Claims
- 1. A method for atomizing a titanium-based material to particulates in a controlled atmosphere, said method comprising the steps of:
- skull melting a titanium-based material in a crucible;
- transferring the molten titanium-based material from said crucible to a heated tundish having means for heating thereof;
- forming the molten titanium-based material into a free-falling stream by flowing said titanium-based material through a nozzle disposed in a bottom portion of said heated tundish;
- using said heating means to heat said heated tundish to a temperature at which solidification of the molten titanium-based material in the nozzle is prevented but at which formation of a skull occurs so that the molten titanium-based material does not react with the heated tundish;
- impinging said free-falling stream of the molten titanium-based material with an inert gas jet to atomize the molten titanium-based material to particulates;
- cooling the atomized titanium-based material; and
- collecting the cooled atomized titanium-based material.
- 2. The method for atomizing a titanium-based material according to claim 1, further comprising the step of stabilizing the molten titanium-based material in said heated tundish.
- 3. The method for atomizing a titanium-based material according to claim 1, wherein the step of transferring the molten titanium-based material to said heated tundish includes lip pouring the molten titanium-based material from said crucible into said heated tundish.
- 4. The method for atomizing a titanium-based material according to claim 1, wherein said heated tundish is heated to a temperature of greater than approximately 1000.degree. F.
- 5. The method for atomizing a titanium-based material according to claim 2, wherein the step of stabilizing the molten titanium-based material in said heated tundish includes disposing a baffle proximate to the bottom portion of said heated tundish.
- 6. The method for atomizing a titanium-based material according to claim 3, wherein a refractory metal nozzle is disposed in said bottom portion of said heated tundish.
- 7. The method for atomizing a titanium-based material according to claim 1, wherein the step of impinging said free-falling stream of molten titanium-based material with an inert gas jet includes impinging said free-falling stream with a plurality of inert gas jets.
- 8. The method for atomizing a titanium-based material according to claim 1, wherein the step of impinging said free-falling stream of the molten titanium-based material with an inert gas jet includes impinging said free-falling stream with an inert gas jet comprised of a primary cooling gas and a secondary cooling gas.
- 9. The method for atomizing a titanium-based material according to claim 8, wherein said inert gas jet comprised of primary and secondary cooling gases contains enough secondary cooling gas to prevent sintering of the cooled atomized titanium-based material.
- 10. The method for atomizing a titanium-based material according to claim 8, wherein said inert gas jet comprised of primary and secondary cooling gases contains at least approximately 1 weight % of secondary cooling gas.
- 11. The method for atomizing a titanium-based material according to claim 8, wherein said primary cooling gas is argon and said secondary cooling gas is selected from the group consisting of helium and hydrogen.
- 12. The method for atomizing a titanium-based material according to claim 9, wherein said primary cooling gas is argon and said secondary cooling gas is selected from the group consisting of helium and hydrogen.
- 13. The method for atomizing a titanium-based material according to claim 10, wherein said primary cooling gas is argon and said secondary cooling gas is selected from the group consisting of helium and hydrogen.
- 14. The method for atomizing a titanium-based material according to claim 1, wherein said free-falling stream of the molten titanium-based material is impinged with an inert gas jet of primary cooling gas and the step of cooling the atomized titanium includes providing a cooling tower through which the atomized titanium passes and introducing secondary cooling gas into said cooling tower.
- 15. The method for atomizing a titanium-based material according to claim 14, wherein said secondary cooling gas is introduced into said cooling tower in an amount sufficient to prevent sintering of the cooled atomized titanium-based material.
- 16. The method of atomizing a titanium-based material according to claim 14, wherein at least approximately 1 weight % of secondary cooling gas is introduced into said cooling tower.
- 17. The method for atomizing a titanium-based material according to claim 14, wherein said primary cooling gas is argon and said secondary cooling gas is selected from the group consisting of helium and hydrogen.
- 18. The method for atomizing a titanium-based material according to claim 15, wherein said primary cooling gas is argon and said secondary cooling gas is selected from the group consisting of helium and hydrogen.
- 19. The method for atomizing a titanium-based material according to claim 16, wherein said primary cooling gas is argon and said secondary cooling gas is selected from the group consisting of helium and hydrogen.
Parent Case Info
This application is a continuation of now abandoned application Ser. No. 07/541,927, filed Jun. 15, 1990, which in turn is a division of application Ser. No. 07/413,177, filed Sep. 27, 1989, which has now matured into U.S. Pat. No. 4,999,051, issued Mar. 12, 1991.
US Referenced Citations (4)
Foreign Referenced Citations (1)
Number |
Date |
Country |
54-35715 |
Mar 1979 |
JPX |
Non-Patent Literature Citations (4)
Entry |
Conference Proceedings, The Metallurgical Society Of Aime, Mar. 1986; "Production and Characterization Of Rapidly Solidified Titanium and Other Alloy Powders Made by Gas Atomization", Moll et al. |
ASM's 1986 International Conference On Rapidly Solidified Materials, Feb., 1986; "Gas Atomized Titanium Powder", Yolton et al. |
"Review And Status of Titanium Materials Produced From Spherical Prealloyed Powder", Moll et al., pp. 1-18. |
ASM Symposium, Jul. 1987; "Evaluation of Ti-10V-2Fe-3Al and Ti-10V-2Fe-3Al+1Er Powder Produced by Gas Atomization", Smith et al. |
Divisions (1)
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Number |
Date |
Country |
Parent |
413177 |
Sep 1989 |
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Continuations (1)
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Number |
Date |
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Parent |
541927 |
Jun 1990 |
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