Claims
- 1. An article, comprising a metal-based substrate, and at least two layers overlying the substrate, wherein one of the layers is a coating which comprises a braze alloy, and another layer is a plasma-sprayed bond coat.
- 2. The article of claim 1, wherein the braze alloy comprises a nickel-base or cobalt-base material.
- 3. The article of claim 2, wherein the braze alloy further comprises at least one component for lowering its melting point.
- 4. The article of claim 2, wherein the braze alloy comprises silicon, chromium, and nickel.
- 5. The article of article of claim 1, wherein the bond coat comprises an alloy of the formula MCrAlY, where M is selected from the group consisting of Fe, Ni, Co, and mixtures of any of the foregoing.
- 6. The article of claim 1, wherein the bond coat is partially densified.
- 7. The article of claim 6, wherein about 35% to about 65% of the depth of the bond coat is densified.
- 8. The article of claim 1, wherein the layer comprising the braze alloy lies directly over the substrate.
- 9. The article of claim 8, wherein the bond coat lies directly over the layer comprising the braze alloy.
- 10. The article of claim 9, wherein the bond coat is partially densified.
- 11. The article of claim 9, wherein a thermal barrier coating overlies the bond coat.
- 12. The article of claim 11, wherein the thermal barrier coating is zirconia-based.
- 13. The article of claim 1, wherein the bond coat lies directly over the substrate.
- 14. The article of claim 13, wherein the layer comprising the braze alloy lies directly over the bond coat.
- 15. The article of claim 14, wherein the layer comprising the braze alloy has been thermal-sprayed on the bond coat.
- 16. The article of claim 15, wherein the layer comprising the braze alloy has been thermal-sprayed on the bond coat by APS.
- 17. The article of claim 14, wherein a thermal barrier coating lies directly over the layer comprising the braze alloy.
- 18. The article of claim 14, wherein the bond coat is partially densified.
- 19. An article, comprising:
(i) a nickel-base superalloy substrate; (ii) a braze alloy layer lying directly over the substrate, and comprising a nickel-base or cobalt-base material; (iii) a plasma-sprayed bond coat lying directly over the braze alloy layer, and comprising an alloy of the formula MCrAlY, where M is selected from the group consisting of Fe, Ni, Co, and mixtures of any of the foregoing; and (iv) a zirconia-based thermal barrier coating, applied directly over the bond coat.
- 20. The article of claim 19, wherein at least a portion of the bond coat adjacent the braze alloy layer is densified.
- 21. The article of claim 19, wherein the substrate is a component of a turbine engine.
- 22. An article, comprising:
(i) a nickel-base superalloy substrate; (ii) a plasma-sprayed bond coat lying directly over the substrate, and comprising an alloy of the formula MCrAlY, where M is selected from the group consisting of Fe, Ni, Co, and mixtures of any of the foregoing; (iii) a braze alloy layer lying directly over the plasma-sprayed bond coat; and (iv) a zirconia-based thermal barrier coating, applied directly over the braze alloy layer.
- 23. The article of claim 22, wherein the braze alloy layer has been thermal-sprayed on the bond coat.
- 24. The article of claim 23, wherein the braze alloy layer has been thermal-sprayed on the bond coat by APS.
- 25. The article of claim 22, wherein at least a portion of the bond coat adjacent the braze alloy layer is densified.
- 26. The article of claim 22, wherein the substrate is a component of a turbine engine.
- 27. An article, comprising:
(i) a metal-based substrate; (ii) a dense bond layer over the substrate; (iii) a substantially porous bond layer over the dense bond layer, having a microstructure which comprises an open network of interconnected pores; and (iv) a thermal barrier coating over the substantially porous bond layer; wherein the dense bond layer has been formed by a heat-induced infiltration of a braze material into a porous bond region immediately below layer (iii).
- 28. A method for providing environmental protection to a metal-based substrate, comprising the steps of applying a coating which comprises a braze alloy over the substrate, and plasma-spraying a bond coat over the substrate.
- 29. The method of claim 28, wherein the braze alloy comprises a nickel-base or cobalt-base material.
- 30. The method of claim 29, wherein the braze alloy comprises silicon, chromium, and nickel.
- 31. The method of claim 28, wherein the plasma-sprayed bond coat is substantially porous.
- 32. The method of claim 28, wherein the bond coat comprises an alloy of the formula MCrAlY, where M is selected from the group consisting of Fe, Ni, Co, and mixtures of any of the foregoing.
- 33. The method of claim 28, wherein the step of applying the coating which comprises a braze alloy over the substrate is carried out before the step of plasma-spraying the bond coat, said plasma-sprayed bond coat being applied directly to the coating comprising the braze alloy.
- 34. The method of claim 33, wherein the coating comprising the braze alloy is fused to the substrate before the application of the plasma-sprayed bond coat.
- 35. The method of claim 33, wherein the plasma-sprayed bond coat is substantially porous.
- 36. The method of claim 35, wherein plasma-spraying of the bond coat is carried out by APS.
- 37. The method of claim 35, wherein the braze alloy is heat-treated after the application of the plasma-sprayed bond coat, to at least partially densify the bond coat.
- 38. The method of claim 37, wherein the heat-treatment is carried out in a vacuum.
- 39. The method of claim 37, wherein about 35% to about 65% of the depth of the bond coat is densified.
- 40. The method of claim 37, wherein the bond coat comprises an alloy of the formula MCrAlY, where M is selected from the group consisting of Fe, Ni, Co, and mixtures of any of the foregoing.
- 41. The method of claim 28, wherein the step of applying the coating which comprises a braze alloy over the substrate is carried out after the step of plasma-spraying the bond coat, so that the plasma-sprayed bond coat is applied directly to the substrate, and the braze alloy overlies the bond coat.
- 42. The method of claim 41, wherein the layer comprising the braze alloy is thermal-sprayed on the bond coat.
- 43. The method of claim 42, wherein the layer comprising the braze alloy is thermal-sprayed on the bond coat by APS.
- 44. The method of claim 41, wherein the plasma-sprayed bond coat is substantially porous.
- 45. The method of claim 44, wherein the braze alloy is heat-treated after the application of the plasma-sprayed bond coat, to at least partially densify the bond coat.
- 46. The method of claim 45, wherein the heat-treatment is carried out in a vacuum.
- 47. The method of claim 28, wherein a thermal barrier coating is applied over the substrate after the application of the bond coat and the coating which comprises a braze alloy.
- 48. The method of claim 47, wherein the braze alloy is heat-treated after the application of the thermal barrier coating, to at least partially densify the bond coat.
- 49. A method for providing environmental protection to a nickel-base superalloy substrate, comprising the following steps:
(i) applying a braze alloy coating on the substrate, said coating comprising silicon, chromium, and nickel; (ii) plasma-spraying a bond coat over the braze alloy coating, said bond coat comprising an alloy of the formula MCrAlY, where M is selected from the group consisting of Fe, Ni, Co, and mixtures of any of the foregoing; (iii) applying a zirconia-yttria thermal barrier coating over the bond coat; and (iv) heat treating the braze alloy coating, to at least partially densify the bond coat.
Government Interests
[0001] This invention was made with government support under Contract No. DEFC21-95MC31176 awarded by DoE. The government may have certain rights to the invention.
Divisions (1)
|
Number |
Date |
Country |
Parent |
09444737 |
Nov 1999 |
US |
Child |
09813014 |
Mar 2001 |
US |