Claims
- 1. An electrochemical device, comprising:
a plurality of components, said components forming at least one boundary between diverse gaseous streams and defining at least one junction therebetween; a multi-layer seal positioned at the junction, the seal composed of a gasket body disposed between two compliant interlayers, wherein each compliant interlayer is positioned between the gasket body and one of said components; and a compression member for exerting a compressive force to the components and the seal.
- 2. The electrochemical device in accordance with claim 1 wherein said seal is a non-conducting seal.
- 3. The electrochemical device in accordance with claim 1 wherein the gasket body comprises mica.
- 4. The electrochemical device in accordance with claim 1 wherein at least one of said compliant interlayers comprises glass.
- 5. The electrochemical device in accordance with claim 4 wherein the glass has a softening point lower than or equal to the operating temperatures of the device.
- 6. The electrochemical device in accordance with claim 4 wherein the glass is not corrosive to surfaces of the components in contact with the glass under operating conditions.
- 7. The electrochemical device in accordance with claim 4 wherein the glass includes an alkaline earth element selected from the group consisting of strontium, magnesium and calcium or an alkali additive selected from the group consisting of sodium, potassium and lithium.
- 8. The electrochemical device in accordance with claim 4 wherein the glass comprises a borosilicate glass.
- 9. The electrochemical device in accordance with claim 4 wherein the glass interlayer has a thickness of from about 0.005 millimeters to about 5 millimeters prior to heating.
- 10. The electrochemical device in accordance with claim 1 wherein at least one of said compliant layers comprises a metal.
- 11. The electrochemical device in accordance with claim 10 wherein the metal is resistant to oxidation under operating conditions of the device.
- 12. The electrochemical device in accordance with claim 10 wherein the metal is selected from the group consisting of gold, silver, palladium and platinum.
- 13. The electrochemical device in accordance with claim 10 wherein the compliant interlayer is a metallic foil having a thickness of from about 0.005 millimeters to about 1 millimeters prior to heating.
- 14. The electrochemical device in accordance with claim 1 wherein the compressive force is a force of from about 5 to about 500 psi.
- 15. The electrochemical device in accordance with claim 1 wherein said gasket body has a thickness of from about 25 microns to about 2 millimeters.
- 16. The electrochemical device in accordance with claim 1 wherein each of said compliant layers has a thickness of from about 0.005 millimeters to about 1 millimeter prior to heating.
- 17. The electrochemical device in accordance with claim 1 wherein the electrochemical device comprises a member selected from the group consisting of a solid oxide fuel cell, a syngas membrane reactor and an oxygen generator.
- 18. A multi-layer seal for sealing a junction between adjacent components of an electrochemical device, said seal comprising:
a gasket body defining first and second opposing surfaces; a first compliant interlayer positioned adjacent the first surface; and a second compliant interlayer positioned adjacent the second surface.
- 19. The seal in accordance with claim 18 wherein the opposing surfaces of said gasket body are configured to correspond to junction surfaces of the adjacent components.
- 20. The seal in accordance with claim 19 wherein each of said first and second compliant interlayers is positioned to be disposed between said gasket body and the junction surface of one of the adjacent components.
- 21. The seal in accordance with claim 18 wherein the gasket body comprises a member selected from the group consisting of a single crystal mica and a mica paper.
- 22. The seal in accordance with claim 18 wherein said gasket body comprises a mica selected from the group consisting of Muscovite, Phlogopite, Biotite, Fuchsite, Lepidolite and Zinnwaldite.
- 23. The seal in accordance with claim 18 wherein at least one of said first and second compliant interlayers comprises a member selected from the group consisting of a glass, a glass-ceramic, a mica glass-ceramic, a phase-separated glass, a glass composite, a cermet, a metal, a metal alloy and a metal composite.
- 24. The seal in accordance with claim 18 wherein at least one of said first and second compliant interlayers comprises glass.
- 25. The seal in accordance with claim 24 wherein the glass has a softening point lower than or equal to the operating temperature of the electrochemical device.
- 26. The seal in accordance with claim 24 wherein the glass includes an alkaline earth element selected from the group consisting of strontium, magnesium and calcium or an alkali additive selected from the group consisting of sodium, potassium and lithium.
- 27. The seal in accordance with claim 24 wherein the glass comprises a borosilicate glass.
- 28. The seal in accordance with claim 18 wherein at least one of said first and second compliant interlayers comprises a metal.
- 29. The seal in accordance with claim 28 wherein the metal is resistant to oxidation under operating conditions of the electrochemical device.
- 30. The seal in accordance with claim 28 wherein the metal is selected from the group consisting of gold, silver, palladium and platinum.
- 31. The seal in accordance with claim 28 wherein at least one of said first and second compliant interlayers is a metallic foil having a thickness of from about 0.005 millimeters to about 1 millimeter.
- 32. The seal in accordance with claim 18 wherein said gasket body has a thickness of from about 25 microns to about 1 millimeter.
- 33. The seal in accordance with claim 18 wherein each of said compliant layers has a thickness of from about 0.005 millimeters to about 1 millimeter.
- 34. A method for making a multi-layer seal, comprising:
providing a gasket body defining first and second generally flat opposing surfaces; and applying a compliant material to said first and second surfaces to form first and second compliant interlayers.
- 35. The method in accordance with claim 34 wherein the gasket body comprises mica.
- 36. The method in accordance with claim 34 wherein at least one of the first and second compliant interlayers comprises a member selected from the group consisting of a glass, a glass-ceramic, a mica glass-ceramic, a phase-separated glass, a glass composite, a cermet, a metal, a metal alloy and a metal composite.
- 37. The method in accordance with claim 34 wherein the gasket body has a thickness of from about 25 microns to about 1 millimeter.
- 38. The method in accordance with claim 34 wherein each of the first and second compliant layers has a thickness of from about 0.005 millimeters to about 1 millimeter.
- 39. The method in accordance with claim 34 wherein said applying comprises a member selected from the group consisting of dip-coating, painting, screen printing, deposition, spattering, tape casting and sedimentation.
- 40. A method for sealing a junction between adjacent ceramic or metallic components of an electrochemical device, comprising:
positioning between the adjacent components a multi-layer seal composed of a gasket body disposed between a first compliant interlayer and a second compliant interlayer, wherein each of the first and second compliant interlayers is positioned between the gasket body and one of the components; and applying a compressive force to the components and the seal.
- 41. The method in accordance with claim 40 wherein the gasket body comprises a member selected from the group consisting of a single crystal mica and a mica paper.
- 42. The method in accordance with claim 40 wherein at least one of the first and second compliant interlayers comprises a member selected from the group consisting of glass and metal.
- 43. The method in accordance with claim 40 wherein the compressive force is a force of from about 5 to about 500 psi.
- 44. The method in accordance with claim 40 wherein the gasket body has a thickness of from about 25 microns to about 1 millimeter.
- 45. The method in accordance with claim 40 wherein each of the first and second compliant layers has a thickness of from about 0.005 millimeters to about 1 millimeter.
- 46. A solid oxide fuel cell assembly for electrochemically reacting a fuel gas with a flowing oxidant gas at an elevated temperature to produce a DC output voltage, said solid oxide fuel cell comprising:
a plurality of generally planar integral fuel cell units, each unit comprising a layer of ceramic ion conducting electrolyte disposed between a conductive anode layer and a conductive cathode layer, wherein said units are arranged one on another along a longitudinal axis perpendicular to said planar units to form a fuel cell stack; a multi-layer non-conducting seal disposed between the anode layer and the cathode layer of adjacent fuel cell units, wherein the seal is composed of a gasket body disposed between two compliant interlayers; and a compression member for exerting a compressive force along the longitudinal axis.
- 47. The assembly in accordance with claim 46 wherein the compressive force is a force of from about 5 to about 500 psi.
- 48. The assembly in accordance with claim 46 wherein the anode layer is composed of a first porous ceramic material and the cathode layer is composed of a second porous ceramic material.
GOVERNMENT RIGHTS
[0001] This invention was made with Government support under Contract Number DE-AC0676RL01830 awarded by the U.S. Department of Energy. The Government has certain rights in the invention.