Claims
- 1. A metal powder produced by a process which comprises:
providing molten metal in a metallurgical vessel having a nozzle element, the nozzle element being directed into an atomization chamber associated with the metallurgical vessel; allowing the molten metal to flow through the nozzle element of the metallurgical vessel into the atomization chamber whereby a molten metal stream is fed into the atomization chamber; directing at least three successive gas beams at the molten metal stream inside the atomization chamber wherein the at least three gas beams are oriented in different directions; whereby the molten metal stream is broken down into droplets, the droplets subsequently freezing into grains; and collecting the grains.
- 2. The metal powder of claim 1, wherein the metal comprises at least one of iron, cobalt, nickel, chromium, manganese, vanadium, titanium, zirconium, copper, zinc, tin, magnesium, aluminum, lead.
- 3. The metal powder of claim 2, wherein the metal comprises an alloy comprising at least one of iron, cobalt, nickel, chromium, manganese, vanadium, titanium, zirconium, copper, zinc, tin, magnesium, aluminum, lead.
- 4. The metal powder of claim 1, wherein the metal comprises an iron-based alloy.
- 5. The metal powder of claim 4, wherein the alloy comprises a cold work steel.
- 6. The metal powder of claim 5, wherein the cold work steel comprises, in wt-%, about 1-3.5 C, about 5-20 Cr, about 3-15 V, about 1-5 Mo, up to about 1.0 Si, and up to about 1.0 Mn, the remainder comprising iron and impurities.
- 7. The metal powder of claim 6, wherein at least one of the elements is present in the following wt-%: about 1.5-3 C, about 7-18 Cr, about 4-10 V, about 1.2-4 Mo, up to about 0.7 Si, and up to about 0.5 Mn.
- 8. The metal powder of claim 4, wherein the alloy comprises a high-alloy steel.
- 9. The metal powder of claim 8, wherein the high-alloy steel comprises, in wt-%, about 1-3 C, about 3.5-6 Cr, about 3-8 Mo, about 2-10 V, about 3-20 W, about 0-2 Nb, up to about 1.0 Si, and up to about 1.0 Mn, the remainder comprising iron and impurities.
- 10. The metal powder of claim 9, wherein at least one of the elements is present in the following wt-%: about 1.2-2 C, about 4-5 Cr, about 4-6 Mo, about 3-6 V, about 5-12 W, about 0-1 Nb, up to about 0.7 Si, and up to about 0.5 Mn.
- 11. The metal powder of claim 1, wherein the metal has at least one of a melting point and a liquidus temperature of not higher than about 1800° C.
- 12. The metal powder of claim 11, wherein the metal has at least one of a melting point and a liquidus temperature of not higher than about 1600° C.
- 13. The metal powder of claim 1, wherein the metal has at least one of a melting point and a liquidus temperature of not higher than about 1400° C.
- 14. The metal powder of claim 1, wherein the molten metal stream fed into the atomization chamber has a width of from about 2.0 to about 10.0 mm.
- 15. The metal powder of claim 14, wherein the molten metal stream fed into the atomization chamber has a width of from about 4.0 to about 8.0 mm.
- 16. The metal powder of claim 1, wherein at least a last gas beam of the at least three successive gas beams is a supersonic gas beam.
- 17. The metal powder of claim 1, wherein the gas of at least one gas beam of the at least three successive gas beams comprises nitrogen, argon or both.
- 18. The metal powder of claim 16, wherein the gas of at least one gas beam of the at least three successive gas beams comprises nitrogen.
- 19. The metal powder of claim 1, wherein the average diameter of the grains, as determined by sieve analysis, is not higher than about 80 μm.
- 20. A metal powder produced by a process which comprises:
providing molten metal in a metallurgical vessel having a nozzle element, the nozzle element being directed into an atomization chamber associated with the metallurgical vessel; allowing the molten metal to flow through the nozzle element of the metallurgical vessel into the atomization chamber whereby a molten metal stream is fed into the atomization chamber; directing at least three successive gas beams at the molten metal stream inside the atomization chamber wherein the at least three gas beams are oriented in different directions; whereby the molten metal stream is broken down into droplets, the droplets subsequently freezing into grains; and collecting the grains; wherein the metal comprises at least one of iron, cobalt, nickel, chromium, manganese, vanadium, titanium, zirconium, copper, zinc, tin, magnesium, aluminum, lead and has at least one of a melting point and a liquidus temperature of not higher than about 1400 C, the average diameter of the grains, as determined by sieve analysis, being not higher than about 80 μm.
Priority Claims (1)
Number |
Date |
Country |
Kind |
70/99 |
Jan 1999 |
AT |
|
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] The present application is a divisional of U.S. patent application Ser. No. 09/909,763 filed Jul. 23, 2001, which is a divisional of U.S. patent application Ser. No. 09/484,447 filed Jan. 18, 2000, now U.S. Pat. No. 6,334,884, which claims priority under 35 U.S.C. § 119 of Austrian Patent Application No. 70/99, filed Jan. 19, 1999, the disclosures of which are expressly incorporated by reference herein in their entireties.
Divisions (2)
|
Number |
Date |
Country |
Parent |
09909763 |
Jul 2001 |
US |
Child |
10640055 |
Aug 2003 |
US |
Parent |
09484447 |
Jan 2000 |
US |
Child |
09909763 |
Jul 2001 |
US |