Claims
- 1. A process for applying a coating of ceramic material to a substrate by plasma spraying, wherein a material forming the coating of ceramic material is added to a plasma jet as a material to be sprayed, comprising the steps of:
- providing a plasma torch;
- introducing a primary plasma gas comprising argon and additional gas other than argon for increasing enthalpy to said plasma torch to produce a plasma jet having an enthalpy of more than 20 MJ/kg at 10,000.degree. C.;
- providing a material to be sprayed, said material including a chemical compound having the property of decomposing at least partially when heated in an inert environment before reaching its melting point,
- providing a non-metallic element from the group N, C, B or from the main groups VIa or VIIa of the Periodic Table,
- introducing said material to be sprayed and said non-metallic element into said plasma jet downstream of a high-current arc of said plasma torch, wherein said plasma jet heats said non-metallic element to a free dissociated or ionized form not bound to a foreign element;
- heating said material to be sprayed in said plasma jet to a temperature of at most 1000 degrees C. above the melting point of said chemical compound and;
- spraying said material to be sprayed, with said plasma jet, onto said substrate.
- 2. A process as defined in claim 1, characterized in that a nozzle for generating a laminar jet as said plasma jet is provided downstream of said high current arc.
- 3. A process as defined in claim 2, characterized in that said plasma jet is generated by a d.c. torch.
- 4. A process as defined in claim 3, characterized in that said non-metallic element is added to said plasma jet downstream from said high-current arc.
- 5. A process as defined in claim 4, characterized in that said non-metallic element is added to said plasma jet downstream of said high-current arc, and closer to said arc than to said substrate.
- 6. A process as defined in claim 2, characterized in that said non-metallic element is conducted, after its introduction, in the core region of said plasma jet.
- 7. A process as defined in claim 2, characterized in that said non-metallic element is added to said plasma jet in the nozzle of said torch generating said laminar jet.
- 8. A process as defined in claim 7, characterized in that said non-metallic element is added to said plasma jet in a Laval nozzle serving as the nozzle generating said laminar jet.
- 9. A process as defined in claim 2, characterized in that said chemical compound interacts with said laminar plasma jet over a length of at least 60 mm.
- 10. A process as defined in claim 1, characterized in that said plasma spraying is carried out in a vacuum.
- 11. A process as defined in claim 1, characterized in that said non-metallic element is carried along in dissociated form in said plasma jet.
- 12. A process as defined in claim 1, characterized in that said non-metallic element is carried along in ionized form in said plasma jet.
- 13. A process as defined in claim 1, characterized in that said non-metallic element is added to said plasma jet together with said material to be sprayed.
- 14. A process as defined in claim 1, characterized in that said non-metallic element is introduced into said plasma jet in gaseous form.
- 15. A process as defined in claim 1, characterized in that said non-metallic element is liberated from a gas introduced into said plasma jet.
- 16. A process as defined in claim 1, characterized in that said non-metallic element is included in a conveying medium for said material to be sprayed.
- 17. A process as defined in claim 16, characterized in that said conveying medium for said material to be sprayed is gaseous.
- 18. A process as defined in claim 1, characterized in that said material to be sprayed which is added to said plasma jet is in powder form.
- 19. A process as defined in claim 1, characterized in that said material to be sprayed is conducted, after its introduction, in the core region of said plasma jet.
- 20. A process as defined in claim 1, wherein a nozzle is provided downstream of said high current arc, and said material to be sprayed is added to said plasma jet in said nozzle.
- 21. A process as defined in claim 20, wherein said nozzle is a Laval nozzle which forms said plasma jet into a laminar jet.
- 22. A process as defined in claim 1, characterized in that said plasma jet is essentially free of chemical elements which could react with said non-metallic element to form stable chemical compounds.
- 23. A process as defined in claim 22, characterized in that said plasma jet is essentially free of hydrogen.
- 24. A process as defined in claim 1, characterized in that said primary plasma gas exhibits an enthalpy of >30 MJ/Kg at 10,000 degrees C.
- 25. A process as defined in claim 24, characterized in that said primary plasma gas exhibits an enthalpy of >40 MJ/Kg at 10,000 degrees C.
- 26. A process as defined in claim 1, characterized in that said plasma gas includes helium.
- 27. A process as defined in claim 1, characterized in that helium or nitrogen is added as additional gas increasing the free enthalpy and the viscosity of the primary plasma gas.
- 28. A process as defined in claim 1, characterized in that said plasma jet exhibits an enthalpy and temperature bringing about dissociation of said non-metallic element.
- 29. A process as defined in claim 1, characterized in that said plasma jet exhibits an enthalpy and temperature bringing about ionization of said non-metallic element.
- 30. A process as defined in claim 1, characterized in that an additional heating step is provided for said plasma jet following said high-current arc generating said plasma jet.
- 31. A process as defined in claim 30, characterized in that said additional heating is carried out by a high-frequency coupling into said plasma jet.
- 32. A process as defined in claim 1, characterized in that said chemical compound includes a metal.
- 33. A process as defined in claim 1, characterized in that said chemical compound exhibits in the region of its melting temperature a free enthalpy of formation lying in the region of zero and above.
- 34. A process as defined in claim 1, characterized in that said chemical compound is heated in said plasma jet to at least approximately 500 degrees C.
- 35. A process as defined in claim 1, characterized in that said coating of ceramic material comprises a catalytically active coating.
- 36. A process as defined in claim 1, characterized in that said coating of ceramic material comprises an electro-catalytically active coating.
- 37. A process as defined in claim 1, characterized in that said coating of ceramic material comprises a tribologically active coating.
- 38. A process as defined in claim 1, characterized in that said coating of ceramic material comprises a superconductive coating.
- 39. A process as defined in claim 1, characterized in that said plasma spraying is carried out with an ultrasonic jet.
- 40. A process as defined in claim 1, characterized in that said primary plasma gas comprises additional gases for increasing the viscosity of said primary plasma gas.
- 41. A process for applying a coating of ceramic material to a substrate by plasma spraying, wherein a material forming the coating of ceramic material is added to a plasma jet as a material to be sprayed, comprising the steps of:
- providing a plasma torch;
- introducing a primary plasma gas, comprising argon and additional gas other than argon for increasing enthalpy and the viscosity of said plasma gas, to said plasma torch to produce a laminar plasma jet;
- providing a material to be sprayed, said material including a chemcial compound having the property of decomposing at least partially when heated in an inert environment before reaching its melting point,
- providing a non-metallic element from the group N, C, B or from the main groups VIa or VIIa of the Periodic Table,
- introducing said material to be sprayed and said non-metallic element into said plasma jet downstream of a high-current arc of said plasma torch, wherein said plasma jet interacts with said non-metallic element for obtaining said non-metallic element in dissociated or ionized form in addition to said material to be sprayed;
- heating said material to be sprayed in said plasma jet to a temperature of at most 1000 degrees C. above the melting point of said chemical compound and;
- spraying said material to be sprayed, with said plasma jet, onto said substrate.
- 42. A process in accordance with claim 41, wherein a nozzle adapted to generate a laminar plasma jet is provided downstream of said high-current arc, comprising the further step of:
- providing a vacuum for plasma spraying therein, wherein said laminar plasma jet is produced in said vacuum,
- minimizing decomposition of said material to be sprayed by:
- (i) heating said non-metallic element to a dissociated or ionized form in said laminar plasma jet having said aforesaid enthalpy,
- (ii) heating said chemical compound in said plasma jet to a temperature of no greater than 1000 degrees C. above its melting point, and
- (iii) said spraying step carries said material to be sprayed with said laminar plasma jet under said vacuum, said heating step heats said non-metallic element to a dissociated or ionized form in said laminar plasma jet and said additional gas in said primary plasma gas increases enthalpy to said plasma torch to provide said laminar plasma jet with an enthalpy of more than 20 MJ/kg at 10,000.degree. C.
- 43. A process as defined in claim 41, wherein said additional gas for increasing enthalpy comprises helium.
- 44. A process for applying a coating of ceramic material to a substrate by plasma spraying, wherein a material forming the coating of ceramic material is added to a plasma jet as a material to be sprayed, comprising the steps of:
- providing a vacuum for plasma spraying therein;
- providing a plasma torch with a nozzle adapted to generate a laminar plasma jet;
- introducing a primary plasma gas comprising argon and additional gas other than argon for increasing enthalpy to said plasma torch to produce said laminar plasma jet;
- providing a material to be sprayed, said material including a chemical compound having the property of decomposing at least partially when heated in an inert environment before reaching its melting point;
- providing a non-metallic element from the group N, C, B or from the main groups VIa or VIIa of the Periodic Table;
- introducing said material to be sprayed and said non-metallic element into said plasma jet downstream of a high-current arc of said plasma torch, wherein said plasma jet carries said non-metallic element in a free form not bound to a foreign element in addition to said material to be sprayed; and
- uniformly heating said material to be sprayed and said chemical compound in said laminar plasma jet to at most 1000 degrees C. above the melting point of said chemical compound, and spraying said material to be sprayed onto said substrate with said laminar plasma jet in said vacuum.
- 45. A process as defined in claim 44, wherein said additional gas for increasing enthalpy comprises helium.
Priority Claims (1)
Number |
Date |
Country |
Kind |
3914722 |
May 1989 |
DEX |
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Parent Case Info
This application is a continuation of commonly assigned, copending U.S. patent application Ser. No. 07/870,788 filed Apr. 16, 1992, which is a continuation of Ser. No. 07/635,165 filed Feb. 19, 1991, now abandoned.
PCT Information
Filing Document |
Filing Date |
Country |
Kind |
102e Date |
371c Date |
PCT/EP90/00674 |
4/26/1990 |
|
|
2/19/1991 |
2/19/1991 |
Publishing Document |
Publishing Date |
Country |
Kind |
WO90/13681 |
11/15/1990 |
|
|
US Referenced Citations (6)
Foreign Referenced Citations (2)
Number |
Date |
Country |
0202077 |
|
EPX |
0330196 |
Feb 1988 |
EPX |
Continuations (2)
|
Number |
Date |
Country |
Parent |
870788 |
Apr 1992 |
|
Parent |
635165 |
Feb 1991 |
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