US20180375143A1 - Modular planar interconnect device for a solid oxide fuel cell and the solid oxide fuel cell containing the same - Google Patents
Modular planar interconnect device for a solid oxide fuel cell and the solid oxide fuel cell containing the same Download PDFInfo
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- US20180375143A1 US20180375143A1 US16/117,088 US201816117088A US2018375143A1 US 20180375143 A1 US20180375143 A1 US 20180375143A1 US 201816117088 A US201816117088 A US 201816117088A US 2018375143 A1 US2018375143 A1 US 2018375143A1
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- interconnect device
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- 239000000446 fuel Substances 0.000 title claims abstract description 46
- 239000007787 solid Substances 0.000 title claims abstract description 30
- 210000004027 cell Anatomy 0.000 claims description 53
- 210000005056 cell body Anatomy 0.000 claims description 23
- 239000012530 fluid Substances 0.000 claims description 16
- 239000000463 material Substances 0.000 claims description 9
- 229910045601 alloy Inorganic materials 0.000 claims description 8
- 239000000956 alloy Substances 0.000 claims description 8
- QVGXLLKOCUKJST-UHFFFAOYSA-N atomic oxygen Chemical compound [O] QVGXLLKOCUKJST-UHFFFAOYSA-N 0.000 claims description 8
- 239000002241 glass-ceramic Substances 0.000 claims description 8
- 239000010445 mica Substances 0.000 claims description 8
- 229910052618 mica group Inorganic materials 0.000 claims description 8
- 239000001301 oxygen Substances 0.000 claims description 8
- 229910052760 oxygen Inorganic materials 0.000 claims description 8
- 238000005476 soldering Methods 0.000 claims description 8
- 230000000694 effects Effects 0.000 description 4
- 230000005611 electricity Effects 0.000 description 2
- 238000007789 sealing Methods 0.000 description 2
- 239000003570 air Substances 0.000 description 1
- 238000006243 chemical reaction Methods 0.000 description 1
- 239000001257 hydrogen Substances 0.000 description 1
- 229910052739 hydrogen Inorganic materials 0.000 description 1
- -1 hydrogen ions Chemical class 0.000 description 1
- 238000004519 manufacturing process Methods 0.000 description 1
- 230000004048 modification Effects 0.000 description 1
- 238000012986 modification Methods 0.000 description 1
- 239000007800 oxidant agent Substances 0.000 description 1
- 239000010935 stainless steel Substances 0.000 description 1
- 229910001220 stainless steel Inorganic materials 0.000 description 1
- 239000000126 substance Substances 0.000 description 1
Images
Classifications
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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
- H01M8/24—Grouping of fuel cells, e.g. stacking of fuel cells
- H01M8/241—Grouping of fuel cells, e.g. stacking of fuel cells with solid or matrix-supported electrolytes
- H01M8/2425—High-temperature cells with solid electrolytes
- H01M8/2432—Grouping of unit cells of planar configuration
-
- 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
- H01M8/0258—Collectors; Separators, e.g. bipolar separators; Interconnectors characterised by the configuration of channels, e.g. by the flow field of the reactant or coolant
-
- 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
- H01M8/0258—Collectors; Separators, e.g. bipolar separators; Interconnectors characterised by the configuration of channels, e.g. by the flow field of the reactant or coolant
- H01M8/026—Collectors; Separators, e.g. bipolar separators; Interconnectors characterised by the configuration of channels, e.g. by the flow field of the reactant or coolant characterised by grooves, e.g. their pitch or depth
-
- 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
- H01M8/10—Fuel cells with solid electrolytes
- H01M8/12—Fuel cells with solid electrolytes operating at high temperature, e.g. with stabilised ZrO2 electrolyte
- H01M8/124—Fuel cells with solid electrolytes operating at high temperature, e.g. with stabilised ZrO2 electrolyte characterised by the process of manufacturing or by the material of the electrolyte
- H01M8/1246—Fuel cells with solid electrolytes operating at high temperature, e.g. with stabilised ZrO2 electrolyte characterised by the process of manufacturing or by the material of the electrolyte the electrolyte consisting of oxides
-
- 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
- H01M8/24—Grouping of fuel cells, e.g. stacking of fuel cells
- H01M8/241—Grouping of fuel cells, e.g. stacking of fuel cells with solid or matrix-supported electrolytes
- H01M8/242—Grouping of fuel cells, e.g. stacking of fuel cells with solid or matrix-supported electrolytes comprising framed electrodes or intermediary frame-like gaskets
-
- 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
- H01M8/24—Grouping of fuel cells, e.g. stacking of fuel cells
- H01M8/241—Grouping of fuel cells, e.g. stacking of fuel cells with solid or matrix-supported electrolytes
- H01M8/2425—High-temperature cells with solid electrolytes
-
- 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
- H01M8/12—Fuel cells with solid electrolytes operating at high temperature, e.g. with stabilised ZrO2 electrolyte
- H01M2008/1293—Fuel cells with solid oxide electrolytes
-
- 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
- H01M8/24—Grouping of fuel cells, e.g. stacking of fuel cells
- H01M8/2465—Details of groupings of fuel cells
- H01M8/2484—Details of groupings of fuel cells characterised by external manifolds
-
- 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
Definitions
- the disclosure relates to a modular planar interconnect device, and more particularly to a modular planar interconnect device for a solid oxide fuel cell.
- the disclosure also relates to the solid oxide fuel cell containing the modular planar interconnect device.
- a fuel cell is a device that converts chemical energy from a fuel into electricity through a chemical reaction of positively charged hydrogen ions with oxygen or another oxidizing agent.
- the fuel cell can produce electricity continuously for as long as fuel and oxygen or air are supplied continuously.
- a planar solid oxide fuel cell is more popular in various applications because it has advantages of durable stability and low production cost and because a plurality of the planar solid oxide fuel cells may be stacked and electrically connected in series to produce high voltage.
- the power efficiency and stability thereof may be negatively affected due to the fact that deformation of a seal material used for stacking the planar solid oxide fuel cells may affect flow of a fuel fluid and/or that the seal material may come into contact with the fuel fluid to react with the fuel fluid or to be eluted by the fuel fluid.
- an object of the disclosure is to provide a solid oxide fuel cell which may overcome the disadvantages of the conventional planar solid oxide fuel cell and which has enhanced power density, fuel utilization, power efficiency, and heat exchange effect.
- a modular planar interconnect device for being sandwiched between a pair of planar cell units, each of which includes an anode web, a cathode web, and a planar cell body sandwiched between the anode and cathode webs.
- the modular planar interconnect device comprises a planar interconnect body, a pair of upper shielding plates, and a pair of lower shielding plates.
- the planar interconnect body includes an upper major surface, a lower major surface, a right lateral surface, and a left lateral surface.
- the upper major surface includes a right marginal region, a left marginal region, an upper main region, a first inlet region for an oxygen-containing fluid, a first outlet region for the oxygen-containing fluid, and a plurality of grooved channels.
- the left marginal region is disposed opposite to the right marginal region in a longitudinal direction.
- the upper main region is disposed between the right and left marginal regions for underlying the cathode web of an upper one of the planar cell units.
- the first inlet region is disposed between the right marginal region and the upper main region, and is formed with a first inlet depression area that is recessed from the upper major surface downwardly and inwardly so as to form front and rear boundary wall surfaces spaced apart from each other in a transverse direction.
- the first outlet region is disposed between the left marginal region and the upper main region, and is formed with a first outlet depression area that is recessed from the upper major surface downwardly and inwardly so as to form front and rear boundary wall surfaces spaced apart from each other in the transverse direction.
- the grooved channels are formed in the upper main region of the upper major surface, and extend through the first inlet region to terminate at a plurality of first inlet ports and further through the first outlet region to terminate at a plurality of first outlet ports.
- the lower major surface includes a front marginal region, a rear marginal region, a lower main region, a second inlet region for a fuel fluid, a second outlet region for the fuel fluid, and a plurality of grooved channels.
- the rear marginal region is disposed opposite to the front marginal region in the transverse direction.
- the lower main region is disposed between the front and rear marginal regions for overlying the anode web of a lower one of the planar cell units.
- the second inlet region is disposed between the front marginal region and the lower main region, and is formed with a second inlet depression area that is recessed from the lower major surface upwardly and inwardly so as to form right and left boundary wall surfaces spaced apart from each other in the longitudinal direction.
- the second outlet region is disposed between the rear marginal region and the lower main region, and is formed with a second outlet depression area that is recessed from the lower major surface upwardly and inwardly so as to form right and left boundary wall surfaces spaced apart from each other in the longitudinal direction.
- the grooved channels are formed in the lower main region of the lower major surface, and extend through the second inlet region to terminate at a plurality of second inlet ports and further through the second outlet region to terminate at a plurality of second outlet ports.
- the right marginal region has a first introducing slot extending from the upper major surface to the lower major surface so as to fluidly communicate with the first inlet ports.
- the left marginal region has a first exit slot extending from the upper major surface to the lower major surface so as to fluidly communicate with the first outlet ports.
- the right lateral surface joins the upper major surface and the lower major surface, and includes a right lateral slot which extends leftwardly and inwardly so as to fluidly communicate with the first introducing slot, and which extends in the transverse direction to terminate at a first front end surface and a first rear end surface.
- the left lateral surface joins the upper major surface and the lower major surface, and includes a left lateral slot which extends rightwardly and inwardly so as to fluidly communicate with the first exit slot, and which extends in the transverse direction to terminate at a second front end surface and a second rear end surface.
- the upper shielding plates are configured to be respectively fitted between the front and rear boundary wall surfaces of the first inlet region and between the front and rear boundary wall surfaces of the first outlet region.
- the lower shielding plates is configured to be respectively fitted between the right and left boundary wall surfaces of the second inlet region and between the right and left boundary wall surfaces of the second outlet region.
- a solid oxide fuel cell which comprises upper and lower modular planar interconnect devices, a planar cell unit, an upper first auxiliary seal member, and a lower upper first auxiliary seal member.
- Each of the upper and lower modular planar interconnect devices is the modular planar interconnect device described above.
- the planar cell unit is sandwiched between the upper and lower modular planar interconnect devices, and includes a planar cell member, an anode member, and a cathode member.
- the planar cell member includes a planar cell body and a cell-body support frame.
- the planar cell body is interposed between the lower main region of the lower major surface of the upper modular planar interconnect device and the upper main region of the upper major surface of the lower modular planar interconnect device.
- the cell-body support frame is disposed to surround and support a periphery of the planar cell body, and has upper front and rear support regions and lower right and left support regions.
- the upper front and rear support regions are opposite to each other in the transverse direction, and respectively mate with the second inlet and outlet regions of the lower major surface of the upper modular planar interconnect device.
- the lower right and left support regions are opposite to each other in the longitudinal direction, and respectively mate with the first inlet and outlet regions of the upper major surface of the lower modular planar interconnect device.
- the anode member includes an anode web and an anode frame.
- the anode web is sandwiched between the planar cell body and the lower major region of the lower major surface of the upper modular planar interconnect device.
- the anode frame is disposed to surround and support a periphery of the anode web and has front and rear anode frame regions which are opposite to each other in the transverse direction, and which respectively mate with the second inlet and outlet regions of the lower major surface of the upper modular planar interconnect device.
- the cathode member includes a cathode web and a cathode frame.
- the cathode web is sandwiched between the planar cell body and the upper major region of the upper major surface of the lower modular planar interconnect device.
- the cathode frame is disposed to surround and support a periphery of the cathode web and has right and left cathode frame regions which are opposite to each other in the longitudinal direction, and which respectively mate with the first inlet and outlet regions of the upper major surface of the lower modular planar interconnect device.
- the upper first auxiliary seal member is disposed between one of the front and rear anode frame regions of the anode frame and a corresponding one of the second inlet and outlet regions of the lower major surface of the upper modular planar interconnect device to form a fluid-tight seal therebetween.
- the lower first auxiliary seal member is disposed between one of the right and left cathode frame regions of the cathode frame and a corresponding one of the first inlet and outlet regions of the upper major surface of the lower modular planar interconnect device to form a fluid-tight seal therebetween.
- FIG. 1 is a perspective exploded view of a first embodiment of a modular planar interconnect device according to the disclosure
- FIG. 2 is a perspective exploded view of the first embodiment of the modular planar interconnect device sandwiched between a pair of planar cell units;
- FIG. 3 is a schematic top view of the first embodiment of the modular planar interconnect device
- FIG. 4 is a schematic bottom view of the first embodiment of the modular planar interconnect device
- FIG. 5 is a perspective exploded view of a second embodiment of a modular planar interconnect device according to the disclosure.
- FIG. 6 is a perspective exploded view of the second embodiment of the modular planar interconnect device sandwiched between a pair of planar cell units;
- FIG. 7 is a schematic top view of the second embodiment of the modular planar interconnect device.
- FIG. 8 is a schematic bottom view of the second embodiment of the modular planar interconnect device
- FIG. 9 is a perspective view of an embodiment of a solid oxide fuel cell according to the disclosure.
- FIG. 10 is a perspective exploded view of the embodiment of the solid oxide fuel cell
- FIG. 11 is a schematic sectional view of the embodiment of the solid oxide fuel cell taken along line XI-XI in FIG. 9 ;
- FIG. 12 is a schematic sectional view of the embodiment of the solid oxide fuel cell taken along line XII-XII in FIG. 9 .
- FIGS. 1-4 a first embodiment of a modular planar interconnect device 2 according to the disclosure is shown to be sandwiched between a pair of planar cell units 3 .
- Each of the planar cell units 3 includes an anode web 34 , a cathode web 35 , and a planar cell body 33 sandwiched between the anode and cathode webs 34 , 35 .
- the modular planar interconnect device 2 is shown to include a planar interconnect body 21 , a pair of upper shielding plates 5 , and a pair of lower shielding plates 4 .
- the planar interconnect body 21 and the upper and lower shielding plates 5 , 4 are made from a stainless steel material such as SUS 430, SUS 431, SUS 441, Crofer® 22, and the like.
- the planar interconnect body 21 , the upper shielding plates 5 , and the lower shielding plates 4 are formed separately. Alternatively, they may be formed as a single-piece configuration.
- the planar interconnect body 21 includes an upper major surface 25 , a lower major surface 24 , a right lateral surface 26 , and a left lateral surface 27 .
- the upper major surface 25 includes a right marginal region 251 , a left marginal region 252 , an upper main region 253 , a first inlet region 254 for an oxygen-containing fluid, a first outlet region 255 for the oxygen-containing fluid, and a plurality of grooved channels 256 .
- the left marginal region 252 is disposed opposite to the right marginal region 251 in a longitudinal direction (A).
- the upper main region 253 is disposed between the right and left marginal regions 251 , 252 and is configured for underlying the cathode web 35 of an upper one of the planar cell units 3 .
- the first inlet region 254 is disposed between the right marginal region 251 and the upper main region 253 , and is formed with a first inlet depression area 2541 that is recessed from the upper major surface 25 downwardly and inwardly so as to form front and rear boundary wall surfaces 2542 , 2543 spaced apart from each other in a transverse direction (B).
- the first outlet region 255 is disposed between the left marginal region 252 and the upper main region 253 , and is formed with a first outlet depression area 2551 that is recessed from the upper major surface 25 downwardly and inwardly so as to form front and rear boundary wall surfaces 2552 , 2553 spaced apart from each other in the transverse direction (B).
- the grooved channels 256 are formed in the upper main region 253 of the upper major surface 25 , and extend through the first inlet region 254 to terminate at a plurality of first inlet ports 2561 and further through the first outlet region 255 to terminate at a plurality of first outlet ports 2562 .
- the upper main region 253 of the upper major surface 25 is further formed with a plurality of auxiliary channels 257 transverse to the grooved channels 256 in the upper main region 253 of the upper major surface 25 so as to form an array of upper bumps 258 .
- the right marginal region 251 has a first introducing slot 2511 extending from the upper major surface 25 to the lower major surface 24 so as to fluidly communicate with the first inlet ports 2561 .
- the left marginal region 252 has a first exit slot 2522 extending from the upper major surface 25 to the lower major surface 24 so as to fluidly communicate with the first outlet ports 2562 .
- the lower major surface 24 includes a front marginal region 241 , a rear marginal region 242 , a lower main region 243 , a second inlet region 244 for a fuel fluid, a second outlet region 245 for the fuel fluid, and a plurality of grooved channels 246 .
- the rear marginal region 242 is disposed opposite to the front marginal region 241 in the transverse direction (B).
- the lower main region 243 is disposed between the front and rear marginal regions 241 , 242 for overlying the anode web 34 of a lower one of the planar cell units 3 .
- the second inlet region 244 is disposed between the front marginal region 241 and the lower main region 243 , and is formed with a second inlet depression area 2441 that is recessed from the lower major surface 24 upwardly and inwardly so as to form right and left boundary wall surfaces 2442 , 2443 that are spaced apart from each other in the longitudinal direction (A).
- the second outlet region 245 is disposed between the rear marginal region 242 and the lower main region 243 , and is formed with a second outlet depression area 2451 that is recessed from the lower major surface 24 upwardly and inwardly so as to form right and left boundary wall surfaces 2452 , 2453 that are spaced apart from each other in the longitudinal direction (A).
- the grooved channels 246 are formed in the lower main region 243 of the lower major surface 24 , and extend through the second inlet region 244 to terminate at a plurality of second inlet ports 2461 and further through the second outlet region 245 to terminate at a plurality of second outlet ports 2462 .
- a cross-section of the grooved channels 246 at a juncture between the lower main region 243 and the second inlet region 244 of the lower major surface 24 is larger than a cross-section thereof at a juncture between the lower main region 243 and the second outlet region 245 of the lower major surface 24 .
- the lower main region 243 of the lower major surface 24 is further formed with a plurality of auxiliary channels 247 transverse to the grooved channels 246 in the lower main region 243 of the lower major surface 24 so as to form an array of lower bumps 248 .
- the front marginal region 241 has a second introducing slot 2411 extending from the lower major surface 24 to the upper major surface 25 so as to fluidly communicate with the second inlet ports 2461 .
- the rear marginal region 242 has a second exit slot 2421 extending from the lower major surface 24 to the upper major surface 25 so as to fluidly communicate with the second outlet ports 2462 .
- the right lateral surface 26 joins the upper major surface 25 and the lower major surface 24 , and includes a right lateral slot 261 which extends leftwardly and inwardly so as to fluidly communicate with the first introducing slot 2511 , and which extends in the transverse direction (B) to terminate at a first front end surface 262 and a first rear end surface 263 .
- the left lateral surface 27 joins the upper major surface 25 and the lower major surface 24 , and includes a left lateral slot 271 which extends rightwardly and inwardly so as to fluidly communicate with the first exit slot 2522 , and which extends in the transverse direction (B) to terminate at a second front end surface 272 and a second rear end surface 273 .
- the upper shielding plates 5 are configured to be detachably and respectively fitted between the front and rear boundary wall surfaces 2542 , 2543 of the first inlet region 254 and between the front and rear boundary wall surfaces 2552 , 2553 of the first outlet region 255 .
- the upper shielding plates 5 are flush with the right and left marginal regions 251 , 252 of the upper major surface 25 .
- the lower shielding plates 4 are configured to be detachably and respectively fitted between the right and left boundary wall surfaces 2442 , 2443 of the second inlet region 244 and between the right and left boundary wall surfaces 2452 , 2453 of the second outlet region 245 .
- the lower shielding plates 4 are flush with the front and rear marginal regions 241 , 242 of the lower major surface 24 .
- FIGS. 5-8 a second embodiment of a modular planar interconnect device 2 according to the disclosure is shown to be sandwiched between a pair of the planar cell units 3 .
- Each of the planar cell units 3 includes the anode web 34 , the cathode web 35 , and the planar cell body 33 sandwiched between the anode and cathode webs 34 , 35 .
- the second embodiment of the modular planar interconnect device 2 is similar to the first embodiment of the modular planar interconnect device 2 except for the following:
- Each of the first front end surface 262 and the first rear end surface 263 of the right lateral slot 261 extends to join the upper major surface 25 and the lower major surface 24 .
- the right lateral slot 261 extends in the transverse direction (B) to permit the first front and rear end surfaces 262 , 263 thereof to be respectively flush with a front slot end surface and a rear slot end surface of the first introducing slot 2511 so as to form a right cut-out portion.
- Each of the second front end surface 272 and the second rear end surface 273 of the left lateral slot 271 extends to join the upper major surface 25 and the lower major surface 24 .
- the left lateral slot 271 extends in the transverse direction (B) to permit the second front and rear end surfaces 272 , 273 thereof to be respectively flush with a front slot end surface and a rear slot end surface of the first exit slot 2522 so as to form a left cut-out portion.
- an embodiment of a solid oxide fuel cell 1 according to the disclosure includes upper and lower modular planar interconnect devices 2 , and a planar cell unit 3 sandwiched between the upper and lower modular planar interconnect devices 2 .
- Each of the upper and lower modular planar interconnect devices 2 is the modular planar interconnect devices 2 described above. Specifically, the second embodiment of the modular planar interconnect devices 2 is used in the embodiment of the solid oxide fuel cell 1 .
- the planar cell unit 3 includes a planar cell member 31 , an anode member 38 , a cathode member 39 , an upper first auxiliary seal member, and a lower first auxiliary seal member.
- the planar cell member 31 includes a planar cell body 33 and a cell-body support frame 32 .
- the anode member 38 includes an anode web 34 and an anode frame 36 .
- the cathode member 39 includes a cathode web 35 and a cathode frame 37 .
- the planar cell body 33 is interposed between the lower main region 243 of the lower major surface 24 of the upper modular planar interconnect device 2 and the upper main region 253 of the upper major surface 25 of the lower modular planar interconnect device 2 .
- the cell-body support frame 32 is disposed to surround and support a periphery of the planar cell body 33 , and has upper front and rear support regions 321 , 322 and lower right and left support regions 323 , 324 .
- the upper front and rear support regions 321 , 322 are opposite to each other in the transverse direction (B), and respectively mate with the second inlet and outlet regions 244 , 245 of the lower major surface 24 of the upper modular planar interconnect device 2 .
- the lower right and left support regions 323 , 324 are opposite to each other in the longitudinal direction (A), and respectively mate with the first inlet and outlet regions 254 , 255 of the upper major surface 25 of the lower modular planar interconnect device 2 .
- the anode web 34 is sandwiched between the planar cell body 33 and the lower major region 243 of the lower major surface 24 of the upper modular planar interconnect device 2 .
- the anode frame 36 is disposed to surround and support a periphery of the anode web 34 , and has front and rear anode frame regions 361 , 362 which are opposite to each other in the transverse direction (B), and which respectively mate with the second inlet and outlet regions 244 , 245 of the lower major surface 24 of the upper modular planar interconnect device 2 .
- the cathode web 35 is sandwiched between the planar cell body 33 and the upper major region 253 of the upper major surface 25 of the lower modular planar interconnect device 2 .
- the cathode frame 37 is disposed to surround and support a periphery of the cathode web 35 , and has right and left cathode frame regions 371 , 372 which are opposite to each other in the longitudinal direction (A), and which respectively mate with the first inlet and outlet regions 254 , 255 of the upper major surface 25 of the lower modular planar interconnect device 2 .
- the upper first auxiliary seal member is disposed between one of the front and rear anode frame regions 361 , 362 of the anode frame 36 and a corresponding one of the second inlet and outlet regions 244 , 245 of the lower major surface 24 of the upper modular planar interconnect device 2 to form a fluid-tight seal therebetween.
- the solid oxide fuel cell 1 further includes an upper second auxiliary seal member which is disposed between the other of the front and rear anode frame regions 361 , 362 of the anode frame 36 and a corresponding one of the second inlet and outlet regions 244 , 245 of the lower major surface 24 of the upper modular planar interconnect device 2 to form a fluid-tight seal therebetween.
- the solid oxide fuel cell 1 includes an upper first primary seal member and an upper second primary seal member.
- the upper first primary seal member is disposed between one of the right and left anode frame regions 363 , 364 of the anode frame 36 and a corresponding one of right and left portions of the lower main region 243 of the lower major surface 24 of the upper modular planar interconnect device 2 to form a fluid-tight seal therebetween.
- the upper second primary seal member is disposed between the other of the right and left anode frame regions 363 , 364 of the anode frame 36 and a corresponding one of the right and left portions of the lower main region 243 of the lower major surface 24 of the upper modular planar interconnect device 2 to form a fluid-tight seal therebetween.
- the upper first and second auxiliary seal members and the upper first and second primary seal members are independently made from a material selected from the group consisting of glass-ceramic, mica, soldering alloy, and combinations thereof.
- the upper first and second auxiliary seal members and the upper first and second primary seal members are integrally formed with the anode frame 36 .
- the anode frame 36 in the embodiment is made from glass-ceramic, mica, soldering alloy, or combinations thereof, and an upper surface thereof is used as a combination of the upper first and second auxiliary seal members and the upper first and second primary seal members.
- the lower first auxiliary seal member is disposed between one of the right and left cathode frame regions 371 , 372 of the cathode frame 37 and a corresponding one of the first inlet and outlet regions 254 , 255 of the upper major surface 25 of the lower modular planar interconnect device 2 to form a fluid-tight seal therebetween.
- the solid oxide fuel cell 1 further includes a lower second auxiliary seal member which is disposed between the other of the right and left cathode frame regions 371 , 372 of the cathode frame 37 and a corresponding one of the first inlet and outlet regions 254 , 255 of the upper major surface 25 of the lower modular planar interconnect device 2 to form a fluid-tight seal therebetween.
- the solid oxide fuel cell 1 includes a lower first primary seal member and a lower second primary seal member.
- the lower first primary seal member is disposed between one of the front and rear cathode frame regions 373 , 374 of the cathode frame 37 and a corresponding one of front and rear portions of the upper main region 253 of the upper major surface 25 of the lower modular planar interconnect device 2 to form a fluid-tight seal therebetween.
- the lower second primary seal member is disposed between the other of the front and rear cathode frame regions 373 , 374 of the cathode frame 37 and a corresponding one of the front and rear portions of the upper main region 253 of the upper major surface 25 of the lower modular planar interconnect device 2 to form a fluid-tight seal therebetween.
- the lower first and second auxiliary seal members and the lower first and second primary seal members are independently made from a material selected from the group consisting of glass-ceramic, mica, soldering alloy, and combinations thereof.
- the lower first and second auxiliary seal members and the lower first and second primary seal members are integrally formed with the cathode frame 37 .
- the cathode frame 37 in the embodiment is made from glass-ceramic, mica, soldering alloy, or combinations thereof, and a lower surface thereof is used as a combination of the lower first and second auxiliary seal members and the lower first and second primary seal members.
- the upper shielding plates 5 are configured to be respectively fitted between the front and rear boundary wall surfaces 2542 , 2543 of the first inlet region 254 and between the front and rear boundary wall surfaces 2552 , 2553 of the first outlet region 255 . Therefore, the portions of the grooved channels 256 in the first inlet region 254 and the first outlet region 255 are isolated from the right and left cathode frame regions 371 , 372 of the cathode frame 37 by the upper shielding plates 5 .
- the front and rear cathode frame regions 373 , 374 of the cathode frame 37 may be sealed to the front and rear portions of the upper main region 253 of the upper major surface 25 of the modular planar interconnect device 2 , and the right and left cathode frame regions 371 , 372 of the cathode frame 37 may also be sealed to the upper shielding plates 5 such that a sealing effect between the cathode frame 37 and the upper major surface 25 of the modular planar interconnect device 2 may be enhanced, and the aforesaid disadvantage of the prior art may be avoided.
- the lower shielding plates 4 are configured to be respectively fitted between the right and left boundary wall surfaces 2442 , 2443 of the second inlet region 244 and between the right and left boundary wall surfaces 2452 , 2453 of the second outlet region 245 . Therefore, the portions of the grooved channels 246 in the second inlet region 244 and the second outlet region 245 are isolated from the front and rear anode frame regions 361 , 362 of the anode frame 36 by the lower shielding plates 4 .
- the right and left anode frame regions 363 , 364 of the anode frame 36 may be sealed to the right and left portions of the lower main region 243 of the lower major surface 24 of the modular planar interconnect device 2 , and the front and rear anode frame regions 361 , 362 of the anode frame 36 may also be sealed to the lower shielding plates 4 such that a sealing effect between the anode frame 36 and the lower major surface 24 of the modular planar interconnect device 2 may be enhanced.
- the solid oxide fuel cell 1 can have enhanced heat exchange effect accordingly.
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Abstract
Description
- This application is a continuation-in-part of co-pending U.S. patent application Ser. No. 15/387,833, filed on Dec. 22, 2016 and claims priority of Taiwanese Application No. 107124573, filed on Jul. 17, 2018.
- The disclosure relates to a modular planar interconnect device, and more particularly to a modular planar interconnect device for a solid oxide fuel cell. The disclosure also relates to the solid oxide fuel cell containing the modular planar interconnect device.
- A fuel cell is a device that converts chemical energy from a fuel into electricity through a chemical reaction of positively charged hydrogen ions with oxygen or another oxidizing agent. The fuel cell can produce electricity continuously for as long as fuel and oxygen or air are supplied continuously. Particularly, a planar solid oxide fuel cell is more popular in various applications because it has advantages of durable stability and low production cost and because a plurality of the planar solid oxide fuel cells may be stacked and electrically connected in series to produce high voltage.
- However, in a stack of the conventional planar solid oxide fuel cells, the power efficiency and stability thereof may be negatively affected due to the fact that deformation of a seal material used for stacking the planar solid oxide fuel cells may affect flow of a fuel fluid and/or that the seal material may come into contact with the fuel fluid to react with the fuel fluid or to be eluted by the fuel fluid. In addition, it is desirable in the art to provide a solid oxide fuel cell having enhanced power density, fuel utilization, and power efficiency.
- Therefore, an object of the disclosure is to provide a solid oxide fuel cell which may overcome the disadvantages of the conventional planar solid oxide fuel cell and which has enhanced power density, fuel utilization, power efficiency, and heat exchange effect.
- According to a first aspect of the disclosure, there is provided a modular planar interconnect device for being sandwiched between a pair of planar cell units, each of which includes an anode web, a cathode web, and a planar cell body sandwiched between the anode and cathode webs. The modular planar interconnect device comprises a planar interconnect body, a pair of upper shielding plates, and a pair of lower shielding plates.
- The planar interconnect body includes an upper major surface, a lower major surface, a right lateral surface, and a left lateral surface.
- The upper major surface includes a right marginal region, a left marginal region, an upper main region, a first inlet region for an oxygen-containing fluid, a first outlet region for the oxygen-containing fluid, and a plurality of grooved channels. The left marginal region is disposed opposite to the right marginal region in a longitudinal direction. The upper main region is disposed between the right and left marginal regions for underlying the cathode web of an upper one of the planar cell units. The first inlet region is disposed between the right marginal region and the upper main region, and is formed with a first inlet depression area that is recessed from the upper major surface downwardly and inwardly so as to form front and rear boundary wall surfaces spaced apart from each other in a transverse direction. The first outlet region is disposed between the left marginal region and the upper main region, and is formed with a first outlet depression area that is recessed from the upper major surface downwardly and inwardly so as to form front and rear boundary wall surfaces spaced apart from each other in the transverse direction. The grooved channels are formed in the upper main region of the upper major surface, and extend through the first inlet region to terminate at a plurality of first inlet ports and further through the first outlet region to terminate at a plurality of first outlet ports.
- The lower major surface includes a front marginal region, a rear marginal region, a lower main region, a second inlet region for a fuel fluid, a second outlet region for the fuel fluid, and a plurality of grooved channels. The rear marginal region is disposed opposite to the front marginal region in the transverse direction. The lower main region is disposed between the front and rear marginal regions for overlying the anode web of a lower one of the planar cell units. The second inlet region is disposed between the front marginal region and the lower main region, and is formed with a second inlet depression area that is recessed from the lower major surface upwardly and inwardly so as to form right and left boundary wall surfaces spaced apart from each other in the longitudinal direction. The second outlet region is disposed between the rear marginal region and the lower main region, and is formed with a second outlet depression area that is recessed from the lower major surface upwardly and inwardly so as to form right and left boundary wall surfaces spaced apart from each other in the longitudinal direction. The grooved channels are formed in the lower main region of the lower major surface, and extend through the second inlet region to terminate at a plurality of second inlet ports and further through the second outlet region to terminate at a plurality of second outlet ports.
- The right marginal region has a first introducing slot extending from the upper major surface to the lower major surface so as to fluidly communicate with the first inlet ports.
- The left marginal region has a first exit slot extending from the upper major surface to the lower major surface so as to fluidly communicate with the first outlet ports.
- The right lateral surface joins the upper major surface and the lower major surface, and includes a right lateral slot which extends leftwardly and inwardly so as to fluidly communicate with the first introducing slot, and which extends in the transverse direction to terminate at a first front end surface and a first rear end surface.
- The left lateral surface joins the upper major surface and the lower major surface, and includes a left lateral slot which extends rightwardly and inwardly so as to fluidly communicate with the first exit slot, and which extends in the transverse direction to terminate at a second front end surface and a second rear end surface.
- The upper shielding plates are configured to be respectively fitted between the front and rear boundary wall surfaces of the first inlet region and between the front and rear boundary wall surfaces of the first outlet region.
- The lower shielding plates is configured to be respectively fitted between the right and left boundary wall surfaces of the second inlet region and between the right and left boundary wall surfaces of the second outlet region.
- According to a second aspect of the disclosure, there is provided a solid oxide fuel cell which comprises upper and lower modular planar interconnect devices, a planar cell unit, an upper first auxiliary seal member, and a lower upper first auxiliary seal member.
- Each of the upper and lower modular planar interconnect devices is the modular planar interconnect device described above.
- The planar cell unit is sandwiched between the upper and lower modular planar interconnect devices, and includes a planar cell member, an anode member, and a cathode member.
- The planar cell member includes a planar cell body and a cell-body support frame. The planar cell body is interposed between the lower main region of the lower major surface of the upper modular planar interconnect device and the upper main region of the upper major surface of the lower modular planar interconnect device. The cell-body support frame is disposed to surround and support a periphery of the planar cell body, and has upper front and rear support regions and lower right and left support regions. The upper front and rear support regions are opposite to each other in the transverse direction, and respectively mate with the second inlet and outlet regions of the lower major surface of the upper modular planar interconnect device. The lower right and left support regions are opposite to each other in the longitudinal direction, and respectively mate with the first inlet and outlet regions of the upper major surface of the lower modular planar interconnect device.
- The anode member includes an anode web and an anode frame. The anode web is sandwiched between the planar cell body and the lower major region of the lower major surface of the upper modular planar interconnect device. The anode frame is disposed to surround and support a periphery of the anode web and has front and rear anode frame regions which are opposite to each other in the transverse direction, and which respectively mate with the second inlet and outlet regions of the lower major surface of the upper modular planar interconnect device.
- The cathode member includes a cathode web and a cathode frame. The cathode web is sandwiched between the planar cell body and the upper major region of the upper major surface of the lower modular planar interconnect device. The cathode frame is disposed to surround and support a periphery of the cathode web and has right and left cathode frame regions which are opposite to each other in the longitudinal direction, and which respectively mate with the first inlet and outlet regions of the upper major surface of the lower modular planar interconnect device.
- The upper first auxiliary seal member is disposed between one of the front and rear anode frame regions of the anode frame and a corresponding one of the second inlet and outlet regions of the lower major surface of the upper modular planar interconnect device to form a fluid-tight seal therebetween.
- The lower first auxiliary seal member is disposed between one of the right and left cathode frame regions of the cathode frame and a corresponding one of the first inlet and outlet regions of the upper major surface of the lower modular planar interconnect device to form a fluid-tight seal therebetween.
- Other features and advantages of the disclosure will become apparent in the following detailed description of the embodiment(s) with reference to the accompanying drawings, of which:
-
FIG. 1 is a perspective exploded view of a first embodiment of a modular planar interconnect device according to the disclosure; -
FIG. 2 is a perspective exploded view of the first embodiment of the modular planar interconnect device sandwiched between a pair of planar cell units; -
FIG. 3 is a schematic top view of the first embodiment of the modular planar interconnect device; -
FIG. 4 is a schematic bottom view of the first embodiment of the modular planar interconnect device; -
FIG. 5 is a perspective exploded view of a second embodiment of a modular planar interconnect device according to the disclosure; -
FIG. 6 is a perspective exploded view of the second embodiment of the modular planar interconnect device sandwiched between a pair of planar cell units; -
FIG. 7 is a schematic top view of the second embodiment of the modular planar interconnect device; -
FIG. 8 is a schematic bottom view of the second embodiment of the modular planar interconnect device; -
FIG. 9 is a perspective view of an embodiment of a solid oxide fuel cell according to the disclosure; -
FIG. 10 is a perspective exploded view of the embodiment of the solid oxide fuel cell; -
FIG. 11 is a schematic sectional view of the embodiment of the solid oxide fuel cell taken along line XI-XI inFIG. 9 ; and -
FIG. 12 is a schematic sectional view of the embodiment of the solid oxide fuel cell taken along line XII-XII inFIG. 9 . - Before the disclosure is described in greater detail, it should be noted that where considered appropriate, reference numerals or terminal portions of reference numerals have been repeated among the figures to indicate corresponding or analogous elements, which may optionally have similar characteristics.
- Referring to
FIGS. 1-4 , a first embodiment of a modularplanar interconnect device 2 according to the disclosure is shown to be sandwiched between a pair ofplanar cell units 3. Each of theplanar cell units 3 includes ananode web 34, acathode web 35, and aplanar cell body 33 sandwiched between the anode and 34, 35.cathode webs - The modular
planar interconnect device 2 is shown to include aplanar interconnect body 21, a pair ofupper shielding plates 5, and a pair oflower shielding plates 4. Theplanar interconnect body 21 and the upper and 5, 4 are made from a stainless steel material such as SUS 430, SUS 431, SUS 441, Crofer® 22, and the like. In the first embodiment, thelower shielding plates planar interconnect body 21, theupper shielding plates 5, and thelower shielding plates 4 are formed separately. Alternatively, they may be formed as a single-piece configuration. - The
planar interconnect body 21 includes an uppermajor surface 25, a lowermajor surface 24, a rightlateral surface 26, and a leftlateral surface 27. - The upper
major surface 25 includes a rightmarginal region 251, a leftmarginal region 252, an uppermain region 253, afirst inlet region 254 for an oxygen-containing fluid, afirst outlet region 255 for the oxygen-containing fluid, and a plurality ofgrooved channels 256. The leftmarginal region 252 is disposed opposite to the rightmarginal region 251 in a longitudinal direction (A). The uppermain region 253 is disposed between the right and left 251, 252 and is configured for underlying themarginal regions cathode web 35 of an upper one of theplanar cell units 3. Thefirst inlet region 254 is disposed between the rightmarginal region 251 and the uppermain region 253, and is formed with a firstinlet depression area 2541 that is recessed from the uppermajor surface 25 downwardly and inwardly so as to form front and rear boundary wall surfaces 2542, 2543 spaced apart from each other in a transverse direction (B). Thefirst outlet region 255 is disposed between the leftmarginal region 252 and the uppermain region 253, and is formed with a firstoutlet depression area 2551 that is recessed from the uppermajor surface 25 downwardly and inwardly so as to form front and rear boundary wall surfaces 2552, 2553 spaced apart from each other in the transverse direction (B). Thegrooved channels 256 are formed in the uppermain region 253 of the uppermajor surface 25, and extend through thefirst inlet region 254 to terminate at a plurality offirst inlet ports 2561 and further through thefirst outlet region 255 to terminate at a plurality offirst outlet ports 2562. The uppermain region 253 of the uppermajor surface 25 is further formed with a plurality ofauxiliary channels 257 transverse to thegrooved channels 256 in the uppermain region 253 of the uppermajor surface 25 so as to form an array ofupper bumps 258. In addition, the rightmarginal region 251 has a first introducingslot 2511 extending from the uppermajor surface 25 to the lowermajor surface 24 so as to fluidly communicate with thefirst inlet ports 2561. The leftmarginal region 252 has afirst exit slot 2522 extending from the uppermajor surface 25 to the lowermajor surface 24 so as to fluidly communicate with thefirst outlet ports 2562. - The lower
major surface 24 includes a frontmarginal region 241, a rearmarginal region 242, a lowermain region 243, asecond inlet region 244 for a fuel fluid, asecond outlet region 245 for the fuel fluid, and a plurality ofgrooved channels 246. The rearmarginal region 242 is disposed opposite to the frontmarginal region 241 in the transverse direction (B). The lowermain region 243 is disposed between the front and rear 241, 242 for overlying themarginal regions anode web 34 of a lower one of theplanar cell units 3. Thesecond inlet region 244 is disposed between the frontmarginal region 241 and the lowermain region 243, and is formed with a secondinlet depression area 2441 that is recessed from the lowermajor surface 24 upwardly and inwardly so as to form right and left boundary wall surfaces 2442, 2443 that are spaced apart from each other in the longitudinal direction (A). Thesecond outlet region 245 is disposed between the rearmarginal region 242 and the lowermain region 243, and is formed with a secondoutlet depression area 2451 that is recessed from the lowermajor surface 24 upwardly and inwardly so as to form right and left boundary wall surfaces 2452, 2453 that are spaced apart from each other in the longitudinal direction (A). Thegrooved channels 246 are formed in the lowermain region 243 of the lowermajor surface 24, and extend through thesecond inlet region 244 to terminate at a plurality ofsecond inlet ports 2461 and further through thesecond outlet region 245 to terminate at a plurality ofsecond outlet ports 2462. In a certain embodiment, a cross-section of thegrooved channels 246 at a juncture between the lowermain region 243 and thesecond inlet region 244 of the lowermajor surface 24 is larger than a cross-section thereof at a juncture between the lowermain region 243 and thesecond outlet region 245 of the lowermajor surface 24. The lowermain region 243 of the lowermajor surface 24 is further formed with a plurality ofauxiliary channels 247 transverse to thegrooved channels 246 in the lowermain region 243 of the lowermajor surface 24 so as to form an array oflower bumps 248. In addition, the frontmarginal region 241 has a second introducingslot 2411 extending from the lowermajor surface 24 to the uppermajor surface 25 so as to fluidly communicate with thesecond inlet ports 2461. The rearmarginal region 242 has asecond exit slot 2421 extending from the lowermajor surface 24 to the uppermajor surface 25 so as to fluidly communicate with thesecond outlet ports 2462. - The right
lateral surface 26 joins the uppermajor surface 25 and the lowermajor surface 24, and includes a rightlateral slot 261 which extends leftwardly and inwardly so as to fluidly communicate with the first introducingslot 2511, and which extends in the transverse direction (B) to terminate at a firstfront end surface 262 and a firstrear end surface 263. - The left
lateral surface 27 joins the uppermajor surface 25 and the lowermajor surface 24, and includes a leftlateral slot 271 which extends rightwardly and inwardly so as to fluidly communicate with thefirst exit slot 2522, and which extends in the transverse direction (B) to terminate at a secondfront end surface 272 and a secondrear end surface 273. - The
upper shielding plates 5 are configured to be detachably and respectively fitted between the front and rear boundary wall surfaces 2542, 2543 of thefirst inlet region 254 and between the front and rear boundary wall surfaces 2552, 2553 of thefirst outlet region 255. Theupper shielding plates 5 are flush with the right and left 251, 252 of the uppermarginal regions major surface 25. - The
lower shielding plates 4 are configured to be detachably and respectively fitted between the right and left boundary wall surfaces 2442, 2443 of thesecond inlet region 244 and between the right and left boundary wall surfaces 2452, 2453 of thesecond outlet region 245. Thelower shielding plates 4 are flush with the front and rear 241, 242 of the lowermarginal regions major surface 24. - Referring to
FIGS. 5-8 , a second embodiment of a modularplanar interconnect device 2 according to the disclosure is shown to be sandwiched between a pair of theplanar cell units 3. Each of theplanar cell units 3 includes theanode web 34, thecathode web 35, and theplanar cell body 33 sandwiched between the anode and 34, 35.cathode webs - The second embodiment of the modular
planar interconnect device 2 is similar to the first embodiment of the modularplanar interconnect device 2 except for the following: - Each of the first
front end surface 262 and the firstrear end surface 263 of the rightlateral slot 261 extends to join the uppermajor surface 25 and the lowermajor surface 24. The rightlateral slot 261 extends in the transverse direction (B) to permit the first front and rear end surfaces 262, 263 thereof to be respectively flush with a front slot end surface and a rear slot end surface of the first introducingslot 2511 so as to form a right cut-out portion. - Each of the second
front end surface 272 and the secondrear end surface 273 of the leftlateral slot 271 extends to join the uppermajor surface 25 and the lowermajor surface 24. The leftlateral slot 271 extends in the transverse direction (B) to permit the second front and rear end surfaces 272, 273 thereof to be respectively flush with a front slot end surface and a rear slot end surface of thefirst exit slot 2522 so as to form a left cut-out portion. - Wth reference to
FIGS. 9-12 , an embodiment of a solidoxide fuel cell 1 according to the disclosure includes upper and lower modularplanar interconnect devices 2, and aplanar cell unit 3 sandwiched between the upper and lower modularplanar interconnect devices 2. - Each of the upper and lower modular
planar interconnect devices 2 is the modularplanar interconnect devices 2 described above. Specifically, the second embodiment of the modularplanar interconnect devices 2 is used in the embodiment of the solidoxide fuel cell 1. - The
planar cell unit 3 includes aplanar cell member 31, ananode member 38, acathode member 39, an upper first auxiliary seal member, and a lower first auxiliary seal member. Theplanar cell member 31 includes aplanar cell body 33 and a cell-body support frame 32. Theanode member 38 includes ananode web 34 and ananode frame 36. Thecathode member 39 includes acathode web 35 and acathode frame 37. - The
planar cell body 33 is interposed between the lowermain region 243 of the lowermajor surface 24 of the upper modularplanar interconnect device 2 and the uppermain region 253 of the uppermajor surface 25 of the lower modularplanar interconnect device 2. The cell-body support frame 32 is disposed to surround and support a periphery of theplanar cell body 33, and has upper front and 321, 322 and lower right and leftrear support regions 323, 324. The upper front andsupport regions 321, 322 are opposite to each other in the transverse direction (B), and respectively mate with the second inlet andrear support regions 244, 245 of the loweroutlet regions major surface 24 of the upper modularplanar interconnect device 2. The lower right and left 323, 324 are opposite to each other in the longitudinal direction (A), and respectively mate with the first inlet andsupport regions 254, 255 of the upperoutlet regions major surface 25 of the lower modularplanar interconnect device 2. - The
anode web 34 is sandwiched between theplanar cell body 33 and the lowermajor region 243 of the lowermajor surface 24 of the upper modularplanar interconnect device 2. Theanode frame 36 is disposed to surround and support a periphery of theanode web 34, and has front and rear 361, 362 which are opposite to each other in the transverse direction (B), and which respectively mate with the second inlet andanode frame regions 244, 245 of the loweroutlet regions major surface 24 of the upper modularplanar interconnect device 2. - The
cathode web 35 is sandwiched between theplanar cell body 33 and the uppermajor region 253 of the uppermajor surface 25 of the lower modularplanar interconnect device 2. Thecathode frame 37 is disposed to surround and support a periphery of thecathode web 35, and has right and left 371, 372 which are opposite to each other in the longitudinal direction (A), and which respectively mate with the first inlet andcathode frame regions 254, 255 of the upperoutlet regions major surface 25 of the lower modularplanar interconnect device 2. - The upper first auxiliary seal member is disposed between one of the front and rear
361, 362 of theanode frame regions anode frame 36 and a corresponding one of the second inlet and 244, 245 of the loweroutlet regions major surface 24 of the upper modularplanar interconnect device 2 to form a fluid-tight seal therebetween. The solidoxide fuel cell 1 further includes an upper second auxiliary seal member which is disposed between the other of the front and rear 361, 362 of theanode frame regions anode frame 36 and a corresponding one of the second inlet and 244, 245 of the loweroutlet regions major surface 24 of the upper modularplanar interconnect device 2 to form a fluid-tight seal therebetween. In addition, the solidoxide fuel cell 1 includes an upper first primary seal member and an upper second primary seal member. The upper first primary seal member is disposed between one of the right and left 363, 364 of theanode frame regions anode frame 36 and a corresponding one of right and left portions of the lowermain region 243 of the lowermajor surface 24 of the upper modularplanar interconnect device 2 to form a fluid-tight seal therebetween. The upper second primary seal member is disposed between the other of the right and left 363, 364 of theanode frame regions anode frame 36 and a corresponding one of the right and left portions of the lowermain region 243 of the lowermajor surface 24 of the upper modularplanar interconnect device 2 to form a fluid-tight seal therebetween. The upper first and second auxiliary seal members and the upper first and second primary seal members are independently made from a material selected from the group consisting of glass-ceramic, mica, soldering alloy, and combinations thereof. In the embodiment, the upper first and second auxiliary seal members and the upper first and second primary seal members are integrally formed with theanode frame 36. In other words, theanode frame 36 in the embodiment is made from glass-ceramic, mica, soldering alloy, or combinations thereof, and an upper surface thereof is used as a combination of the upper first and second auxiliary seal members and the upper first and second primary seal members. - The lower first auxiliary seal member is disposed between one of the right and left
371, 372 of thecathode frame regions cathode frame 37 and a corresponding one of the first inlet and 254, 255 of the upperoutlet regions major surface 25 of the lower modularplanar interconnect device 2 to form a fluid-tight seal therebetween. The solidoxide fuel cell 1 further includes a lower second auxiliary seal member which is disposed between the other of the right and left 371, 372 of thecathode frame regions cathode frame 37 and a corresponding one of the first inlet and 254, 255 of the upperoutlet regions major surface 25 of the lower modularplanar interconnect device 2 to form a fluid-tight seal therebetween. In addition, the solidoxide fuel cell 1 includes a lower first primary seal member and a lower second primary seal member. The lower first primary seal member is disposed between one of the front and rear 373, 374 of thecathode frame regions cathode frame 37 and a corresponding one of front and rear portions of the uppermain region 253 of the uppermajor surface 25 of the lower modularplanar interconnect device 2 to form a fluid-tight seal therebetween. The lower second primary seal member is disposed between the other of the front and rear 373, 374 of thecathode frame regions cathode frame 37 and a corresponding one of the front and rear portions of the uppermain region 253 of the uppermajor surface 25 of the lower modularplanar interconnect device 2 to form a fluid-tight seal therebetween. The lower first and second auxiliary seal members and the lower first and second primary seal members are independently made from a material selected from the group consisting of glass-ceramic, mica, soldering alloy, and combinations thereof. In the embodiment, the lower first and second auxiliary seal members and the lower first and second primary seal members are integrally formed with thecathode frame 37. In other words, thecathode frame 37 in the embodiment is made from glass-ceramic, mica, soldering alloy, or combinations thereof, and a lower surface thereof is used as a combination of the lower first and second auxiliary seal members and the lower first and second primary seal members. - As described above, in the modular
planar interconnect device 2 of the disclosure, theupper shielding plates 5 are configured to be respectively fitted between the front and rear boundary wall surfaces 2542, 2543 of thefirst inlet region 254 and between the front and rear boundary wall surfaces 2552, 2553 of thefirst outlet region 255. Therefore, the portions of thegrooved channels 256 in thefirst inlet region 254 and thefirst outlet region 255 are isolated from the right and left 371, 372 of thecathode frame regions cathode frame 37 by theupper shielding plates 5. Accordingly, the front and rear 373, 374 of thecathode frame regions cathode frame 37 may be sealed to the front and rear portions of the uppermain region 253 of the uppermajor surface 25 of the modularplanar interconnect device 2, and the right and left 371, 372 of thecathode frame regions cathode frame 37 may also be sealed to theupper shielding plates 5 such that a sealing effect between thecathode frame 37 and the uppermajor surface 25 of the modularplanar interconnect device 2 may be enhanced, and the aforesaid disadvantage of the prior art may be avoided. - Similarly, as described above, the
lower shielding plates 4 are configured to be respectively fitted between the right and left boundary wall surfaces 2442, 2443 of thesecond inlet region 244 and between the right and left boundary wall surfaces 2452, 2453 of thesecond outlet region 245. Therefore, the portions of thegrooved channels 246 in thesecond inlet region 244 and thesecond outlet region 245 are isolated from the front and rear 361, 362 of theanode frame regions anode frame 36 by thelower shielding plates 4. Accordingly, the right and left 363, 364 of theanode frame regions anode frame 36 may be sealed to the right and left portions of the lowermain region 243 of the lowermajor surface 24 of the modularplanar interconnect device 2, and the front and rear 361, 362 of theanode frame regions anode frame 36 may also be sealed to thelower shielding plates 4 such that a sealing effect between theanode frame 36 and the lowermajor surface 24 of the modularplanar interconnect device 2 may be enhanced. - In addition, since the right
lateral slot 261 and the leftlateral slot 271 are respectively formed at the rightlateral surface 26 and the leftlateral surface 27 of theplanar interconnect body 21 to fluidly communicate with the first introducingslot 2511 and thefirst exit slot 2522, the solidoxide fuel cell 1 can have enhanced heat exchange effect accordingly. - In the description above, for the purposes of explanation, numerous specific details have been set forth in order to provide a thorough understanding of the embodiment(s). It will be apparent, however, to one skilled in the art, that one or more other embodiments may be practiced without some of these specific details. It should also be appreciated that reference throughout this specification to “one embodiment,” “an embodiment,” an embodiment with an indication of an ordinal number and so forth means that a particular feature, structure, or characteristic may be included in the practice of the disclosure. It should be further appreciated that in the description, various features are sometimes grouped together in a single embodiment, figure, or description thereof for the purpose of streamlining the disclosure and aiding in the understanding of various inventive aspects.
- While the disclosure has been described in connection with what is (are) considered the exemplary embodiment(s), it is understood that this disclosure is not limited to the disclosed embodiment(s) but is intended to cover various arrangements included within the spirit and scope of the broadest interpretation so as to encompass all such modifications and equivalent arrangements.
Claims (11)
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US16/117,088 US10170786B1 (en) | 2016-12-22 | 2018-08-30 | Modular planar interconnect device for a solid oxide fuel cell and the solid oxide fuel cell containing the same |
Applications Claiming Priority (5)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US15/387,833 US10170773B2 (en) | 2016-12-22 | 2016-12-22 | Modular planar interconnect device for a solid oxide fuel cell and the solid oxide fuel cell containing the same |
| TW107124573A | 2018-07-17 | ||
| TW107124573A TWI666818B (en) | 2018-07-17 | 2018-07-17 | Modular planar interconnect device for a solid oxide fuel cell and the solid oxide fuel cell containing the same |
| TW107124573 | 2018-07-17 | ||
| US16/117,088 US10170786B1 (en) | 2016-12-22 | 2018-08-30 | Modular planar interconnect device for a solid oxide fuel cell and the solid oxide fuel cell containing the same |
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| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| US15/387,833 Continuation-In-Part US10170773B2 (en) | 2016-12-22 | 2016-12-22 | Modular planar interconnect device for a solid oxide fuel cell and the solid oxide fuel cell containing the same |
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| US20180375143A1 true US20180375143A1 (en) | 2018-12-27 |
| US10170786B1 US10170786B1 (en) | 2019-01-01 |
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| US16/117,088 Active US10170786B1 (en) | 2016-12-22 | 2018-08-30 | Modular planar interconnect device for a solid oxide fuel cell and the solid oxide fuel cell containing the same |
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Cited By (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN112186213A (en) * | 2019-07-02 | 2021-01-05 | 钦瑞工业股份有限公司 | Improved structure of flow channel plate of fuel cell stack |
| USD976831S1 (en) * | 2016-10-05 | 2023-01-31 | Cummins Enterprise Llc | Fuel cell |
Family Cites Families (10)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US6040076A (en) * | 1998-03-03 | 2000-03-21 | M-C Power Corporation | One piece fuel cell separator plate |
| US6410179B1 (en) * | 2000-04-19 | 2002-06-25 | Plug Power Inc. | Fluid flow plate having a bridge piece |
| CA2401934A1 (en) * | 2001-09-11 | 2003-03-11 | Matsushita Electric Industrial Co., Ltd. | Polymer electrolyte fuel cell and conductive separator plate thereof |
| KR100599716B1 (en) | 2004-06-23 | 2006-07-12 | 삼성에스디아이 주식회사 | Fuel cell and manufacturing method thereof |
| US20060286431A1 (en) | 2005-06-15 | 2006-12-21 | National Central University | Flow channel on interconnect of planar solid oxide fuel cell |
| KR100718113B1 (en) | 2006-01-27 | 2007-05-15 | 삼성에스디아이 주식회사 | Fuel cell bipolar plates and fuel cells |
| JP2012054226A (en) * | 2010-08-05 | 2012-03-15 | Panasonic Corp | Separator for fuel cell and fuel cell stack using the same, fuel cell system |
| US9742023B2 (en) * | 2013-03-08 | 2017-08-22 | Nissan Motor Co., Ltd. | Fuel cell, fluid distribution device for fuel cell, and vehicle provided with fuel cell |
| TWI513090B (en) | 2014-10-17 | 2015-12-11 | Iner Aec Executive Yuan | Flat type solid oxide fuel cell stack unit and flat type solid oxide fuel cell stack module |
| TWI586027B (en) | 2016-10-11 | 2017-06-01 | 國立臺北科技大學 | Fuel cell stack unit |
-
2018
- 2018-08-30 US US16/117,088 patent/US10170786B1/en active Active
Cited By (3)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| USD976831S1 (en) * | 2016-10-05 | 2023-01-31 | Cummins Enterprise Llc | Fuel cell |
| USD990424S1 (en) | 2016-10-05 | 2023-06-27 | Cummins Enterprise Llc | Fuel cell |
| CN112186213A (en) * | 2019-07-02 | 2021-01-05 | 钦瑞工业股份有限公司 | Improved structure of flow channel plate of fuel cell stack |
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| Publication number | Publication date |
|---|---|
| US10170786B1 (en) | 2019-01-01 |
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