Claims
- 1. A superfine material, made by a method comprising
incorporating a grain growth inhibitor polymeric precursor into a composition for the synthesis of a superfine material or superfine intermediate material; synthesizing the superfine material from the composition having the incorporated precursor to produce a superfine material/precursor composite or a superfine intermediate material/precursor composite; and treating the composite to convert the precursor to a grain growth inhibitor.
- 2. The superfine material of claim 1, wherein
the grain growth inhibitor is boron nitride and the superfine material is WC/Co.
- 3. The superfine material of claim 2, wherein
the grain growth inhibitor polymer precursor is synthesized by treating a mixture of boric acid and urea in water with ammonia.
- 4. The superfine material of claim 1, wherein
synthesizing the superfine material/precursor composite or superfine intermediate material/composite is by aqueous solution reaction, inorganic solution reaction, inert gas condensation, chemical vapor deposition, mechanical alloying, or thermochemical conversion.
- 5. The superfine material of claim 4, wherein
synthesizing is by aqueous solution reaction comprising spray-drying or organic solution reaction comprising spray-drying to form a superfine material intermediate/precursor composite in the form of a powder.
- 6. The superfine material of claim 5, wherein
treating is by heat-treating the powder at a temperature less than the grain growth temperature of the superfine material, thereby partially or fully converting the grain growth inhibitor precursor to the grain growth inhibitor.
- 7. The superfine material of claim 7, further comprising
reducing, carburizing, or nitriding the superfine material intermediate/precursor composite to form the product superfine materials or to convert the grain growth inhibitor precursor to the grain growth inhibitor or a combination thereof.
- 8. The superfine material of claim 1, wherein
treating is by heat-treating the superfine material/precursor composite or the superfine intermediate material/precursor composite at a temperature less than the grain growth temperature of the superfine material or superfine intermediate material, thereby partially or fully converting the grain growth inhibitor precursor to the grain growth inhibitor.
- 9. The superfine material of claim 1, wherein
the superfine material is selected from the group consisting of a metals, metal alloys, metal carbides, metal nitrides, metal ceramics, ceramics, ceramic-ceramic composites, or intermetallics.
- 10. The superfine material of claim 1, wherein
the superfine material is selected from the group consisting of Cu, FeCu, FeCo, NiAl, MoC, MoSi, NiCr, TiC, Mo2Si, NiCr/Cr3C2, Fe/TiC, Ni/TiC, Mo/TiC, WC/Co, the forgoing alloyed with one or more of Ti, Cr, Mo, Ni, Zr, Ce, Fe, Al, Si, V, TiC, Mn, Y, W, and mixtures thereof.
- 11. The superfine material of claim 1, wherein
the superfine material is WC/Co, WC/Co alloyed with at least one of TiC, Mo, Cr, or a combination thereof
- 12. The superfine material of claim 1, wherein
the grain growth inhibitor is a metal, metal alloy, metal carbide, metal nitride, intermetallics, or ceramic.
- 13. The superfine material of claim 1, wherein
the grain growth inhibitor is selected from the group consisting of B, Si, Al, Cr, Ni, Mo, Hf, Ta, Fe, W, Zr, rare earth metals, Ce, La, Sm, the foregoing alloyed with Cr, TiC, Ti, and Mo or a combination thereof, silicon-based carbides, titanium-based carbides, aluminum-based nitrides, titanium-based nitrides, BN; metal silicides, AlSi, TiSi, metal aluminides, TiAl and titanium diboride.
- 14. The superfine material of claim 1, wherein
the grain growth inhibitor is an inorganic boron compound.
- 15. The superfine material of claim 1, wherein
the grain growth inhibitor is boron nitride.
- 16. A superfine material, made by a method comprising
incorporating a grain growth inhibitor polymeric precursor into an already-synthesized superfine intermediate material; and treating the intermediate material to convert the precursor to a grain growth inhibitor.
- 17. The superfine material of claim 16, wherein
the grain growth inhibitor is boron nitride and the obtained superfine material is WC/Co.
- 18. The superfine material of claim 17, wherein
the grain growth inhibitor precursor is synthesized by treating a mixture of boric acid and urea in water with ammonia.
- 19. The superfine material of claim 16, wherein
the superfine material is selected from the group consisting of a metal, metal alloy, metal carbide, metal nitride, metal ceramic, ceramic, ceramic-ceramic composite, or intermetallics.
- 20. The superfine material of claim 16, wherein
the superfine material is selected from the group consisting of Cu, FeCu, FeCo, NiAl, MoC, MoSi, NiCr, TiC, Mo2Si, NiCr/Cr3C2, Fe/TiC, Ni/TiC, Mo/TiC, WC/Co, the forgoing alloyed with one or more of Ti, Cr, Mo, Ni, Zr, Ce, Fe, Al, Si, V, TiC, Mn, Y, W, and mixtures thereof.
- 21. The superfine material of claim 16, wherein
the superfine material is WC/Co, WC/Co alloyed with at least one of TiC, Mo, Cr, or a combination thereof.
- 22. The superfine material of claim 16, wherein
the grain growth inhibitor is a metal, metal alloy, metal carbide, metal nitride, intermetallics, or ceramic.
- 23. The superfine material of claim 22, wherein the grain growth inhibitor is selected from the group consisting of B, Si, Al, Cr, Ni, Mo, Hf, Ta, Fe, W, Zr, rare earth metals, Ce, La, Sm, the foregoing alloyed with Cr, Ti, TiC, and Mo or a combination thereof, silicon-based carbides, titanium-based carbides, aluminum-based nitrides, titanium-based nitrides, BN; metal silicides, AlSi, TiSi, metal aluminides, TiAl and titanium diboride.
- 24. The superfine material of claim 23, wherein
the grain growth inhibitor is an inorganic boron compound.
- 25. The superfine material of claim 24, wherein
the grain growth inhibitor is boron nitride.
- 26. The superfine material of claim 16, wherein
incorporating is by physical mixing of a solution of the grain growth inhibitor precursor and the already-synthesized superfine intermediate material for a length of time effective for the grain growth inhibitor precursor to diffuse into the material.
- 27. The superfine material of claim 16, wherein
incorporating is by heating or melting the grain growth inhibitor precursor onto the already-synthesized superfine intermediate material for a length of time and at a temperature less than the grain growth temperature of the superfine material temperature but effective to promote diffusion of the grain growth inhibitor precursor into the already-synthesized superfine material.
- 28. The superfine material of claim 27, wherein
heating is at a temperature and for a length of time effective to convert the grain growth inhibitor precursor to the grain growth inhibitor simultaneous with diffusion, after diffusion, or a combination thereof.
- 29. The superfine material of claim 16, wherein
incorporating is by milling a solution of grain growth inhibitor precursor with the already-synthesized superfine intermediate material.
- 30. The superfine material of claim 16, further comprising
spray-drying a slurry of the incorporated grain growth inhibitor precursor and the already-synthesized superfine intermediate material prior to heat treating.
- 31. The superfine material of claim 16, wherein
heat treating is in a controlled gas environment at a temperature effective to decompose the grain growth inhibitor precursor to the grain growth inhibitor.
- 32. The superfine material of claim 16, wherein
the incorporating and the treating are performed at the same time by heat treatment for a length of time and a temperature effective to convert the grain growth inhibitor precursor into the grain growth inhibitor, and to result in the grain growth inhibitor being diffused substantially onto the grain boundaries of the as-synthesized superfine intermediate material precursor.
- 33. The superfine material of claim 32, wherein the
the grain growth inhibitor is boron nitride.
- 34. The superfine material of claim 32, wherein the
already-synthesized superfine material is WC/Co, and the grain growth inhibitor is boron nitride.
- 35. The superfine material of claim 1, further comprising
incorporating at least one alloying material into the composition for the synthesis of a superfine material.
- 36. The superfine material of claim 35, wherein
the superfine material is selected from the group consisting of metals, metal alloys, metal carbides, metal nitrides, metal ceramics, ceramics, ceramic-ceramic composites, or intermetallics; the grain growth inhibitor is selected from the group consisting of metal, metal alloys, metal carbides, metal nitrides, intermetallics, and ceramics.
- 37. The superfine material of claim 35, wherein
the superfine material is selected from the group consisting of Cu, FeCu, FeCo, NiAl, MoC, MoSi, NiCr, TiC, Mo2Si, NiCr/Cr3C2, Fe/TiC, Ni/TiC, Mo/TiC, WC/Co, the forgoing alloyed with one or more of Ti, Cr, Mo, Ni, Zr, Ce, Fe, Al, Si, V, TiC, Mn, Y, W, and mixtures thereof; the grain growth inhibitor is selected from the group consisting of B, Si, Al, Cr, Ni, Mo, Hf, Ta, Fe, W, Zr, rare earth metals, Ce, La, Sm, the foregoing alloyed with Cr, Ti, TiC, and Mo or a combination thereof, silicon-based carbides, titanium-based carbides, aluminum-based nitrides, titanium-based nitrides, BN; metal silicides, AlSi, TiSi, metal aluminides, TiAl and titanium diboride; and the at least one alloying additive is selected from the group consisting of Ti, Cr, Mo, N, Zr, Ce, Fe, Al, Si, V, TiC, Mn, Y, W, alloys of the foregoing, nitrides of the foregoing, and intermetallics of the foregoing.
- 38. The superfine material of claim 35, wherein
the superfine material is WC/Co, the grain growth inhibitor is BN, and the alloying additive is Cr, TiC, and Mo.
- 39. The superfine material of claim 16, further comprising
incorporating an alloying material into the already-synthesized superfine intermediate material.
- 40. A superfine material, made by a method comprising
incorporating a grain growth inhibitor polymeric precursor into a composition for the synthesis of a nanostructured material or nanostructured intermediate material; synthesizing the superfine material from the composition having the incorporated precursor to produce a nanostructured material/precursor composite or a nanostructured intermediate material/precursor composite; treating the composite to convert the precursor to a grain growth inhibitor; and treating the nanostructured material or intermediate material to produce a superfine material or intermediate material.
- 41. A superfine material, made by a method comprising
incorporating a grain growth inhibitor polymeric precursor into an already-synthesized nanostructured material or nanostructured intermediate material; treating the nanostructured material or intermediate material to convert the precursor to a grain growth inhibitor; and treating the nanostructured material or intermediate material to produce a superfine material or intermediate material.
- 42. A method of incorporating a grain growth inhibitor into a superfine material, comprising
incorporating a grain growth inhibitor polymeric precursor, synthesized by treating a mixture of boric acid and urea in water with ammonia, into an already-synthesized superfine material; and treating the superfine material or intermediate material to convert the precursor to a grain growth inhibitor.
- 43. The superfine material of claim 42, wherein
the superfine material is selected from the group consisting of a metal, metal alloy, metal carbide, metal nitride, metal ceramic, ceramic, ceramic-ceramic composite, or intermetallics.
- 44. The superfine material of claim 42, wherein
the superfine material is selected from the group consisting of Cu, FeCu, FeCo, NiAl, MoC, MoSi, NiCr, TiC, Mo2Si, NiCr/Cr3C2, Fe/TiC, Ni/TiC, Mo/TiC, WC/Co, the forgoing alloyed with one or more of Ti, Cr, Mo, Ni, Zr, Ce, Fe, Al, Si, V, TiC, Mn, Y, W, and mixtures thereof.
- 45. The superfine material of claim 42, wherein
the superfine material is WC/Co, WC/Co alloyed with at least one of TiC, Mo, Cr, or a combination thereof.
- 46. The superfine material of claim 42, wherein
incorporating is by physical mixing of a solution of the grain growth inhibitor precursor and the already-synthesized superfine material for a length of time effective for the grain growth inhibitor precursor to diffuse into the material.
- 47. The superfine material of claim 42, wherein
incorporating is by heating or melting the grain growth inhibitor precursor onto the already-synthesized superfine material for a length of time and at a temperature less than the grain growth temperature of the superfine material temperature but effective to promote diffusion of the grain growth inhibitor precursor into the already-synthesized superfine material.
- 48. The superfine material of claim 47, wherein
heating is at a temperature and for a length of time effective to convert the grain growth inhibitor precursor to the grain growth inhibitor simultaneous with diffusion, after diffusion, or a combination thereof.
- 49. The superfine material of claim 42, wherein
incorporating is by milling a solution of grain growth inhibitor precursor with the already-synthesized superfine material.
- 50. The superfine material of claim 42, further comprising
spray-drying a slurry of the incorporated grain growth inhibitor precursor and the already-synthesized superfine material prior to treating.
- 51. The superfine material of claim 42, wherein
treating is heat treating is in a controlled gas environment at a temperature effective to decompose the grain growth inhibitor precursor to the grain growth inhibitor.
- 52. The superfine material of claim 42, wherein
the incorporating and the treating are performed at the same time by heat treatment for a length of time and a temperature effective to convert the grain growth inhibitor precursor into the grain growth inhibitor, and to result in the grain growth inhibitor being diffused substantially onto the grain boundaries of the as-synthesized superfine material.
- 53. The superfine material of claim 42, further comprising
incorporating an alloying material into the already-synthesized superfine material or superfine intermediate material.
- 54. The superfine material of claim 53, wherein
the superfine material is selected from the group consisting of metals, metal alloys, metal carbides, metal nitrides, metal ceramics, ceramics, ceramic-ceramic composites, or intermetallics.
- 55. The superfine material of claim 53, wherein
the superfine material is selected from the group consisting of Cu, FeCu, FeCo, NiAl, MoC, MoSi, NiCr, TiC, Mo2Si, NiCr/Cr3C2, Fe/TiC, Ni/TiC, Mo/TiC, WC/Co, the forgoing alloyed with one or more of Ti, Cr, Mo, Ni, Zr, Ce, Fe, Al, Si, V, TiC, Mn, Y, W, and mixtures thereof; and the at least one alloying additive is selected from the group consisting of Ti, Cr, Mo, N, Zr, Ce, Fe, Al, Si, V, TiC, Mn, Y, W, alloys of the foregoing, nitrides of the foregoing, and intermetallics of the foregoing.
- 56. The superfine material of claim 53, wherein
the superfine material is WC/Co, and the alloying additive is at least one of Cr, TiC, and Mo.
- 57. A superfine material comprising
an inorganic boron compound as a grain growth inhibitor, wherein the superfine material is selected from the group consisting of metal nitrides, metal ceramics, ceramics, ceramic-ceramic composites, intermetallics, Cu, FeCu, FeCo, NiAl, MoC, MoSi, NiCr, TiC, Mo2Si, NiCr/Cr3C2, Fe/TiC, Ni/TiC, Mo/TiC, WC/Co, the forgoing alloyed with one or more of Ti, Cr, Mo, Ni, Zr, Ce, Fe, Al, Si, V, TiC, Mn, Y, W, and mixtures thereof.
- 58. The material of claim 57, wherein
the superfine material is WC/Co, the grain growth inhibitor is BN, and the alloying additive is at least one of Cr, TiC, and Mo.
- 59. A superfine material comprising
boron nitride as a grain growth inhibitor, wherein the superfine material is selected from the group consisting of metal nitrides, metal ceramics, ceramics, ceramic-ceramic composites, intermetallics, Cu, FeCu, FeCo, NiAl, MoC, MoSi, NiCr, TiC, Mo2Si, NiCr/Cr3C2, Fe/TiC, Ni/TiC, Mo/TiC, WC/Co, the forgoing alloyed with one or more of Ti, Cr, Mo, Ni, Zr, Ce, Fe, Al, Si, V, TiC, Mn, Y, W, and mixtures thereof.
- 60. The material of claim 59, wherein
the superfine material is WC/Co, the grain growth inhibitor is BN, and the alloying additive is at least one of Cr, TiC, and Mo.
- 61. A superfine alloy comprising
one of Cu, FeCu, FeCo, NiAl, MoC, MoSi, NiCr, TiC, Mo2Si, NiCr/Cr3C2, Fe/TiC, Ni/TiC, Mo/TiC, WC/Co alloyed with one or more of Ti, Cr, Mo, Ni, Zr, Ce, Fe, Al, Si, V, TiC, Mn, Y, and W.
- 62. A superfine alloy comprising
WC/Co alloyed with at least one of Cr, TiC, and Mo.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application is a divisional application of U.S. Ser. No. 09/138,137, filed Aug. 21, 1998, which claims priority to provisional U.S. patent application Ser. No. 60/057,339, filed Aug. 22, 1997, which is incorporated herein by reference in its entirety.
Provisional Applications (1)
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Number |
Date |
Country |
|
60057339 |
Aug 1997 |
US |
Divisions (1)
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Number |
Date |
Country |
Parent |
09138137 |
Aug 1998 |
US |
Child |
09846404 |
May 2001 |
US |