Claims
- 1. Process for increasing oxidation and corrosion resistance of superalloy bodies while also increasing the ductility and improving the heat stability thereof comprising the steps of:
- (a) applying to the surface of a nickel and/or cobalt superalloy body a layer comprising a platinum-group metal;
- (b) heating the superalloy body to an elevated temperature in the presence of a silicon vapor phase to form, diffuse and integrate a platinum-group metal silicide into the surface of the metal superalloy to improve the adherence or bond between the platinum-group metal layer and the superalloy body;
- (c) diffusion coating the silicided superalloy body with vapors of a diffusion powder composition containing sources of aluminum or aluminum-and-chromium metals, in a hydrogen or an inert gas atmosphere at an elevated temperature for a sufficient period of time to diffuse aluminum or aluminum-and-chromium into the surface of the metal superalloy body; and
- (d) heating the superalloy body to form thereon a ductile protective coating having oxidation resistance and corrosion resistance, comprising a ductile outer zone of an aluminide of said platinum-group metal and an inner stabilizing zone of silicided platinum-group metal comprising from3% to20% by weight of silicon.
- 2. Process according to claim 1 in which said platinum-group metal comprises palladium.
- 3. Process according to claim 1 in which said diffusion powder composition comprises a mixture of Co.sub.2 Al.sub.9 powder and chromium metal powder.
- 4. Process according to claim 3 in which said diffusion powder composition contains from about 1% to 15% by weight of Co.sub.2 Al.sub.9 powder and from about 2% to 6% by weight of chromium metal powder.
- 5. Process according to claim 1 in which step (a) comprises electroplating the surface of the superalloy body with a layer of said platinum-group metal having a thickness up to about 12 microns.
- 6. Process according to claim 1 in which the heating in step (b) is conducted at a temperature between 1750.degree. F. and 1950.degree. F.
- 7. Process according to claim 1 in which step (c) is conducted at a temperature between 1850.degree. F. and 1950.degree. F.
- 8. Process according to claim 1 in which step (d) is conducted at a temperature between 1925.degree. F. and 2050.degree. F.
- 9. Process according to claim 1 in which the silicided platinum-group metal aluminide of step (b) has solutioned therein from 3% to 6% by weight of chromium.
- 10. Process according to claim 1 in which said silicided platinum-group metal aluminide is present within a beta phase nickel aluminide matrix.
- 11. Process for increasing oxidation and corrosion resistance of superalloy bodies while also increasing the ductility and improving the heat stability thereof comprising the steps of:
- (a) applying to the surface of a nickel and/or cobalt superalloy body a layer comprising palladium;
- (b) heating the superalloy body in the presence of a silicon vapor phase to form, diffuse and integrate palladium silicide into the surface of the metal superalloy to improve the adherence or bond between the palladium layer and the superalloy body;
- (c) diffusion coating the silicided superalloy body with vapors of a diffusion powder composition containing sources of aluminum or aluminum-and-chromium metals, in a hydrogen or an inert gas atmosphere at an elevated temperature for a sufficient period of time to diffuse aluminum or aluminum-and-chromium into the surface of the metal superalloy body, and
- (d) heating the superalloy body to form thereon a ductile protective coating having oxidation resistance and corrosion resistance, comprising a ductile outer zone of palladium aluminide and an inner stabilizing zone of silicided palladium comprising from 3% to 20% by weight of silicon.
Parent Case Info
This is a continuation of application Ser. No. 08/155,617 filed on Nov. 19, 1993, now abandoned.
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Continuations (1)
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Number |
Date |
Country |
Parent |
155617 |
Nov 1993 |
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