Claims
- 1. A tubular solid oxide fuel cell comprising:
(a) a tubular, substantially metallic porous support layer; and (b) a tubular, substantially ceramic functional layer assembly in concentric adjacent contact with the support layer, having a thickness less than or equal to 80 μm and comprising in concentric arrangement: an inner electrode layer, a middle electrolyte layer, and an outer electrode layer; the dimensions of the support layer being selected to enable the support layer to mechanically support the functional layer assembly.
- 2. The fuel cell of claim 1 wherein the functional layer assembly wall thickness is less than or equal to 65 μm and the diameter less than or equal to 5 mm.
- 3. The fuel cell of claim 2 wherein the diameter of the functional layer assembly is less than or equal to 2 mm.
- 4. The fuel cell of claim 2 wherein the thickness of the functional layer assembly is less than or equal to 20 μm.
- 5. The fuel cell of claim 1 wherein the electrolyte is made of a material selected from the group of yittria-stabilized zirconia and Gd2O3-doped CeO2.
- 6. The fuel cell of claim 5 wherein the electrolyte is made of yittria-stabilized zirconia and has a thickness less than or equal to 5 μm.
- 7. The fuel cell of claim 5 wherein the electrolyte is made of Gd2O3-doped CeO2 and has a thickness of less than or equal to 15 μm.
- 8. The fuel cell of claim 5 wherein the electrolyte includes may contain a sintering additive selected from the group of CoO and iron oxide, Co and copper oxide, cobalt and iron, and cobalt and copper.
- 9. The fuel cell of claim 1 wherein the support layer has a thickness of between 20 and 500 μm.
- 10. The fuel cell of claim 9 wherein the support layer is made of a material selected from the group of stainless steel, ferritic steel, silver nickel alloy and super-alloy.
- 11. The fuel cell of claim 1 wherein the inner electrode layer is an anode and has a thickness of between 1 and 20 μm.
- 12. The fuel cell of claim 1 wherein the outer electrode layer is a cathode and has a thickness of between 1 and 30 μm.
- 13. A fuel cell stack comprising
(a) at least one fuel cell of claim 1; and (b) a foam-like support matrix embedding the fuel cell and having a porosity sufficient to flow a reactant therethrough and to the outer surface of the embedded fuel cell.
- 14. A tubular solid oxide fuel cell comprising:
(a) a tubular, substantially metallic porous support layer made of a material selected from the group of stainless steel, ferritic steel, and super-alloy and having a thickness of between 20 and 500 μm; and (b) a tubular, substantially ceramic functional layer assembly in concentric adjacent contact with the support layer and having a thickness that is less than or equal to 65 μm and comprising in concentric arrangement: an inner electrode layer, a middle electrolyte layer made of a material selected from the group of yittria-stabilized zirconia and Gd2O3-doped CeO2, and an outer electrode assembly.
- 15. The fuel cell of claim 14 wherein the thickness of the electrolyte layer is selected such that the fuel cell is flexible and is operable at a temperature less than or equal to 700° C.
- 16. The fuel cell of claim 15 wherein the electrolyte layer is made of yittria-stabilized zirconia and the electrolyte layer has a thickness less than or equal to 5 μm.
- 17. The fuel cell of claim 15 wherein the electrolyte layer is made of Gd2O3-doped CeO2 and the electrolyte layer has a thickness less than or equal to 15 μm.
- 18. A method of manufacturing a tubular solid oxide fuel cell comprising
(a) coating a substrate member with a conductive substrate layer, the material of the substrate member being selected from the group of wood, polymer, paper and jute/polymer fibers; (b) coating the substrate layer with an inner electrode layer, (c) coating the inner electrode layer with an electrolyte layer; (d) drying and sintering the coated substrate member such that the substrate member combusts; (e) coating the electrolyte layer with an outer electrode layer, and (f) drying and sintering the layers thereby producing a hollow tubular fuel cell.
- 19. The method of claim 18 wherein the material of the conductive substrate layer is selected from the group of metal, carbon, and graphite.
- 20. The method of clam 19 wherein the material of the conductive substrate layer is metal selected from the group of stainless steel, ferritic steel and super-alloy.
- 21. The method of claim 18 wherein between steps (a) and (b), the conductive substrate layer is coated with a metal support layer by electrophoretic deposition.
- 22. The method of claim 21 wherein the metal support layer has a thickness between 20 and 500 μm.
- 23. The method of claim 18 wherein the substrate layer material is metal, and between steps (a) and (b), the coated substrate member is dried and sintered such that the substrate member combusts, then the remaining metal substrate layer is shaped.
- 24. A method of manufacturing a tubular solid oxide fuel cell comprising:
(a) coating a tubular substantially metallic support layer with a substantially ceramic inner electrode layer, (b) coating the inner electrode layer with a substantially ceramic electrolyte layer; (c) drying and sintering the layers (d) coating the electrolyte layer with a substantially ceramic outer electrode layer, then (e) drying and sintering the outer electrode thereby producing a flexible hollow tubular metal-supported fuel cell; the electrode and electrolyte coatings having a collective wall thickness of 80 μm or less.
- 25. The method of claim 24 wherein the inner electrode layer is coated on the support layer by one in the group of electrophoretic deposition and dip-coating.
- 26. The method of claim 24 wherein the electrolyte layer is coated on the inner electrode layer by one in the group of electrophoretic deposition, dip-coating, and spraying.
- 27. The method of claim 24 wherein the electrolyte layer is a sol-gel layer.
RELATED APPLICATIONS
[0001] This application claims priority from and incorporates by reference U.S. application Ser. No. 10/156,755 entitled “Solid Oxide Fuel Cell System” fled May 23, 2002, U.S. application Ser. No. 10/053,241 entitled “Hollow Inorganic Membranes Produced by Metal or Composite Electrodeposition” filed on Jan. 16, 2002, and U.S. application Ser. No. 10/078,548 entitled “Tubular Solid Oxide Fuel Cell Stack” filed on Feb. 14, 2002.
Continuation in Parts (3)
|
Number |
Date |
Country |
Parent |
10053241 |
Jan 2002 |
US |
Child |
10207668 |
Jul 2002 |
US |
Parent |
10078548 |
Feb 2002 |
US |
Child |
10207668 |
Jul 2002 |
US |
Parent |
10156755 |
May 2002 |
US |
Child |
10207668 |
Jul 2002 |
US |