Claims
- 1. A process for coating a superabrasive with a metal comprising the steps of:
(a) heating to a superambient temperature in an inert atmosphere the superabrasive and a coat-forming powder comprising a metal compound thermally reducible by the superabrasive, (b) maintaining the material and superabrasive at the superambient temperature for a duration effective to reduce the metal, thereby forming a metalized superabrasive having a metal layer chemically bonded on at least a portion of the surface of the superabrasive, and (c) separating the coat-forming powder from the metalized superabrasive.
- 2. A metal coating process comprising the steps of
(a) providing at least one superabrasive particle and a coat-forming powder of a compound comprising a metal which is thermally reducible from the compound, (b) placing the superabrasive particle and the coat-forming powder together in an inert atmosphere, (c) exposing the superabrasive and coat-forming powder to a reaction temperature in the range from at least about 500° C. to below the temperature of superabrasive degradation for a duration effective to deposit and chemically bond a layer of metal onto at least a portion of the surface of the superabrasive particle, (d) cooling the superabrasive particle and coat-forming powder to a temperature below the reaction temperature, and (e) separating the mixture to obtain a product fraction of metal coated superabrasive particles substantially free of coat-forming powder and a byproduct fraction of coat-forming powder substantially free of metal coated superabrasive particles.
- 3. The metal coating process of claim 2 which comprises placing a plurality of superabrasive particles of size range from about 0.1 micrometers to at most about 5 mm together with a the coat-forming powder having an aggregate amount of the metal greater than the stoichiometric quantity effective to produce a predetermined thickness of metal coating on the superabrasive particles of at least about 100 nm.
- 4. The metal coating process of claim 3 in which the size of the superabrasive particles is in the range of about 300-600 micrometers and the weight of the coat-forming powder present is about 1.5 times the weight of the superabrasive particles.
- 5. The metal coating process of claim 2 in which the layer of metal bonded to the surface of the superabrasive is a continuous layer.
- 6. The metal coating process of claim 2 in which the exposing step takes place while the mixture is present in a quiescent bed having a depth of at most about 20 times the average superabrasive particle size.
- 7. The metal coating process of claim 2 in which the inert atmosphere comprises a vacuum of absolute pressure less than about 3 Pa.
- 8. The metal coating process of claim 2 in which the inert atmosphere comprises an inert gas selected from the group consisting of nitrogen, helium, neon, argon, krypton, xenon and a mixture thereof.
- 9. The metal coating process of claim 2 in which the superabrasive particle is a sheet of diamond having a characteristic dimension greater than about 5 mm.
- 10. The metal coating process of claim 9 in which the superabrasive particle comprises a diamond film made by chemical vapor deposition.
- 11. The metal coating process of claim 9 further comprising masking at least a portion of the surface of the superabrasive particle with a barrier material prior to the exposing step.
- 12. The metal coating process of claim 9 in which at least one superabrasive particle is a flat diamond sheet having a thickness less than about 1 mm.
- 13. The metal coating process of claim 2 which further comprises before separating the product fraction and the byproduct fraction, the steps of replacing the inert atmosphere with hydrogen gas and maintaining the superabrasive particles in the hydrogen gas atmosphere at an oxidation removal temperature of about 700 -800° C. for at least about 30 minutes.
- 14. The metal coating process of claim 2 in which the superabrasive particle and coat-forming powder are exposed to reaction temperature in absence of reducing agent other than the superabrasive.
- 15. The process for coating a superabrasive of claim 1, wherein the coat-forming powder is selected from the group consisting of oxides of tungsten, vanadium, tantalum and molybdenum and combinations thereof.
- 16. The metal coating process of claim 2, wherein the coat-forming powder is selected from the group consisting of oxides of tungsten, vanadium, tantalum and molybdenum and combinations thereof.
- 17. A metal coated superabrasive particle produced by a process comprising the steps of
(a) providing at least one superabrasive particle and a coat-forming powder of a compound comprising a metal which is thermally reducible from the compound, selected from the group consisting of oxides of tungsten, vanadium, tantalum and molybdenum and combinations thereof, (b) placing the superabrasive particle and the coat-forming powder together in an inert atmosphere, (c) exposing the superabrasive and coat-forming powder to a reaction temperature in the range from at least about 500° C. to below the temperature of superabrasive degradation for a duration effective to deposit and chemically bond a continuous layer of metal onto at least a portion of the surface of the superabrasive particle, (d) cooling the superabrasive particle and coat-forming powder to a temperature below the reaction temperature, and (e) separating the mixture to obtain a product fraction of metal coated superabrasive particles substantially free of coat-forming powder and a byproduct fraction of coat-forming powder substantially free of metal coated superabrasive particles.
- 18. A process for making an abrasive tool comprising the steps of
(I) providing a metal core, (II) providing a metal coated superabrasive particle produced by
(a) providing at least one superabrasive particle and a coat-forming powder of a compound comprising a metal which is thermally reducible from the compound, (b) placing the superabrasive particle and the coat-forming powder together in an inert atmosphere, (c) exposing the superabrasive and coat-forming powder to a reaction temperature in the range from at least about 500° C. to below the temperature of superabrasive degradation for a duration effective to deposit and chemically bond a continuous layer of metal onto at least a portion of the surface of the superabrasive particle, (d) cooling the superabrasive particle and coat-forming powder to a temperature below the reaction temperature, and (e) separating the mixture to obtain a product fraction of metal coated superabrasive particles substantially free of coat-forming powder and a byproduct fraction of coat-forming powder substantially free of metal coated superabrasive particles. (III) brazing the metal coated superabrasive particle to the metal core.
- 19. The process of claim 18, wherein the coat-forming powder is selected from the group consisting of oxides of tungsten, vanadium, tantalum and molybdenum and combinations thereof.
- 20. An abrasive tool having a metal core the tool being formed by bonding metal coated superabrasive particles in a powdered metal matrix composite and attaching the composite to the core wherein the metal coated superabrasive particle is produced by a process comprising the steps of
(a) providing at least one superabrasive particle and a coat-forming powder of a compound comprising a metal which is thermally reducible from the compound, (b) placing the superabrasive particle and the coat-forming powder together in an inert atmosphere, (c) exposing the superabrasive and coat-forming powder to a reaction temperature in the range from at least about 500° C. to below the temperature of superabrasive degradation for a duration effective to deposit and chemically bond a continuous layer of metal onto at least a portion of the surface of the superabrasive particle, (d) cooling the superabrasive particle and coat-forming powder to a temperature below the reaction temperature, and (e) separating the mixture to obtain a product fraction of metal coated superabrasive particles substantially free of coat-forming powder and a byproduct fraction of coat-forming powder substantially free of metal coated superabrasive particles.
- 21. The abrasive tool of claim 20, wherein the coat-forming powder is selected from the group consisting of oxides of vanadium, tantalum and molybdenum and combinations thereof.
- 22. The abrasive tool of claim 20 in which the metal coated superabrasive particle is an at least partially metal coated diamond film which is brazed to the metal core at a temperature of about 850-1100° C.
- 23. A metalized article comprising a structural diamond part coated with a metal by a process comprising the steps of:
(a) heating to a superambient temperature in an inert atmosphere the diamond and a coat-forming powder comprising an oxide of the metal, (b) maintaining the powder and diamond at the superambient temperature for a duration effective to reduce the oxide, thereby forming a metalized article having a metal layer chemically bonded on at least a portion of the surface of the diamond, and (c) separating the powder from the metalized article.
- 24. The metalized article of claim 23 wherein the coat-forming powder is selected from the group consisting of tungsten, vanadium, tantalum and molybdenum and combinations thereof,
- 25. A metal coated superabrasive particle produced by a process comprising the steps of
(a) providing at least one superabrasive particle and a coat-forming powder of a compound comprising a metal which is thermally reducible from the compound, (b) placing the superabrasive particle and the coat-forming powder together in an inert atmosphere, (c) exposing the superabrasive and coat-forming powder to a reaction temperature in the range from at least about 700° C. to about 1075° C. for a duration effective to deposit and chemically bond a continuous layer of metal onto at least a portion of the surface of the superabrasive particle, (d) cooling the superabrasive particle and coat-forming powder to a temperature below the reaction temperature, and (e) separating the mixture to obtain a product fraction of metal coated superabrasive particles substantially free of coat-forming powder and a byproduct fraction of coat-forming powder substantially free of metal coated superabrasive particles.
- 26. The metal coated superabrasive particle of claim 25, wherein the coat forming powder is an oxide of a metal selected from the group consisting of tungsten, vanadium, tantalum and molybdenum and combinations thereof.
- 27. An abrasive tool having a metal core the tool being formed by bonding metal coated superabrasive particles in a powdered metal matrix composite and attaching the composite to the core wherein the metal coated superabrasive particle is produced by a process comprising the steps of
(a) providing at least one superabrasive particle and a coat-forming powder of a compound comprising a metal which is thermally reducible from the compound, (b) placing the superabrasive particle and the coat-forming powder together in an inert atmosphere, (c) exposing the superabrasive and coat-forming powder to a reaction temperature in the range from at least about 700° C. to about 1075° C. for a duration effective to deposit and chemically bond a continuous layer of metal onto at least a portion of the surface of the superabrasive particle, (d) cooling the superabrasive particle and coat-forming powder to a temperature below the reaction temperature, and (e) separating the mixture to obtain a product fraction of metal coated superabrasive particles substantially free of coat-forming powder and a byproduct fraction of coat-forming powder substantially free of metal coated superabrasive particles.
- 28. The abrasive tool of claim 27, wherein the coat-forming powder is an oxide selected from the group consisting of tungsten, vanadium, tantalum and molybdenum and combinations thereof.
FIELD OF THE INVENTION
[0001] This invention relates to a process for coating superabrasive particles with a metal. More specifically it relates to a process for producing diamond abrasive pieces coated with a thin layer of metal chemically bonded to the underlying abrasive which coated pieces are particularly useful for making metal bonded superabrasive grinding and cutting tools or metalized diamond articles. This application is a continuation-in-part of U.S. Ser. No. 09/609,453, filed Jun. 30, 2000.
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
09609453 |
Jun 2000 |
US |
Child |
09873172 |
Jun 2001 |
US |