Claims
- 1. A material comprising:
hard particles having a first material; and a binder matrix having a second, different material, a volume of said second material being from about 3% to about 40% of a total volume of the material, said binder matrix comprising rhenium in an amount greater than 25% of a total weight of the material, wherein said hard particles are spatially dispersed in said binder matrix in a substantially uniform manner.
- 2. The material as in claim 1, wherein said first material includes a carbide comprising tungsten.
- 3. The material as in claim 2, wherein said carbide comprises mono tungsten carbide (WC).
- 4. The material as in claim 2, wherein said first material further includes another carbide having a metal element different from tungsten.
- 5. The material as in claim 4, wherein said metal element is titanium (Ti).
- 6. The material as in claim 4, wherein said metal element is tantalum (Ta).
- 7. The material as in claim 4, wherein said metal element is niobium (Nb).
- 8. The material as in claim 4, wherein said metal element is vanadium (V).
- 9. The material as in claim 4, wherein said metal element is chromium (Cr).
- 10. The material as in claim 4, wherein said metal element is hafnium (Hf).
- 11. The material as in claim 4, wherein said metal element is molybdenum (Mo).
- 12. The material as in claim 2, wherein said first material further includes a nitride.
- 13. The material as in claim 12, wherein said nitride includes TiN or HfN.
- 14. The material as in claim 1, wherein said first material further includes a nitride.
- 15. The material as in claim 14, wherein said nitride includes TiN or HfN.
- 16. The material as in claim 1, wherein said binder matrix further includes cobalt (Co).
- 17. The material as in claim 1, wherein said binder matrix further includes nickel (Ni).
- 18. The material as in claim 1, wherein said binder matrix further includes molybdenum (Mo).
- 19. The material as in claim 1, wherein said binder matrix further includes iron (Fe).
- 20. The material as in claim 1, wherein said binder matrix further includes chromium (Cr).
- 21. The material as in claim 1, wherein said binder material further includes a Ni-based supperalloy.
- 22. The material as in claim 21, wherein said binder material further includes cobalt.
- 23. A material comprising:
hard particles having a first material having a mixture selected from at least one from a group consisting of (1) a mixture of WC, TiC, and TaC, (2) a mixture of WC, TiC, and NbC, (3) a mixture of WC, TiC, and at least one of TaC and NbC, and (4) a mixture of WC, TiC, and at least one of HfC and NbC; and a binder matrix having a second, different material, a volume of said binder matrix being from about 3% to about 40% of a total volume of the material, said binder matrix comprising rhenium, wherein said hard particles are spatially dispersed in said binder matrix in a substantially uniform manner.
- 24. The material as in claim 23, where said binder matrix further includes a Ni-based supperalloy.
- 25. A material comprising:
hard particles having a first material having a mixture of Mo2C and TiC; and a binder matrix having a second, different material, a volume of said binder matrix being from about 3% to about 40% of a total volume of the material, said binder matrix comprising rhenium, wherein said hard particles are spatially dispersed in said binder matrix in a substantially uniform manner.
- 26. The material as in claim 25, wherein said first material further includes TiN.
- 27. The material as in claim 25, where said binder matrix further includes a Ni-based supperalloy.
- 28. A method comprising:
forming a grade power by mixing a powder of hard particles with a binder matrix material comprising rhenium; processing the grade powder to use the binder matrix material to bind the hard particles to produce a solid hardmetal material, wherein the processing includes (1) sintering the grade powder in a solid phase under a vacuum condition, and (2) sintering the grade power in a solid phase under a pressure in an inert gas medium.
- 29. The method as in claim 28, wherein the binder matrix material further includes a Ni-based superalloy.
- 30. The method as in claim 29, wherein the binder matrix material further includes cobalt.
- 31. The method as in claim 28, wherein the binder matrix material further includes cobalt.
- 32. The method as in claim 28, wherein each sintering is performed a temperature below an eutectic temperature of the hard particles and the binder matrix material.
- 33. A material comprising:
hard particles having a first material; and a binder matrix having a second, different material comprising a nickel-based supperalloy, wherein said hard particles are spatially dispersed in said binder matrix in a substantially uniform manner.
- 34. The material as in claim 33, wherein said first material includes a carbide comprising tungsten.
- 35. The material as in claim 34, wherein said carbide comprises mono tungsten carbide (WC).
- 36. The material as in claim 34, wherein said first material further includes another carbide having a metal element different from tungsten.
- 37. The material as in claim 36, wherein said metal element is titanium (Ti).
- 38. The material as in claim 36, wherein said metal element is tantalum (Ta).
- 39. The material as in claim 36, wherein said metal element is niobium (Nb).
- 40. The material as in claim 36, wherein said metal element is vanadium (V).
- 41. The material as in claim 36, wherein said metal element is chromium (Cr).
- 42. The material as in claim 36, wherein said metal element is hafnium (Hf).
- 43. The material as in claim 36, wherein said metal element is molybdenum (Mo).
- 44. The material as in claim 34, wherein said first material further includes a nitride.
- 45. The material as in claim 44, wherein said nitride includes TiN.
- 46. The material as in claim 44, wherein said nitride includes HfN.
- 47. The material as in claim 33, wherein said first material further includes a nitride.
- 48. The material as in claim 47, wherein said nitride includes at least one of TiN and HfN.
- 49. The material as in claim 33, wherein said nickel-based supperalloy comprises primarily nickel and also comprises other elements.
- 50. The material as in claim 49, wherein said other elements include Co, Cr, Al, Ti, Mo, Nb, W, and Zr.
- 51. The material as in claim 33, wherein said binder matrix further comprises a second, different nickel-based supperalloy.
- 52. The material as in claim 51, wherein said binder matrix further comprises rhenium.
- 53. The material as in claim 52, wherein said binder matrix further comprises cobalt.
- 54. The material as in claim 33, wherein said binder matrix further comprises rhenium.
- 55. The material as in claim 54, wherein said binder matrix further comprises cobalt.
- 56. The material as in claim 33, wherein said binder matrix further comprises cobalt.
- 57. The material as in claim 33, wherein said binder matrix further comprises nickel.
- 58. The material as in claim 33, wherein said binder matrix further comprises iron.
- 59. The material as in claim 33, wherein said binder matrix further comprises molybdenum.
- 60. The material as in claim 33, wherein said binder matrix further comprises chromium.
- 61. The material as in claim 33, wherein said binder matrix further comprises another alloy that is not a nickel-based alloy.
- 62. A material, comprising:
hard particles having a first material comprising TiC and TiN; and a binder matrix having a second, different material comprising at least one of Ni, Mo, and MO2C, wherein said hard particles are spatially dispersed in said binder matrix in a substantially uniform manner.
- 63. The material as in claim 62, wherein said binder matrix further includes Re.
- 64. The material as in claim 63, wherein said binder matrix further includes Co.
- 65. The material as in claim 64, wherein said binder matrix further includes a Ni-based supperalloy.
- 66. The material as in claim 63, wherein said binder matrix further includes a Ni-based supperalloy.
- 67. The material as in claim 62, wherein said binder matrix further includes a Ni-based supperalloy.
- 68. A method comprising:
forming a grade powder by mixing a powder of hard particles with a binder matrix material comprising a nickel-based supperalloy; processing the grade powder to produce a solid hardmetal material by using the binder matrix material to bind the hard particles.
- 69. The method as in claim 68, wherein said processing includes sequentially performing a pressing operation, a first sintering operation, a shaping operation, and a second sintering operation.
- 70. The method as in claim 68, further comprising: prior to the mixing, preparing the binder matrix material to further include rhenium.
- 71. The method as in claim 68, further comprising: prior to the mixing, preparing the binder matrix material to further include cobalt.
- 72. The method as in claim 68, wherein the processing includes a solid phase sintering in a hot isostatic pressing process.
- 73. The method as in claim 68, wherein the processing includes (1) sintering the grade powder in a solid phase under a vacuum condition, and (2) sintering the grade power in a solid phase under a pressure in an inert gas medium.
- 74. The method as in claim 68, further comprising: prior to the mixing, preparing the hard particles with a particle dimension less than 0.5 micron to reduce a temperature of the sintering operations.
- 75. A device, comprising a wear part that removes material from an object, said wear part having a material which comprises:
hard particles having a first material; and a binder matrix having a second, different material comprising rhenium and a Ni-based supper alloy, wherein said hard particles are spatially dispersed in said binder matrix in a substantially uniform manner.
- 76. The device as in claim 75, wherein said binder matrix further includes a cobalt.
- 77. A device, comprising a wear part having a material which comprises:
hard particles having a first material; and a binder matrix of a second, different material comprising a nickel-based supperalloy, wherein said hard particles are spatially dispersed in said binder matrix in a substantially uniform manner.
- 78. A material comprising:
hard particles having a first material selected from at least one from a group consisting of (1) a solid solution of WC, TiC, and TaC, (2) a solid solution of WC, TiC, and NbC, (3) a solid solution of WC, TiC, and at least one of TaC and NbC, and (4) a solid solution of WC, TiC, and at least one of HfC and NbC; and a binder matrix having a second, different material, a volume of said binder matrix being from about 3% to about 40% of a total volume of the material, said binder matrix comprising rhenium, wherein said hard particles are spatially dispersed in said binder matrix in a substantially uniform manner.
- 79. The material as in claim 78, wherein the hard particles comprise a solid solution of WC, TiC, and TaC, the binder matrix is formed of pure Re.
- 80. The material as in claim 79, wherein the solid solution is about 72% of the material and the Re is about 28% of the total weight of the material.
- 81. The material as in claim 79, wherein the solid solution is about 85% of the material and the Re is about 15% of the total weight of the material.
- 83. The material as in claim 79, wherein TiC and TaC are approximately equal in quantity and have a total quantity less than a quantity of the WC.
- 84. The material as in claim 78, wherein the hard particles comprise a solid solution of WC, TiC, and TaC, the binder matrix comprise Re and a Ni-supperalloy.
- 85. The material as in claim 84, wherein each of TiC and Tac is from about 3% to less than about 6% in a total weight of the material, and WC is above 78% and below 89% in the total weight of the material.
- 86. The material as in claim 84, wherein the binder matrix further includes Co.
- 87. The material as in claim 84, wherein the Ni-based superalloy comprises mainly Ni and other elements including Co, Cr, Al, Ti, Mo, Nb, W, Zr, B, C, and V.
- 88. The material as in claim 78, wherein the binder matrix includes Re and a Ni-based supperalloy which includes Re.
- 89. The material as in claim 21, wherein said Ni-based supperalloy includes Re.
- 90. The material as in claim 24, wherein said Ni-based supperalloy includes Re.
- 91. The material as in claim 21, wherein said Ni-based supperalloy includes Re.
- 92. The material as in claim 33, wherein said Ni-based supperalloy includes Re.
- 93. The material as in claim 33, wherein said Ni-based supperalloy is in a γ-γ′ phase.
- 95. The material as in claim 50, wherein said other elements further includes Re.
Parent Case Info
[0001] This application claims benefits of two U.S. Provisional Applications, No. 60/439,838 entitled “Hardmetal Compositions with Novel Binder Compositions” and filed on Jan. 13, 2003, and No. 60/449,305 of the same title filed on Feb. 20, 2003. The disclosures of the above two provisional applications are incorporated herein in their entirety as part of this application.
Provisional Applications (2)
|
Number |
Date |
Country |
|
60439838 |
Jan 2003 |
US |
|
60449305 |
Feb 2003 |
US |