbonaceous, five-layer fuel cell electrode substrate with elongated holes for feeding reactant gases
US4956131A (en) * 1984-04-06 1990-09-11 Kureha Kagaku Kogyo Kabushiki Kaisha Fuel cell electrode substrate incorporating separator as an intercooler and process for preparation thereof
GB2161833A (en) * 1984-07-12 1986-01-22 Kureha Chemical Ind Co Ltd Oxygen-cathode for use in the electrolysis of alkali chlorides
US4744879A (en) * 1984-07-12 1988-05-17 Kureha Kagaku Kogyo Kabushiki Kaisha Oxygen-cathode for use in electrolysis of alkali chloride and process for preparing the same
US4675094A (en) * 1984-07-12 1987-06-23 Kureha Kagaku Kogyo Kabushiki Kaisha Oxygen-cathode for use in electrolysis of alkali chloride and process for preparing the same
EP1406327A1 (en) * 2001-07-09 2004-04-07 Honda Giken Kogyo Kabushiki Kaisha Method of manufacturing separator for fuel cell
EP1406327A4 (en) * 2001-07-09 2008-05-14 Honda Motor Co Ltd Method of manufacturing separator for fuel cell
WO2007072096A1 (en) * 2005-12-23 2007-06-28 Thalesnano Zrt. Electrode for electrochemical cell operating with high differential pressure difference, procedure for the manufacturing of such electrode and electrochemical cell for the use of such electrode
AU2006327900B2 (en) * 2005-12-23 2011-10-13 Thalesnano Zrt. Electrode for electrochemical cell operating with high differential pressure difference, procedure for the manufacturing of such electrode and electrochemical cell for the use of such electrode

Also Published As

Publication number Publication date
IT1111479B (en) 1986-01-13
JPS553197A (en) 1980-01-10
IT7868442A0 (en) 1978-06-20
GB2023916B (en) 1983-02-02
DE2924669A1 (en) 1980-01-03
DE2924669C2 (en) 1982-09-02
FR2429501A1 (en) 1980-01-18
FR2429501B1 (en) 1984-04-06

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