Claims
- 1. Rare earth-transition metal-boron alloy powder, comprising a core comprising said alloy, an inner nitride layer on the core and an outer substantially carbon layer on the inner layer.
- 2. The powder of claim 1 wherein the substantially carbon layer comprises graphite.
- 3. Rare earth-transition metal-boron alloy powder, comprising a core comprising said alloy, an inner layer comprising boron nitride, an outer substantially carbon layer and an intermediate layer enriched in rare earth, transition metal and oxygen between the inner an outer layers.
- 4. The powder of claim 3 wherein the substantially carbon layer comprises graphite.
- 5. The powder of claim 3 wherein the inner layer has a thickness of up to about 500 angstroms.
- 6. The powder of claim 5 wherein the outer layer has a thickness of at least about 1 monolayer.
- 7. The powder of claim 1 wherein the outer layer comprises a graphitic carbon layer.
- 8. The powder of claim 3 wherein the inner layer and the intermediate layer together have a thickness of up to about 500 angstroms.
- 9. The powder of claim 1 that comprises rare earth-iron-boron alloy where the rare earth is selected from the group consisting of Nd, Pr, La, Tb, Dy, Sm, Ho, Ce, Eu, Gd, Er, Tm, Yb, Lu, Y, and/or Sc.
- 10. Rare earth-tranistion metal alloy powder, said powder comprising atomized, generally spherical particulate comprising a core comprising said alloy and a surface reaction product layer on the core formed by reaction between at least one reactive alloy component and a gas reactive therewith when said particulate is in the as-atomized condition and at least partially solidified exteriorily, said layer comprising a refractory compound of the rare earth not exceeding about 500 angstroms in thickness, and a substantially carbon layer disposed on said layer.
- 11. The powder of claim 10 wherein the refractory compound comprises a nitride of the rare earth.
- 12. The powder of claim 10 wherein the substantially carbon layer is graphite.
Parent Case Info
This application is a continuation of U.S. Ser. No. 08/328,163, filed Oct. 24, 1994, now abandoned, which is a division of Ser. No. 07/926,151, filed Aug. 5, 1992, now U.S. Pat. No. 5,372,629 which is a continuation of Ser. No. 07/594,088, filed Oct. 9, 1990, now abandoned.
CONTRACTUAL ORIGIN OF REFERENCE AND GRANT REFERENCE
The United States Government has rights in this invention pursuant to the Contract No. W-7405-ENG-82 between the U.S. Department of Energy and Iowa State University, Ames, Iowa, which contract grants to Iowa State University Research Foundation, Inc. the right to apply for this patent. The research leading to the invention was supported in part by U.S. Department of Commerce Grant ITA 87-02.
US Referenced Citations (21)
Foreign Referenced Citations (3)
Number |
Date |
Country |
63-100108 |
May 1988 |
JPX |
63-109101 |
May 1988 |
JPX |
63-211706 |
Sep 1988 |
JPX |
Non-Patent Literature Citations (6)
Entry |
Fluid Flow Effects In Gas Automization Processing, 1989; I.E. Anderson, et al. International Symposium on the Physical Chemistry of Powder Metal Production and Processing. |
Observations Of Gas Automization Process Dynamics MPIF-AMPI, 1988; I.E. Anderson, et al. Modern Development in Powder Metallurgy, MPIF-APMI vol. 20, p. 205. |
Narasimhan, iron-based rare-earth magnets, 1985 (Apr.) pp. 4081-4085. |
Ultrasonic Gas Automization, MPR, Apr., 1986 pp. 255-260. |
R.S. Figliola et al, Flow Measurements in Gas Automation Processes, 1989. pp. 39-47. |
Rapid Solidification of a Modified 7075 Aluminum Alloy by Ultrasonic Gas Automization, V. Anand, et al, 1981. pp. 274-286. |
Divisions (1)
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926151 |
Aug 1992 |
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Continuations (2)
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328163 |
Oct 1994 |
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Parent |
594088 |
Oct 1990 |
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