Claims
- 1. A process for producing a metal powder, comprising mechanically inducing a reduction reaction between a reducible metal compound of that metal and a metal hydride.
- 2. The process according to claim 1, wherein mechanically inducing the reaction comprises milling the reducible metal compound and the metal hydride.
- 3. The process according to claim 1, wherein the metal hydride is calcium hydride CaH2.
- 4. The process according to claim 1, wherein the metal hydride is magnesium hydride MgH2.
- 5. The process according to claim 1, wherein the metal compound contains a metal selected from the group consisting of scandium, ytterbium, lanthanum and the lanthanides, cerium, praseodymium, neodymium, lutetium, actinium and the actinides, thorium, palladium, uranium and the transuranics, titanium, zirconium, hafnium, vanadium, niobium and tantalum.
- 6. A process for producing a metal powder, comprising mechanically inducing a reduction reaction between a reducible metal compound of that metal, calcium hydride CaH2 and magnesium Mg.
- 7. The process according to claim 6, where in the metal compound contains a metal selected from the group consisting of scandium, yttrium, lanthanum and the lanthanides, cerium, praseodymium, neodymium, lutetium, actinium and the actinides, thorium, protactinium, uranium and the transuranics, titanium, zirconium, hafnium, vanadium, niobium and tantalum.
- 8. The process according to claim 6, wherein the mechanically inducing the reaction comprises milling the reducible metal compound, the calcium hydride CaH2 and the magnesium Mg.
- 9. A process for producing titanium hydride TiH2, comprising mechanically inducing the reduction of titanium chloride TiCl4 by calcium hydride CaH2.
- 10. The process according to claim 9, wherein the reaction is induced by milling titanium chloride TiCl4 and calcium hydride CaH2.
- 11. The process according to claim 9, further comprising dehydriding the titanium hydride TiH2.
- 12. A process for producing a titanium powder, comprising mechanically inducing the reaction TiC4+2CaH2→TiH2+2CaCl2+H2.
- 13. The process according to claim 12, wherein the reaction is induced by milling titanium chloride TiCl4 and calcium hydride CaH2.
- 14. The process according to claim 12, further comprising removing calcium chloride CaCl2 from the reaction products.
- 15. The process according to claim 14, further comprising leaching the reaction products to remove calcium chloride CaCl2.
- 16. The process according to claim 14, further comprising vacuum distilling the reaction products to remove calcium chloride CaCl2.
- 17. The process according to claim 12, further comprising dehydriding the titanium hydride TiH2.
- 18. The process according to claim 17, further comprising heating the titanium hydride TiH2 to about 600° C. for about five minutes under a dynamic vacuum of about 10−3 torr.
- 19. A process for producing a titanium alloy TiAlHx, comprising mechanically inducing the co-reduction of titanium chloride TiCl4 and aluminum chloride AlCl3 by calcium hydride CaH2.
- 20. The process according to claim 18, wherein the reaction is induced by milling titanium chloride TiCl4, aluminum chloride AlCl3 and calcium hydride CaH2.
- 21. The process according to claim 19, further comprising dehydriding the TiAlHx.
- 22. A process for producing a titanium alloy powder, comprising mechanically inducing the reaction 2TiCl4+2AlCl3+7CaH2→2TiAlHx+7CaCl2+(7−x)H2.
- 23. The process according to claim 22, wherein the reaction is induced by milling titanium chloride TiCl4, aluminum chloride AlCl3 and calcium hydride CaH2.
- 24. The process according to claim 23, further comprising removing calcium chloride CaCl2 from the reaction products.
- 25. The process according to claim 24, further comprising leaching the reaction products to remove calcium chloride CaCl2.
- 26. The process according to claim 24, further comprising vacuum distilling the reaction products to remove calcium chloride CaCl2.
- 27. The process according to claim 22, further comprising dehydriding the TiAlHx.
- 28. The process according to claim 27, further comprising heating the TiAlHx to about 600° C. for about five minutes under a dynamic vacuum of about 10−3 torr.
- 29. A process for producing a titanium alloy TiVHx, comprising mechanically inducing the co-reduction of titanium chloride TiCl4 and vanadium chloride VCl3 by calcium hydride CaH2.
- 30. The process according to claim 29, wherein the reaction is induced by milling titanium chloride TiCl4, vanadium chloride VCl3 and calcium hydride CaH2.
- 31. The process according to claim 29, further comprising dehydriding the TiVHx.
- 32. A process for producing a titanium alloy powder, comprising mechanically inducing the reaction 2TiCl4+2VCl3+7CaH2→2TiVHx+7CaCl2+(7−x)H2.
- 33. The process according to claim 32, wherein the reaction is induced by milling titanium chloride TiCl4, vanadium chloride VCl3 and calcium hydride CaH2.
- 34. The process according to claim 32, further comprising removing calcium chloride CaCl2 from the reaction products.
- 35. The process according to claim 34, further comprising leaching the reaction products to remove calcium chloride CaCl2.
- 36. The process according to claim 34, further comprising vacuum distilling the reaction products to remove calcium chloride CaCl2.
- 37. The process according to claim 32, further comprising dehydriding the TiVHx.
- 38. The process according to claim 37, further comprising heating the TiVHx to about 600° C. for about five minutes under a dynamic vacuum of about 10−3 torr.
- 39. A process for producing a titanium alloy Ti-6Al-4V, comprising mechanically inducing the co-reduction of titanium chloride TiCl4, aluminum chloride AlCl3 and vanadium chloride VCl3 by calcium hydride CaH2.
- 40. The process according to claim 39, wherein the reaction is induced by milling titanium chloride TiCl4, aluminum chloride AlCl3, vanadium chloride VCl3 and calcium hydride CaH2.
CROSS REFERENCE TO RELATED APPLICATIONS
This application claims subject matter disclosed in the co-pending provisional application Ser. No. 60/074,335 filed Feb. 6, 1998, which is incorporated herein in its entirety.
Government Interests
This invention was funded in part by the United States Department of Energy under Subcontract No. CCS-588176 under Subcontract No. LITCO-C95-175002 under Prime Contract No. DE-AC07-941D13223. The United States government has certain rights in the invention.
US Referenced Citations (5)
Foreign Referenced Citations (1)
Number |
Date |
Country |
9007012 |
Jun 1990 |
WO |
Provisional Applications (1)
|
Number |
Date |
Country |
|
60/074335 |
Feb 1998 |
US |