Claims
- 1. A fuel cell sub-bundle, comprising multiple microfibrous fuel cells, wherein each microfibrous fuel cell comprises: (a) a hollow microfibrous membrane separator comprising an electrolyte medium, (b) an inner electrocatalyst layer in contact with an inner surface of said membrane separator, (c) an outer electrocatalyst layer in contact with an outer surface of said membrane separator, and (d) an individual current collector in electrical contact with the inner surface of said membrane separator, and wherein each of said multiple microfibrous fuel cells is in electrical contact with a common current collector at the outer surface of its membrane separator.
- 2. The fuel cell sub-bundle of claim 1, having a fibrous or tubular conformation.
- 3. The fuel cell sub-bundle of claim 1, wherein said common current collector has a fibrous conformation.
- 4. The fuel cell sub-bundle of claim 1, wherein each microfibrous fuel cell is characterized by an outer diameter in a range of from about 100 microns to about 10 millimeters.
- 5. The fuel cell sub-bundle of claim 1, wherein the hollow microfibrous membrane separator of each microfibrous fuel cell comprises an ion-exchange polymer selected from the group consisting of perflurocarbon-sulfonic-acid-based polymers, polysulfone-based polymers, perfluorocarboxylic-acid-based polymers, styrene-vinyl-benzene-sulfonic-acid-based polymers, and styrene-butadiene-based polymers.
- 6. The fuel cell sub-bundle of claim 1, wherein the hollow microfibrous membrane separator of each microfibrous fuel cell comprises a perflurocarbon-sulfonic-acid-based polymer.
- 7. The fuel cell sub-bundle of claim 1, wherein said common current collector comprises a solid fibrous element.
- 8. The fuel cell sub-bundle of claim 1, wherein said common current collector comprises a hollow fibrous element having a central cavity.
- 9. The fuel cell sub-bundle of claim 1, wherein said common current collector comprises material selected from the group consisting of carbon, graphite, carbon fiber-reinforced materials, fiberglass-reinforced materials, metals, metal alloys, electrically conductive polymers, polymeric composites, and electrically conductive ceramics.
- 10. The fuel cell sub-bundle of claim 1, wherein said common current collector comprises metal or metal alloy selected from the group consisting of titanium, niobium, nickel, zirconium, gold, tantalum, platinum, palladium, silver, and alloys thereof.
- 11. The fuel cell sub-bundle of claim 1, wherein said common current collector comprises a metal clad composite having two or more metal layers bonded together by solid-phase bonding.
- 12. The fuel cell sub-bundle of claim 11, wherein said metal clad composite comprises (1) an outermost layer formed of metal or metal alloy selected from the group consisting of titanium, niobium, nickel, zirconium, gold, tantalum, platinum, palladium, silver, and alloys thereof, and (2) one or more inner layers formed of metal or metal alloy selected from the group consisting of copper, aluminum, brass, bronze, nickel, silver, and alloys thereof.
- 13. The fuel cell sub-bundle of claim 1, wherein the individual current collector of at least one microfibrous fuel cell comprises a metal clad composite having two or more metal layers bonded together by solid-phase bonding.
- 14. The fuel cell sub-bundle of claim 1, wherein said multiple microfibrous fuel cells are wound around the common current collector by a wrapping element.
- 15. The fuel cell sub-bundle of claim 1, wherein the common current collector extends beyond the membrane separators of the microfibrous fuel cells at one end of the fuel cell sub-bundle, and wherein the individual current collectors of the microfibrous fuel cell elements extends beyond the membrane separators at the other end of the fuel cell sub-bundle.
- 16. The fuel cell sub-bundle of claim 1, wherein the microfibrous fuel cell elements are parallelly connected, and wherein said fuel cell sub-bundle further comprises a first and second electrical contact.
- 17. The fuel cell sub-bundle of claim 1, wherein both ends of said fuel cell sub-bundle are potted for isolating bore sides of the microfibrous fuel cell elements from shell sides thereof.
- 18. The fuel cell sub-bundle of claim 1, further comprising a porous insulating layer for preventing electrical shorting between said fuel cell sub-bundle and an adjacent fuel cell sub-bundle to which said fuel cell sub-bundle is serially connected.
- 19. The fuel cell sub-bundle of claim 18, wherein said porous insulating layer comprises a porous fiberglass matrix, a porous polymeric matrix with a foam-like structure, or an insulating mesh.
- 20. A fuel cell sub-bundle comprising multiple microfibrous fuel cell elements and a common heat-exchanging and/or humidifying element, wherein each microfibrous fuel cell element comprises (a) an inner current collector; (b) a hollow fibrous membrane separator comprising an electrolyte medium; (c) an inner electrocatalyst layer; (d) an outer electrocatalyst layer, and (e) an outer current collector.
- 21. The fuel cell sub-bundle of claim 20, wherein said common heat-exchanging and/or humidifying element comprises an electrically non-conductive/thermally conductive material.
- 22. The fuel cell sub-bundle of claim 20, wherein said common heat-exchanging and/or humidifying element comprises a membrane wall containing a non-porous, hydrophilic or a microporous, hydrophobic material.
- 23. The fuel cell sub-bundle of claim 20, further comprising an electrically insulative, porous coating layer.
- 24. The fuel cell sub-bundle of claim 23, wherein said electrically insulative, porous coating layer comprises a porous fiberglass matrix or a porous polymeric matrix with a foam-like structure.
- 25. The fuel cell sub-bundle of claim 23, wherein said electrically insulative, porous coating layer comprises one or more hydrophobic materials.
- 26. A fuel cell structure comprising multiple fuel cell elements and a common current collector, wherein each fuel cell element comprises (1) a membrane separator having an electrolyte medium, (2) a first electrocatalyst layer in electrical contact with a first surface of said membrane separator, (3) a second electrocatalyst layer in electrical contact with a second, opposite surface of said membrane separator, and (4) an individual current collector in electrical contact with the first surface of said membrane separator, wherein each fuel cell element is in electrical contact with the common current collector at the second, opposite surface of its membrane separator.
- 27. A fuel cell bundle comprising a thermally conductive tubular element and one or more fuel cell sub-bundles positioned therein, wherein each fuel cell sub-bundle comprises multiple microfibrous fuel cells all in electrical contact with a common current collector, wherein each microfibrous fuel cell comprises: (a) a hollow microfibrous membrane separator comprising an electrolyte medium, (b) an inner electrocatalyst layer in contact with an inner surface of said membrane separator, (c) an outer electrocatalyst layer in contact with an outer surface of said membrane separator, and (d) an individual current collector in electrical contact with the inner surface of said membrane separator.
- 28. The fuel cell bundle of claim 27, comprising multiple fuel cell sub-bundles positioned in said thermally conductive tubular element.
- 29. The fuel cell bundle of claim 27, wherein the thermally conductive tubular element comprise material selected from the group consisting of carbon, graphite, carbon-fiber-reinforced composite materials, fiberglass-reinforced composite materials, metals, metal alloys, thermally conductive polymers, polymeric composite materials, and thermally conductive ceramic materials.
- 30. The fuel cell bundle of claim 27, wherein the thermally conductive tubular element comprise material selected from the group consisting of carbon, graphite, carbon-fiber-reinforced composite materials, and fiberglass-reinforced composite materials.
- 31. The fuel cell bundle of claim 27, wherein the thermally conductive tubular element comprise metal or metal alloy selected from the group consisting of titanium, niobium, nickel, zirconium, gold, tantalum, platinum, palladium, silver, and alloys thereof.
- 32. The fuel cell bundle of claim 27, wherein the thermally conductive tubular element comprise a metal clad composite material having two or more metal layers bonded together by solid-phase bonding.
- 33. The fuel cell bundle of claim 32, wherein the thermally conductive tubular element comprise an innermost layer comprising metal or metal alloy selected from the group consisting of titanium, niobium, nickel, zirconium, gold, tantalum, platinum, palladium, silver, and alloys thereof, and one or more outer layers comprising metal or metal alloy selected from the group consisting of copper, aluminum, brass, bronze, nickel, silver, and alloys thereof.
- 34. The fuel cell bundle of claim 27, wherein the thermally conductive tubular element comprise one or more polymeric materials selected from the group consisting of thermally conductive polymers, polymer/metal composites, polymer/carbon composites, and polymer/ceramic composites.
- 35. The fuel cell bundle of claim 27, wherein said one or more fuel cell sub-bundles are assembled to form a core structure that is detachably mounted in the thermally conductive tubular element.
- 36. The fuel cell bundle of claim 35, wherein said core structure comprises potting members for isolating shell sides of the microfibrous fuel cell elements from bore sides thereof and for binding the fuel cell sub-bundles.
- 37. The fuel cell bundle of claim 36, wherein said core structure further comprises O-ring elements around the potting members.
- 38. The fuel cell bundle of claim 36, wherein the potting members of said core structure leak-tightly seal an inner surface of the thermally conductive tubular element.
- 39. The fuel cell bundle of claim 35, wherein said core structure comprises multiple fuel cell sub-bundles in parallel connection with one another.
- 40. The fuel cell bundle of claim 35, wherein said core structure comprises multiple fuel cell sub-bundles in serial connection with one another, and wherein each fuel cell sub-bundle is covered by a porous insulating layer.
- 41. The fuel cell bundle of claim 40, wherein said core structure comprises terminal elements having coupling wires for connecting the multiple fuel cell sub-bundles in series.
- 42. The fuel cell bundle of claim 36, wherein the thermally conductive tubular element is perforated to form a first set of perforations at a first end and a second set of perforations at a second end.
- 43. The fuel cell bundle of claim 42, wherein distance between said first and sets of perforations is smaller than that between the potting members of the core structure.
- 44. A fuel cell bundle comprising one or more microfibrous fuel cell elements disposed inside an air channel tube, each microfibrous fuel cell element comprising:
(a) an inner current collector; (b) an inner electrocatalyst layer; (b) a hollow fibrous membrane separator comprising an electrolyte medium; (d) an outer electrocatalyst layer; and (e) optionally an outer current collector.
- 45. The fuel cell bundle of claim 44, wherein said air channel tube comprises a thermally conductive tubular element.
- 46. The fuel cell bundle of claim 44, wherein said air channel tube comprises a thermally and electrically conductive tubular element.
- 47. The fuel cell bundle of claim 44, wherein said air channel tube comprises material selected from the group consisting of carbonaceous materials, carbon-fiber-reinforced composite materials, fiberglass-reinforced composite materials, metals, metal alloys, thermally conductive polymers, polymeric composite materials, and thermally conductive ceramics.
- 48. The fuel cell bundle of claim 44, wherein said air channel tube comprises a metal clad composite material having two or more metal layers bonded together by solid-phase bonding.
- 49. The fuel cell bundle of claim 48, wherein the air channel tube comprises an innermost layer comprising metal or metal alloy selected from the group consisting of titanium, niobium, nickel, zirconium, gold, tantalum, platinum, palladium, silver, and alloys thereof, and one or more outer layers comprising metal or metal alloy selected from the group consisting of copper, aluminum, brass, bronze, nickel, silver, and alloys thereof.
- 50. The fuel cell bundle of claim 44, wherein the air channel tube comprises a polymeric tubular element having a non-porous, hydrophilic membrane wall.
- 51. The fuel cell bundle of claim 44, wherein the air channel tube comprises a polymeric tubular element having a microporous, hydrophobic membrane wall.
- 52. The fuel cell bundle of claim 44, wherein the air channel tube comprises a thermally conductive polymeric tubular element having a non-porous, hydrophilic or a microporous, hydrophobic membrane wall.
- 53. The fuel cell bundle of claim 44, wherein the air channel tube comprises a thermally conductive polymeric tubular element comprising a polymeric composite material selected from the group consisting of polymer/metal composite materials, polymer/carbon composition materials, and polymer/ceramic composite materials.
- 54. A fuel cell assembly, comprising an assembly of fuel cell bundles positioned in a housing, wherein each fuel cell bundle comprises a thermally conductive tubular element and one or more fuel cell sub-bundles positioned therein, wherein each fuel cell sub-bundle comprises multiple microfibrous fuel cells all in electrical contact with a common current collector, wherein each microfibrous fuel cell comprises: (a) a hollow microfibrous membrane separator comprising an electrolyte medium, (b) an inner electrocatalyst layer in contact with an inner surface of said membrane separator, (c) an outer electrocatalyst layer in contact with an outer surface of said membrane separator, and (d) an individual current collector in electrical contact with the inner surface of said membrane separator, wherein said housing comprises multiple leak-tightly separated compartments and multiple fluid inlets and outlets arranged and constructed for separately passing a fuel-containing fluid, an oxidant-containing fluid, and a heat-exchanging fluid through the fuel cell bundles for generation of electrical and thermal energy.
- 55. The fuel cell assembly of claim 54, wherein said housing comprises a first pair of tubesheets and a second pair of tube sheets that defines a central compartment, a first and second intermediate compartments, and a first and second end compartments.
- 56. The fuel cell assembly of claim 55, wherein the central compartment communicates with shell sides of the electrically conductive tubular elements of the fuel cell bundles for passing a heat-exchanging fluid therethrough.
- 57. The fuel cell assembly of claim 55, wherein the first and second intermediate compartments communicate with shell sides of the microfibrous fuel cell elements of the fuel cell sub-bundles as positioned in the thermally conductive tubular element of each fuel cell bundle, for feeding a fuel-containing fluid to the shell sides of said microfibrous fuel cell elements and discharging spent fuel from the fuel cell bundles.
- 58. The fuel cell assembly of claim 55, wherein the first and second end compartments communicate with bore sides of the microfibrous fuel cell elements of the fuel cell sub-bundles as positioned in the thermally conductive tubular element of each fuel cell bundle, for feeding an oxidant-containing fluid to the shell sides of said microfibrous fuel cell elements and discharging spent oxidant from the fuel cell bundles.
- 59. The fuel cell assembly of claim 55, further comprising an isolation compartment between the second intermediate compartment and the second end compartment with a release tube connected thereto.
- 60. The fuel cell assembly of claim 54, wherein said housing has a longitudinal axis, and the fluid inlets and outlets are substantially parallel to said longitudinal axis of the housing.
- 61. The fuel cell assembly of claim 60, wherein said fluid inlets and outlets comprises a heat-exchanging inlet tube, a heat-exchanging outlet tube, a fuel inlet tube, and a fuel outlet tube.
- 62. A fuel cell assembly comprising an elongated housing structure have a longitudinal axis with one or more one or more fuel cell elements placed therein, wherein said elongated housing structure comprises multiple fluid inlets and outlets for separately passing two or more fluids through the fuel cell elements, and wherein all the fluid inlets and outlets of said elongated housing structure are substantially parallel to the longitudinal axis of said elongated housing.
- 63. A fuel cell assembly, comprising an assembly of fuel cell bundles positioned in a housing, wherein each fuel cell bundle comprises one or more microfibrous fuel cell elements positioned inside an air channel tube, each microfibrous fuel cell element comprising: (a) an inner current collector; (b) an inner electrocatalyst layer; (c) a hollow fibrous membrane separator comprising an electrolyte medium; (d) an outer electrocatalyst layer; and (e) optionally, an outer current collector, wherein said housing comprises multiple leak-tightly separated compartments and multiple fluid inlets and outlets arranged and constructed for separately passing a fuel-containing fluid, an oxidant-containing fluid, and a heat-exchanging fluid through said microfibrous fuel cell bundles for generation of electrical and thermal energy.
- 64. The fuel cell assembly of claim 63, wherein an aqueous heat-exchanging fluid is provided, and wherein the air channel tube of each fuel cell bundle comprises a polymeric tube having a nonporous, hydrophilic membrane wall.
- 65. The fuel cell assembly of claim 63, wherein an aqueous heat-exchanging fluid is provided, and wherein the air channel tube of each fuel cell bundle comprises a polymeric tube having a microporous, hydrophobic membrane wall.
- 66. The fuel cell assembly of claim 63, wherein an aqueous heat-exchanging fluid is provided, wherein said assembly further comprises at least one hollow humidifying fiber for each fuel cell bundle, wherein each hollow humidifying fiber is arranged and constructed for flowing the aqueous heat exchange fluid through its bore into the lumen of the air channel tube of each fuel cell bundle, thereby supplying water vapor to humidify the microfibrous fuel cell elements inside said air channel tube.
- 67. The fuel cell assembly of claim 66, wherein each hollow humidifying fiber comprises a nonporous, hydrophilic polymeric membrane wall.
- 68. The fuel cell assembly of claim 66, wherein each hollow humidifying fiber comprises a microporous, hydrophobic polymeric membrane wall.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This claims priority to U.S. Provisional Patent Application No. 60/452,635, filed Mar. 7, 2003 in the names of Ray R. Eshraghi and Michael W. Riley for “MICROFIBROUS FULE CELL ASSEMBLIES WITH INTEGRAL THERMAL AND/OR HUMIDITY MANAGEMENT SYSTEMS.”
GOVERNMENT INTEREST
[0002] The U.S. government may own rights in the present invention, pursuant to Grant No. 70NANB1H3039 awarded by the Advanced Technology Program (ATP) of National Institute of Science and Technology (NIST).
Provisional Applications (1)
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Number |
Date |
Country |
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60452635 |
Mar 2003 |
US |