AU7631398A - A fuel cell assembly - Google Patents

A fuel cell assembly Download PDF

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Publication number
AU7631398A
AU7631398A AU76313/98A AU7631398A AU7631398A AU 7631398 A AU7631398 A AU 7631398A AU 76313/98 A AU76313/98 A AU 76313/98A AU 7631398 A AU7631398 A AU 7631398A AU 7631398 A AU7631398 A AU 7631398A
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Australia
Prior art keywords
fuel cell
fuel
adjacent
assembly according
interconnect
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AU76313/98A
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AU735079B2 (en
Inventor
Richard Donelson
Darren Bawden Hickey
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Chaozhou Three Circle Group Co Ltd
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Ceramic Fuel Cells Ltd
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Priority claimed from AUPO7249A external-priority patent/AUPO724997A0/en
Application filed by Ceramic Fuel Cells Ltd filed Critical Ceramic Fuel Cells Ltd
Priority to AU76313/98A priority Critical patent/AU735079B2/en
Publication of AU7631398A publication Critical patent/AU7631398A/en
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Assigned to CNPC XING DE ENERGY SHARE LIMITED reassignment CNPC XING DE ENERGY SHARE LIMITED Alteration of Name(s) in Register under S187 Assignors: CERAMIC FUEL CELLS LIMITED
Assigned to CHAOZHOU THREE-CIRCLE (GROUP) CO., LTD. reassignment CHAOZHOU THREE-CIRCLE (GROUP) CO., LTD. Alteration of Name(s) in Register under S187 Assignors: CNPC XING DE ENERGY SHARE LIMITED
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    • 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
    • Y02E60/10Energy storage using batteries
    • 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

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  • Fuel Cell (AREA)

Description

WO 98/57384 PCT/AU98/00437 -1 A FUEL CELL ASSEMBLY The present invention relates to a fuel cell assembly comprising a stack of a plurality of planar fuel cells, and is particularly concerned with such a fuel cell assembly in which the 5 compressive load on each fuel cell is independent of its position in the stack. The invention also extends to a single fuel cell assembly. A fuel cell assembly comprising a stack of a plurality of planar fuel cells requires interconnect means between each pair of adjacent fuel cells to transfer electrical current and heat from the 10 fuel cells, to facilitate the conveyance of oxygen-containing gas and fuel gas to respective sides of each fuel cell, and to keep the oxygen-containing gas and fuel gas apart. In a single fuel cell planar fuel cell assembly the interconnect means are effectively terminal plates which transfer electrical current and heat from the fuel cell and facilitate the 15 conveyance of oxygen-containing gas and fuel gas to respective sides of the fuel cell. Likewise, the end interconnect means in a stack of planar fuel cells are effectively terminal plates. However, for convenience, all the aforementioned interconnect means, whether between adjacent fuel cells or terminal plates, will hereinafter be referred to as "interconnect members". 20 Commonly, the fuel cells and interconnect members have the same cross-sectional area and the electrical contact between the cells and interconnect members and the sealing of respective sides of each fuel cell from each other is maintained by using the force imparted by the weight of the cell(s) and/or interconnect members above any one cell. Thus, the fuel cells 25 are fully load bearing. Examples of such an arrangement are described in international patent applications PCT/AU96/00140 and PCT/AU96/00594. The problem with this approach is that the lower cells in the stack carry greater weight than the upper cells. For a stack with a large number of fuel cells the load on the lower cells can be significant. 30 The carrying load of a ceramic, such as in a solid oxide electrolyte fuel cell, is much higher WO 98/57384 PCT/AU98/00437 -2 in compression than in tension and the fully load-bearing arrangement described above assumes that, in a perfect system, the cells carry only a compressive load. This compression only model acquires near perfect flatness of all load carrying parts since unevenness will lead to tensile forces in the structure and to the possible breakage of the fuel cells. In practice it 5 is not possible to ensure such a quality of flatness in all of the load carrying parts. The problem of possible breakage of solid oxide electrolyte fuel cells due to tensile forces applied to them in use has not been very substantial in the past due to the relatively high strength structure of previously proposed fuel cells such as those described in the 10 aforementioned international patent applications. In this type of fuel cell, the solid oxide electrolyte layer is relatively thick compared to the anode and cathode layers applied to respective sides and has substantial strength. However, recent developments have introduced solid oxide electrolyte fuel cells in which the electrolyte layer is considerably thinner and is not a primary load bearing layer. Instead the porous anode layer acts as the primary load 15 bearing layer and uneven or excessive loads applied to these fuel cells can be very destructive. A further problem with a fuel cell in a stack carrying the full mass of the fuel cells and interconnects above it is that the relatively weak porous electrode layers of the fuel cell may collapse under the load. 20 European patent application EP 0568991 describes a fuel cell assembly comprising a stack of a plurality of planar fuel cell structures, each comprising a fuel cell and a single interconnect member on one side. Each fuel cell structure is located in a hollow plate and is separated from an adjacent fuel cell structure by a hollow intermediate plate, with the interconnect 25 member of one fuel cell structure being maintained in electrical contact with the anode of an adjacent fuel cell structure by a felt-like nickel metal conductive material disposed in the hollow intermediate plate. Each fuel cell carries the load of the associated interconnect member. Furthermore, each fuel cell structure is compressed between a seal element and inlet defining elements of the adjacent intermediate plates so that increasing compressive loads 30 may still be applied to fuel cells down the stack.
WO 98/57384 PCT/AU98/00437 -3 It is an object of the present invention to alleviate the aforementioned disadvantages of the prior art. According to the present invention there is provided a fuel cell assembly comprising a stack 5 of a plurality of planar fuel cells each comprising an electrolyte layer having an anode layer on one side and a cathode layer on the other side and a plurality of interconnect members, each fuel cell being disposed between and in electrical contact with an adjacent pair of interconnect members with oxygen-containing gas passage means being formed between the cathode layer of each fuel cell and the adjacent interconnect member and fuel gas passage 10 means being formed between the anode layer of each fuel cell and the adjacent interconnect member, and wherein a chamber of greater height than the thickness of the respective fuel cell is defined between the adjacent interconnect members in each pair within which the fuel cell is received, and electrically conductive compressible means also disposed within the chamber in electrical contact with a first side of the fuel cell and the adjacent interconnect member 15 urges the fuel cell towards the adjacent interconnect member on the second side thereof to maintain the fuel cell in electrical contact with both adjacent interconnect members. By this arrangement, each fuel cell is displaceably received within the respective chamber but for the associated electrically conductive compressible means and the compressive load on 20 each fuel cell is provided by the respective compressible means. Thus, the compressive load on each fuel cell is independent of the position of the fuel cell in the stack. This means that a reduced compressive load may be applied to each fuel cell which is particularly advantageous for the aforementioned solid oxide electrolyte fuel cells in which the electrolyte layer is not a primary load bearing layer. It also means that the load conditions in each 25 chamber can be the same throughout the stack, so that the properties of the materials used in the stack do not need to vary according to the position of the fuel cell in the stack. The invention is also applicable to a fuel cell assembly comprising a single fuel cell. Accordingly, the invention further provides a fuel cell assembly comprising a planar fuel cell 30 having an electrolyte layer with an anode layer on one side and a cathode layer on the other WO 98/57384 PCT/AU98/00437 -4 side, the fuel cell being disposed between and in electrical contact with respective interconnect members, oxygen-containing gas passage means being formed between the cathode layer and the adjacent interconnect member and fuel gas passage means being formed between the anode layer and the adjacent interconnect member, and wherein a chamber of greater height 5 than the thickness of the fuel cell is defined between the interconnect members within which the fuel cell is received and electrically conductive compressible means also disposed within the chamber in electrical contact with a first side of the fuel cell and the adjacent interconnect member urges the fuel cell towards the adjacent interconnect member on the second side thereof to maintain the fuel cell in electrical contact with both interconnect members. 10 The compressible means may take any of a variety of forms which maintain at least a minimum desired compressive force on the fuel cell even at the operating temperature of the fuel cell assembly. It is desirable that the compressible means maintains electrical contact between the fuel cell and the interconnect member during the full life of the fuel cell in use 15 and therefore that it is not subject to more than minimal creep under the compression load. Any creep should not be so great as to cause the electrical contact to be broken. Preferably the compressible means is disposed on the anode side of the fuel cell. Examples of the metal or metallic material which may be used for or in a compressible means on the 20 anode side of the fuel cell include nickel, nickel alloy such as nickel-chrome and nickel aluminium, and oxide dispersion strengthened nickel. Alternatively, the nickel may be replaced by other suitable metal or metals from Groups 8-11 of the Periodic Table. Possible examples of the compressible means for use on the anode side of the fuel cell include 25 a structure, such as a metallic corrugation or a porous metallic felt, which retains some resilience at the operating temperature; and a composite of a porous brittle material and a metal. The composite of brittle material, such as a ceramic, and a metal may be designed such that 30 the brittle material yields at, the applied loading but does not fail completely so that it will WO 98/57384 PCT/AU98/00437 -5 maintain pressure on the fuel cell between upper and lower limits. The metal maintains the electrical path, and preferably a heat path, through the composite and may provide reinforcement for the brittle material. 5 Preferably the compressible means is resilient so that a compressive load may be maintained during, for example, temperature cycling of the fuel cell assembly. In a preferred embodiment, the resistance is provided by a corrugated metal or metallic sheet, optionally with a substantially flat sheet of metal or metallic material disposed between the corrugated sheet and the first side of the fuel cell to alleviate any sliding movement between the 10 corrugated sheet and the first side of the fuel cell as the corrugated sheet is compressed. The flat sheet must permit the gas to contact the first side of the fuel cell and may be porous or otherwise have gas flow passages therethrough. Preferably, the flat sheet is formed of expanded material, that is with an array of slits formed in the material and the sheet being 15 stretched to open up the slits. If the gas passage means on the first side of the fuel cell is formed between the adjacent interconnect member and the corrugated sheet, the corrugated sheet must be porous or otherwise have gas flow passages therethrough. In the preferred embodiment, the corrugated 20 sheet is formed of expanded material. However, the corrugated sheet may be used to define the gas passage means, in which case it may not need to have gas flow passages therethrough. The corrugated sheet may be joined to the adjacent interconnect member, for example by spot welding, in order to control the compressibility of the corrugated sheet. Alternatively, the 25 substantially flat sheet of metal or metallic material may be disposed between the corrugated sheet and the adjacent interconnect member and may be joined to the corrugated sheet by, for example, spot welding. This substantially flat sheet may also be of expanded material or otherwise have gas flow passages therethrough and may be joined to the interconnect member, for example by spot welding. 30 WO 98/57384 PCT/AU98/00437 -6 The compressible layer may alternatively comprise an integral compliant layer on the interconnect member which is adjacent the first side of the fuel cell. For a compressible means on the cathode side of the fuel cell, in addition to having electrical 5 conductivity and porosity the material should be resistant to oxidation, for example a form of ceramic felt or other fibre structure. Electrically conductive compressible means as described above may also be disposed within the chamber in electrical contact with the second side of the fuel cell and the adjacent 10 interconnect member. Advantageously, compressible means on only one side is disposed on the upper side of the fuel cell. The chamber for the fuel cell may be defined by a recess in one or both of the adjacent interconnect members, with the interconnect members being electrically insulated from each 15 other around the chamber, and/or by an insulating spacer between the adjacent interconnect members around the chamber. The insulating spacer may be formed of an insulating material, for example a ceramic such as alumina, or, for example, of a conductive material, such as a metal, having an insulating coating or surface layer thereon. 20 Gas flow channels across one or both sides of the interconnect members for flow of oxygen containing gas and/or fuel gas to respective sides of the fuel cells may be formed in the interconnect members. To minimise machining or other finishing of the interconnect members, the channels for gas flow to at least the first side of the fuel cell are advantageously defined by the compressible means, as described above, and the compressible means 25 advantageously contacts a flat side of the adjacent interconnect member. The interconnect member may conveniently be formed of a stainless steel. The fuel cell assembly may be externally manifolded for the gas flows, for example as described in the aforementioned EP 0568991, but is preferably internally manifolded. Thus, 30 the oxygen-containing gas and fuel gas supply and exhaust passages preferably pass through WO 98/57384 PCT/AU98/00437 -7 the interconnect members, and possibly through the aforementioned insulating spacer if provided. A seal which is advantageously compressible in use is conveniently provided around a 5 peripheral portion of the fuel cell between the second side thereof and the adjacent interconnect member to seal the fuel gas and the oxygen-containing gas in the chamber from each other. Since the electrode layers may have a degree of porosity, it is desirable for the electrode layer on the second side of the fuel cell, preferably the cathode layer as described above, to not extend into the peripheral portion of the fuel cell, so that the seal engages the 10 electrolyte layer. Preferably, when the compressible means is provided on only the first side of the fuel cell, the seal is compressible in use to the extent that the electrode on the second side of the fuel cell abuts and makes electrical contact with the adjacent interconnect member at the operating temperature. In a preferred embodiment, the seal is solid at room temperature, and therefore during assembly, but becomes viscous at the operating 15 temperature, for example 7000C to 1,000C, of the fuel cell assembly. Advantageously, the seal is a glass-containing gasket which may comprise plural layers of glass containing material. The seal, or a separate seal member, may extend between the adjacent interconnect members 20 or between the interconnect member adjacent the second side of the fuel cell and the aforementioned insulating spacer. A further seal member, which may be thinner than the seal and/or the first-mentioned seal member may be provided between the insulating spacer and the interconnect member adjacent the first side of the fuel cell. The first and second mentioned seal members may be formed of the same or similar material to the seal and may 25 also be compressed in use of the fuel cell assembly. The or each fuel cell may be one of an array of fuel cells in a respective layer of plural planar fuel cells in the assembly, with each fuel cell being disposed in a chamber in accordance with the present invention. Advantageously, the interconnect members adjacent a common side 30 of all or more than one of the fuel cells in each array are formed in a single plate. Likewise, WO 98/57384 PCT/AU98/00437 -8 the aforementioned insulating spacer, if provided, may define partly or wholly all or more than one of the chambers for the fuel cells in each array. The present invention will be further described by way of example only with reference to the 5 accompanying drawings in which: Figure 1 is a sectional elevation of a fuel cell assembly including one fuel cell, taken on the line A-A of Figure 2; Figure 2 is an exploded perspective view of the fuel cell assembly of Figure 1; Figure 3 is a plan view from above of one of the interconnect members shown in 10 Figure 1; Figure 4 is a plan view from below of the interconnect member of Figure 3; Figure 5 is a plan view from above of the insulating spacer plate of the assembly of Figure 1; Figure 6 is a plan view from above of an alternative interconnect plate incorporating 15 four interconnect members for a use in a fuel cell assembly having an array of four parallel sets of fuel cells; Figure 7 is a sectional view along the line A-A of Figure 6; Figure 8 is a sectional view along the line B-B of Figure 6; Figure 9 is a plan view from above of an insulating spacer plate for use with the 20 interconnect plate of Figure 6; Figure 10 is a sectional view along the line A-A of Figure 9; Figure 11 is a graph showing the power curve for the single cell assembly of Example 1; Figure 12 is a graph showing the power curve for the six cell fuel cell stack of 25 Example 2; and Figure 13 is a graph showing the time curve for the six cell stack of Example 2. Referring to Figures 1 to 5, the single fuel cell assembly 10 comprises a pair of spaced interconnect plates 12 and 14 with a single fuel cell 16 between them. The present invention 30 is particularly applicable to a stack of a plurality of fuel cells, but will operate with a single WO 98/57384 PCT/AU98/00437 -9 fuel cell and is described accordingly for convenience. The fuel cell 16 is illustrated as of the type in which the anode 18 is the primary load bearing layer with a thin electrolyte layer 20 on one surface and a thin cathode layer 22 applied to the 5 electrolyte layer 20. Such cells are known for intermediate temperature operation of a fuel cell assembly, at around 800 0 C, but the fuel cell 16 could be replaced by, for example, a fuel cell as described in the aforementioned International patent applications. In the fuel cell 16, the solid oxide electrolyte layer 20 may comprise Y 2 0 3 -doped ZrO 2 (YSZ) 10 having a thickness of about 20 microns laminated on a Ni/YSZ anode having a thickness greater than about 0.5mm, for example 0.8 to 1.0mm. The cathode layer 22 may comprise strontium doped lanthanum manganite (LSM) having a thickness of about 50 to 100 microns. The anode and cathode layers 18 and 22 are porous, and the cathode layer 22 is of reduced 15 area compared to the anode and electrolyte layers 18 and 20, not extending to the periphery of the electrolyte 20, for sealing purposes. The interconnect plates 12 and 14 may be formed of any of the materials described in the aforementioned International patent applications, but are preferably formed of corrosion 20 resistant stainless steel which has a degree of creep at the operating temperature allowing improved electrical contact and stress relief without optical grinding to provide smooth surfaces. A suitable material is described in our co-pending Australian patent application entitled "A Heat Resistant Steel" , the contents of which may be incorporated herein by reference. The stainless steel interconnect plates may be suitably coated to enhance electrical 25 contact. For example, the cathode side 24 may have a coating of La-Sr-CrO 3 (LSC), while the anode side 26 may have a nickel coating. The interconnect plates 12 and 14 are shown ribbed on only the cathode side 24 to facilitate air flow across the cathode layer 22 of the fuel cell 16, and the channels 28 between the ribs 30 30 may have an alumina coating to minimise corrosion. In the illustrated embodiment, fuel WO 98/57384 PCT/AU98/00437 - 10 gas flow on the anode side 26 of the interconnect plates is directed by a compression member 32, as described hereinafter, but it could be facilitated by cooperating channels in the anode side 26 of the interconnect plates, or the fuel gas distribution across the anode side 18 of the fuel cell 16 may be performed substantially only by channels on the anode side 26 of the 5 interconnect plates, for example as described in the aforementioned International patent applications. It will be appreciated that in a single fuel cell assembly as shown in Figure 1, there will be no air flow across the side 24 of the interconnect plate 12 and no fuel gas flow across the side 10 26 of the interconnect plate 14, so the channels and ribs 28 and 30 in the interconnect plate 12 may be omitted. Similar considerations apply to the end interconnect plates in a stacked fuel cell assembly. In a stack, further fuel cells 16 are disposed between respective pairs of interconnect plates in the manner described below, with a single interconnect plate disposed between adjacent fuel cells. 15 The interconnect plates 12 and 14 are spaced apart by an insulating spacer plate 34 having an opening 36 therethrough defining a chamber between the interconnect plates within which the fuel cell 16 is received. The spacer plate may be formed of, for example, alumina or a conducting material such as stainless steel with an insulating coating, for example of alumina. 20 The insulating spacer plate 34 is of greater thickness than the fuel cell 16, and the compression member 32 is disposed between the interconnect plate 12 and the anode layer 18 of the fuel cell 16 within the chamber defined by the opening 36 of the spacer 34. The compression member 32 may be formed of for example nickel or nickel alloy and maintains electrical contact between the interconnect plate 12 and the anode layer 18 of the fuel cell. 25 Additionally, the compression member 32 applies pressure to the fuel cell 16 from the interconnect plate 12 to maintain the cathode layer 22 in electrical contact with the cathode side 24 of the interconnect plate 14. However, this pressure is limited by the spacer plate 34 so that it is independent of the number of fuel cell assemblies which may be above the assembly 10 in a stack. This greatly enhances use of the relatively weak fuel cell 16 30 compared to the fuel cells described in the aforementioned International patent applications.
WO 98/57384 PCT/AU98/00437 -11 The compression member 32 comprises three sheets of superposed expanded nickel mesh. The outer sheets 38 and 40 are flat, but the inner sheet 42 is corrugated. Each of the sheets has a thickness of about quarter of a millimetre, and the overall thickness of the compression member 32 is 1.5 to 2mm, for example about 1.7mm. 5 The corrugated nature of the inner sheet 42 facilitates fuel gas flow across the chamber defined by the opening 36, and the open mesh nature of the expanded sheets allows the distributed fuel gas to contact the anode layer 18 of the fuel cell. 10 The corrugated inner sheet 42 also gives the member 32 a degree of compressibility through its thickness so as to provide the desired compressive force between the interconnect plate 12 and the fuel cell. The compressive force must be able to be maintained throughout use of the fuel cell, in order to maintain electrical contact between the fuel cell and both interconnect plates 12 and 14, and the inner sheet 42 is advantageously secured to one of the outer sheets 15 38 and 40, for example by spot welding, to increase the resistance to compression. Advantageously, the inner sheet 42 is spot welded to the outer sheet 38 and the outer sheet 40 alleviates any sliding contact between the inner sheet 42 as it is compressed and the anode layer 18 of the fuel cell. Alternatively, the outer sheet 38 may be omitted and the corrugated inner sheet 42 may be spot welded directly to the interconnect plate 12. Alternatively again, 20 in this embodiment, the outer sheet 40 could also be omitted. Likewise, the corrugated inner sheet 42 could be bonded to one of the outer sheets 38 and 40, as by spot welding, and the other outer sheet may be omitted. It is envisaged that a replacement of the nickel material of the compression member 32 by nickel alloy may improve the desirable characteristics of the compression member. 25 It is important to seal the air in the chamber on the cathode side of the fuel cell from the fuel gas in the chamber on the anode side, and a seal in the form of a glass containing gasket 44 is seated on the cathode side 24 of the interconnect plate 14 around the air distribution channels 28. The gasket 44 extends fully between the interconnect plate 14 and the spacer 30 plate 34 and also between the interconnect plate 14 and a peripheral region 46 of the fuel cell WO 98/57384 PCT/AU98/00437 -12 16. Since the cathode layer 22 of the fuel cell is porous, it does not extend into the peripheral region 46 and the gasket 44 contacts the fully dense solid oxide electrolyte layer 20 in the peripheral region 46. If desired, the portion of the gasket 44 contacting the peripheral region 46 of the fuel cell could be separate from the portion of the gasket contacting the spacer plate 5 34. A thinner glass containing gasket 48 is disposed between the spacer plate 34 and the anode side 26 of the interconnect plate 12 to seal the anode side of the chamber. The gaskets 44 and 48 are conveniently formed of plural layers of glass containing material which is rigid under ambient conditions but which becomes viscous at the operating 10 temperature of the fuel cell. This enables the gaskets 44 and 48, particularly the thicker gasket 44, to compress and thereby ensure the desired seal, with the compression in practice being such as to ensure the cathode layer 22 on the fuel cell is urged by the compression member 32 into contact with the cathode side 24 of the interconnect plate 14. As the gaskets 44 and 48 are compressed, the interconnect plates 12 and 14 move towards each other, but 15 this movement is limited by the spacer plate 34 so that the degree of compression applied to the fuel cell by the compression member 32 is limited and is independent of the position of the fuel cell assembly 10 in a stack of fuel cells. Referring now to Figures 2 to 5, it may be seen that the fuel cell assembly 10 is internally 20 manifolded, that is manifolds for the oxygen-containing gas and fuel gas extend through the interconnect plates 12 and 14 and the spacer plate 34, as well as through the gaskets 44 and 48. However, this is not essential and the fuel cell assembly 10 could be externally manifolded. 25 In Figures 2 to 5 it may be seen that the oxygen-containing gas inlet manifold 50 and outlet manifold 52 are diagonally opposed to each other so as to ensure proper distribution of the gas across the channels 28. Likewise, the fuel gas inlet manifold 54 and outlet manifold 56 are diagonally opposed to each other to ensure even distribution of the fuel gas across the distribution channels defined by the compression member 32. The flow directions for the 30 oxygen-containing gas and fuel gas are shown parallel, but they could easily be made WO 98/57384 PCT/AU98/00437 -13 counterflow by swapping one of the pairs of inlet and outlet manifolds. Likewise, the invention is applicable to a cross flow arrangement, much as described with reference to Figures 6 to 10. 5 The oxygen-containing gas inlet and outlet manifolds 50 and 52 communicate with the distribution channels 28 in the interconnect plate by way of inlet and outlet passages 58 and 60 and distributors 62 and 64 defined by grooves in the interconnect plate. The inlet and outlet channels 58 and 60 are recessed on each side at 66 to receive a sealing shim (not shown), for example of stainless steel. The gasket 44 may extend over the sealing shim. 10 In Figure 5, it may be seen that the spacer plate 34 has fuel gas inlet and outlet passages 68 and 70 defined by respective grooves extending between the manifold passages 54 and 56 therethrough and the opening 36 defining the chamber for the fuel cell 16 and compression member 32. 15 Referring now to Figures 6 to 10, it may be seen that the present invention may be applied also to a fuel cell assembly incorporating a parallel array of, for example, four fuel cells. One interconnect plate 80 and one spacer plate 82 are illustrated for this purpose in Figures 6 to 8 and Figures 9 and 10 respectively. The fuel cells are not shown, but they will be 20 individual and may be identical to the fuel cell 16 described above. Likewise, the interconnect plate 80 and spacer plate 82 will be assembled in identical manner as has been described above with correspondingly shaped sealing gaskets above and below the spacer plate 82 extending around the four openings 84 in the spacer plate defining chambers 25 within which respective assemblies of a fuel cell and a compression member such as the member 32 will be received. The interconnect plate 80 and spacer plate 82 are also internally manifolded, but in a different manner to the manifolding in the fuel assembly 10. In Figures 6 to 10, a cross flow 30 arrangement is used so that the compression member 32 would be rotated through 90" WO 98/57384 PCT/AU98/00437 - 14 compared to its orientation in the fuel assembly 10 with the distribution channels defined by the corrugations of the inner sheet 42 extending perpendicularly to the air side distribution channels 86 in the interconnect plate 80. This arrangement allows the arrayed fuel cell assemblies to be paired for manifolding purposes. Thus, while each array has a respective 5 oxygen-containing gas inlet manifold passage 88 for each fuel cell, respective oxygen containing gas outlet manifold passages 90 are common to paired fuel cells. Likewise, each array has a respective fuel gas inlet manifold passage 92 for each fuel cell, but fuel gas outlet manifold passages 94 are common to respective pairs of the fuel cells. The manifold passages all extend at least substantially across the full width of the respective opening(s) 84. It will 10 be appreciated that the respective gas flows may be reversed by swapping the inlet and outlet manifold passages. Two examples will now be given illustrating the performance of the fuel cell assembly 10 illustrated in Figures 1 to 5. In Example 1 only a single fuel cell was tested, but in Example 15 2 the fuel cell assembly comprised a six cell stack. The cell assemblies in the Examples were identical and comprised 50mm by 50mm fuel cells, each comprising a Ni/YSZ anode layer of greater than 0.5mm thickness having a 20 micron YSZ electrolyte layer laminated thereto with a 100 micron LSM cathode layer on the other side of the electrolyte. The compression member in each cell assembly comprise a corrugated expanded nickel mesh with flat sheets 20 of nickel mesh on each side, one of which was spot welded to the corrugated mesh, to give a total thickness of about 1.7mm, each sheet having a thickness of about 230 microns. The interconnect members were corrosion resistant stainless steel having an LSC conducting layer on the ribs and an alumina coating in the distribution channels on the cathode side, and a nickel coating on the fuel side. The composition of the stainless steel was, in wt. %: Cr 25 26.25-28; C 0.011-0.080; Si 0.01-0.09; Mn 0.01; Ni 0.01; S 0.001-0.002; P 0.002; rare earth metal 0.01-0.15, residue iron, excluding incidental impurities any of which were at trace levels or below. The spacer plate in each fuel cell assembly was of alumina, with a thickness of 2mm, and the gaskets were of a glass-containing material which became viscous at the operating temperature of 800 0 C. The thicknesses of the gaskets were adjusted so as 30 to be optimum for providing the desired sealing.
WO 98/57384 PCT/AU98/00437 -15 Example 1 After heating the single fuel cell assembly to 800 0 C, fuel gas (4% water in hydrogen) was passed over the anode via the compression member. Air was used as the oxygen-containing 5 gas. The cell sealed well and reached the theoretical open circuit voltage of 1.084 V. The cell produced a peak power of about 450 mW/cm 2 at 16 amps, as shown in Figure 11. The cell was run for a total of 250 hours, and then terminated for post mortem analysis. In-situ electrochemical diagnostic tests showed low contact resistance, indicative of the compression member having performed well. 10 Example 2 After assembly of the six fuel cell stack, the stack was heated in the test station to 800 0 C. Then the stack was tested with 4 % water in hydrogen as the fuel gas and air as the oxidant 15 gas. The stack sealed well, with all six cells reaching the theoretical open circuit voltage of 1.084 V. The stack reached a peak power of 29 W at 10 A, as shown in Figure 12. The stack was then operated at 150 mA/cm 2 and 200 mA/cm 2 for a period of 250 hours before being shut down for analysis, and the results are shown in Figure 14. The stack sealed well over the complete test period. In-situ electrochemical tests indicated excellent contact 20 between the cells and the interconnect plates, demonstrating the compression members were working well. Throughout this specification and the claims which follow, unless the context requires otherwise, the word "comprise", and variations such as "comprises" and "comprising", will 25 be understood to imply the inclusion of a stated integer or step or group of integers or steps but not the exclusion of any other integer or step or group of integers or steps. Those skilled in the art will appreciate that the invention described herein is susceptible to variations and modifications other than those specifically described. It is to be understood 30 that the invention includes all such variations and modifications which fall within its spirit and WO 98/57384 PCT/AU98/00437 -16 scope as defined by the appended claims.

Claims (16)

1. A fuel cell assembly comprising a planar fuel cell having an electrolyte layer with an anode layer on one side and a cathode layer on the other side, the fuel cell being disposed between and in electrical contact with respective interconnect members, oxygen-containing 5 gas passage means being formed between the cathode layer and the adjacent interconnect member and fuel gas passage means being formed between the anode layer and the adjacent interconnect member, and wherein a chamber of greater height than the thickness of the fuel cell is defined between the interconnect members within which the fuel cell is received and electrically conductive compressible means also disposed within the chamber in electrical 10 contact with a first side of the fuel cell and the adjacent interconnect member urges the fuel cell towards the adjacent interconnect member on the second side thereof to maintain the fuel cell in electrical contact with both interconnect members.
2. A fuel cell assembly according to claim 1 comprising a stack of a plurality of planar 15 fuel cells each comprising an electrolyte layer having an anode layer on one side and a cathode layer on the other side and a plurality of interconnect members, each fuel cell being disposed between and in electrical contact with an adjacent pair of interconnect members with oxygen-containing gas passage means being formed between the cathode layer of each fuel cell and the adjacent interconnect member and fuel gas passage means being formed between 20 the anode layer of each fuel cell and the adjacent interconnect member, and wherein a chamber of greater height than the thickness of the respective fuel cell is defined between the adjacent interconnect members in each pair within which the fuel cell is received, and electrically conductive compressible means also disposed within the chamber in electrical contact with a first side of the fuel cell and the adjacent interconnect member urges the fuel 25 cell towards the adjacent interconnect member on the second side thereof to maintain the fuel cell in electrical contact with both adjacent interconnect members.
3. A fuel cell assembly according to claim 1 or claim 2 wherein the electrically conductive compressible means is disposed on the anode side of the fuel cell. 30 WO 98/57384 PCT/AU98/00437 - 18
4. A fuel cell assembly according to claim 3 wherein the electrically conductive compressible means is formed of a material selected from a metal from Groups 8-11 of the Periodic Table, preferably nickel, an alloy of one or more of such metals, and such a metal which has been oxide dispersion strengthened. 5
5. A fuel cell assembly according to any one of the preceding claims wherein the electrically conductive compressible means is selected from a structure which retains some resilience at the operating temperature and a composite of a porous brittle material and a metal. 10
6. A fuel cell assembly according to claim 5 wherein the electrically conductive compressible means comprises a corrugated sheet of metal or metallic material, preferably expanded, optionally with a substantially flat sheet of metal or metallic material, preferably expanded, disposed between the corrugated sheet and the fuel cell. 15
7. A fuel cell assembly according to claim 6 wherein a substantially flat sheet of metal or metallic material, preferably expanded, is disposed between the corrugated sheet and the adjacent interconnect member, optionally joined to the corrugated sheet. 20
8. A fuel cell assembly according to claim 6 or 7 wherein the electrically conductive compressible means is joined to the adjacent interconnect member, preferably by spot welding.
9. A fuel cell assembly according to any one of claims 6 to 8 wherein the electrically 25 conductive compressible means forms the gas passage means between the first side of the fuel cell and the adjacent interconnect member and contacts a flat side of said adjacent interconnect member.
10. A fuel cell assembly according to any one of the preceding claims wherein the 30 electrically conductive compressible means is disposed on the upper side of the fuel cell. WO 98/57384 PCT/AU98/00437 - 19
11. A fuel cell assembly according to any one of the preceding claims wherein a seal is provided around a peripheral portion of the fuel cell between the second side thereof, preferably in contact with the electrolyte layer, and the adjacent interconnect member to seal the oxygen-containing gas and fuel gas in the chamber from each other. 5
12. A fuel cell assembly according to claim 11 wherein the seal is compressible in use, preferably solid at room temperature and viscous at the cell operating temperature, preferably to the extent that the electrode layer on the second side of the fuel cell is initially spaced from the adjacent interconnect member and abuts and makes electrical contact with said adjacent 10 interconnect member at the operating temperature, and preferably is in the form of a glass containing gasket, optionally with plural layers of glass-containing material.
13. A fuel cell assembly according to claim 11 or 12 wherein the seal, or a separate seal member optionally having the same properties as the seal, extends around the chamber to at 15 least partially seal the chamber from the exterior.
14. A fuel cell assembly according to any one of the preceding claims wherein an insulating spacer extends around the fuel cell and the electrically conductive compressible means to at least partly define the chamber, optionally with a seal member disposed between 20 the insulating spacer and the interconnect member adjacent to the first side of the fuel cell.
15. A fuel cell assembly according to any one of the preceding claims which is internally manifolded. 25
16. A fuel cell assembly according to any one of the preceding claims wherein the or each fuel cell is one of an array in a respective layer of plural planar fuel cells in the assembly, each disposed in a chamber as defined in claim 1, optionally with the interconnect members adjacent a common side of all or more than one of the fuel cells in each array being formed in a single plate. 30
AU76313/98A 1997-06-10 1998-06-10 A fuel cell assembly Ceased AU735079B2 (en)

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AUPO7249A AUPO724997A0 (en) 1997-06-10 1997-06-10 A fuel cell assembly
AUPO7249 1997-06-10
AU76313/98A AU735079B2 (en) 1997-06-10 1998-06-10 A fuel cell assembly
PCT/AU1998/000437 WO1998057384A1 (en) 1997-06-10 1998-06-10 A fuel cell assembly

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AU735079B2 AU735079B2 (en) 2001-06-28

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Publication number Priority date Publication date Assignee Title
US4983472A (en) * 1989-11-24 1991-01-08 International Fuel Cells Corporation Fuel cell current collector
JPH05315004A (en) * 1992-05-08 1993-11-26 Osaka Gas Co Ltd Solide electrolyte type fuel cell

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