Claims
- 1. (Amended) A process for producing a solid oxide fuel cell, including a solid electrolyte layer arranged between two porous electrodes, comprising:
applying the solid electrolyte layer in gastight form to one of the electrodes via a plasma-spraying process in a coating chamber in which the pressure is less than approximately 15 mbar, wherein individual particles of a coating material are entrained in a plasma jet, and wherein the particles are thinly distributed in the plasma jet in such a manner that they are applied to the one of the electrodes in substantially isolated form.
- 2. (Amended) The process as claimed in claim 1, further comprising:
producing a continuous layer after the plasma jet has passed over the electrode a plurality of times.
- 3. (Amended) The process as claimed in claim 2, wherein the layer is continuous after the plasma jet has passed over the electrode about 20 to 60 times.
- 4. (Amended) The process as claimed in claim 1, wherein the total layer thickness of the solid electrolyte layer is approximately 30 μm.
- 5. (Amended) The process as claimed in claim 1, wherein the plasma jet on the electrode (4) hasincludes a jet diameter of between 30 and 50 cm.
- 6. (Amended) The process as claimed in claim 1, wherein a pulverulent coating material with a mean particle diameter of less than 20 μm is introduced into the plasma jet.
- 7. (Amended) The process as claimed in claim 1, wherein the leak rate of the solid electrolyte layer is less than approximately 10*10−4 mbar 1/sec/cm2.
- 8. (Amended) The process as claimed in claim 1, wherein the density of the coating is set by varying the process parameters.
- 9. (Amended) The process as claimed in claim 8, wherein the density is set by selecting the mean particle size.
- 10. (Amended) The process as claimed in claim 1, further comprising:
applying an interconnector as a further layer via the plasma-spraying process.
- 11. (Amended) The process as claimed in claim 1, wherein at least one of the electrodes is produced via of the plasma-spraying process.
- 12. (Amended) The process as claimed in claim 1, wherein the process parameters are varied during the coating.
- 13. (Amended) The process as claimed in claim 1, wherein the fuel cell is designed as a tubular hollow body.
- 14. The process as claimed in claim 3, wherein the layer has a layer thickness of approximately 5 μm to 10 μm.
- 15. The process as claimed in claim 1, wherein the total layer thickness of the solid electrolyte layer is approximately 30 μm.
- 16. The process as claimed in claim 1, wherein the total layer thickness of the solid electrolyte layer is approximately 30 μm.
- 17. The process as claimed in claim 4, wherein the plasma jet on the electrode includes a jet diameter of 40 cm.
- 18. The process as claimed in claim 2, wherein the plasma jet on the electrode includes a jet diameter of between 30 and 50 cm.
- 19. The process as claimed in claim 3, wherein the plasma jet on the electrode includes a jet diameter of between 30 and 50 cm.
- 20. The process as claimed in claim 1, wherein a pulverulent coating material with a mean particle diameter of approximately less than 10 μm is introduced into the plasma jet.
- 21. The process as claimed in claim 1, wherein the leak rate of the solid electrolyte layer is less than approximately 2.3*10−4 mbar 1/sec/cm2.
- 22. A method for producing a solid oxide fuel cell, including a solid electrolyte layer arranged between two porous electrodes, comprising:
applying the solid electrolyte layer in gastight form to one of the electrodes via a plasma-spraying process in a coating chamber in which the pressure is less than approximately 15 mbar, wherein particles of a coating material are dispersed in the plasma jet in such a manner that they are applied to the one of the electrodes in substantially isolated form.
- 23. The process as claimed in claim 22, further comprising:
producing a continuous layer by passing the plasma jet over the at least one electrode a plurality of times.
- 24. The process as claimed in claim 23, wherein the layer is continuous after the plasma jet has passed over the electrode about 20 to 60 times.
Priority Claims (1)
Number |
Date |
Country |
Kind |
00118769.9 |
Aug 2000 |
EP |
|
Parent Case Info
[0001] This application is the national phase under 35 U.S.C. § 371 of PCT International Application No. PCT/EP01/09760 which has an International filing date of Aug. 23, 2001, which designated the United States of America and which claims priority on European Patent Application number EP 00118769.9 filed Aug. 30, 2000, the entire contents of which are hereby incorporated herein by reference.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
PCT/EP01/09760 |
8/23/2001 |
WO |
|