Claims
- 1. A blank for extruding an elongated dense metal object, said blank comprising a metal container having metal powder compressed therein, said metal powder comprising metal particles that are substantially spherical, and said container being formed from a ductile metal, the wall thickness of said container being at most 5% of the outer diameter of said container, said metal container and the metal powder therein having been subjected to cold-isostatic pressure acting on all surfaces of said container so that said metal container and the metal powder therein are compressed together until the density of said metal powder therein reaches at least 80% of the theoretical density.
- 2. A blank according to claim 1, wherein the wall thickness of the container is between about 0.1 and 5 mm.
- 3. A blank according to claim 1, wherein the wall thickness of the container lies between 0.2 and 3 mm.
- 4. A blank according to claim 1, wherein the powder has a particle size of less than 1 mm.
- 5. A blank according to claim 1, wherein the metal powder has a particle size less than 0.6 mm.
- 6. A blank according to claim 1, wherein the wall thickness of said container is less than 1% of the outer diameter of said container.
- 7. A blank according to claim 1, wherein said container includes at least one concentric partition dividing the interior of said container into at least two regions, each of said regions being filled with metal powder having a different composition from the metal powder filling the other regions.
- 8. A blank according to claim 1, wherein said metal powder is formed from stainless steel.
- 9. A blank for extruding an elongated dense metal object which comprises a thin walled metal container filled with compressed metal powder, said metal powder having metal particles that are substantially spherical and that have a particle size of less than 1 mm, and said container being formed from a ductile metal, the wall thickness of said container being at most 5% of the outer diameter of said container; said container and the powder therein having been compressed by cold-isostatic pressure acting on all surfaces of said container until the density of the metal powder within the metal container is at least 80% of the theoretical density whereby said blank is capable of producing an elongated dense metal object that is devoid of surface flaws and that does not exhibit any creasing or wrinkling during extrusion.
- 10. In a method for producing a blank for extruding an elongated dense metal object wherein metal powder is sealed in a metal container and the metal container with the metal powder therein is compressed, the improvement wherein (1) the metal powders of said metal powder are substantially spherical, (2) said container is formed from a ductile metal, (3) the wall thickness of said container is at most 5% of the outer diameter of said container, (4) said metal container is subjected to cold-isostatic pressure acting on all surfaces of said container, and (5) said metal container is compressed until the density of the metal powder therein reaches at least 80% of the theoretical density.
- 11. A method according to claim 10, wherein the wall thickness of the container is between about 0.1 and 5 mm.
- 12. A method according to claim 10, wherein the wall thickness of the container lies between 0.2 and 3 mm.
- 13. A method according to claim 10, wherein the powder has a particle size of less than 1 mm.
- 14. A method according to claim 10, wherein the metal powder has a particle size less than 0.6 mm.
- 15. A method according to claim 10, wherein the wall thickness of said container is less than 1% of the outer diameter of said container.
- 16. A method according to claim 10, wherein said container includes at least one concentric partition dividing the interior of said container into at least two regions, each of said regions being filled with metal powder having a different composition from the metal powder filling the other regions.
- 17. A blank in accordance with claim 1, wherein the metal powder comprises:
- (a) one or more metals,
- (b) a metal alloy,
- (c) mixtures of alloys,
- (d) a mixture of metal powder and ceramic powder,
- (e) a mixture of metal powder, metal alloy powder and ceramic powder, or
- (f) a mixture of metal alloy powder and ceramic powder.
- 18. A blank in accordance with claim 1, wherein the container and the metal powder therein are compressed until the density of said metal powder reaches a density of about from 80-90% of the theoretical density.
- 19. A blank in accordance with claim 7, wherein the container and the metal powders therein are compressed until the density of said metal powder is from about 80-90% of the theoretical density.
- 20. A blank in accordance with claim 9, wherein the metal powder comprises:
- (a) one or more metals,
- (b) a metal alloy,
- (c) mixtures of alloys,
- (d) a mixture of metal powder and ceramic powder,
- (e) a mixture of metal powder, metal alloy powder and ceramic powder, or
- (f) a mixture of metal alloy powder and ceramic powder.
- 21. A blank in accordance with claim 9, wherein the metal powder in the container has a density of at least 80-90% of the theoretical density after having been compressed.
- 22. A method in accordance with claim 10, wherein the metal powder comprises:
- (a) one or more metals,
- (b) a metal alloy,
- (c) mixtures of alloys,
- (d) a mixture of metal powder and ceramic powder,
- (e) a mixture of metal powder, metal alloy powder and ceramic powder, or
- (f) a mixture of metal alloy powder and ceramic powder.
- 23. A method in accordance with claim 10, wherein the isostatic pressure is at least 1500 bars.
- 24. A method in accordance with claim 23, wherein the isostatic pressure is at least 5000 bars.
- 25. A method in accordance with claim 18, wherein the metal powder in the metal container is compressed until the density of the metal powder is about from 80-90% of the theoretical density.
- 26. In a method for producing a blank for extruding an elongated dense metal object in which a powder comprising:
- (a) one or more metals,
- (b) a metal alloy,
- (c) mixtures of alloys,
- (d) a mixture of metal powder and ceramic powder,
- (e) a mixture of metal powder, metal alloy powder and ceramic powder, or
- (f) a mixture of metal alloy powder and ceramic powder is sealed in a metal container, and the metal container with the powder therein is compressed, the improvements comprising:
- 1. filling a ductile metal container with a powder consisting predominantly of substantially spherical inert-atomized particles of a metal powder as defined above, the wall thickness of said container being no greater than 5% of the outer diameter of said container,
- 2. Vibrating said container and powder therein to increase the density of said powder to about 60-70% of the theoretical density,
- 3. Subjecting said filled metal container to cold-isostatic pressure acting on all surfaces of said container, and
- 4. Continuing to subject said metal container to cold-isostatic pressure until the density of the powder therein reaches at least 80% of the theoretical density during said compression step.
- 27. A method in accordance with claim 26, wherein the filled container is subjected to a cold-isostatic pressure of at least 1500 bars.
- 28. A method in accordance with claim 27, wherein the filled container is subjected to a cold-isostatic pressure of at least 5000 bars.
- 29. A method in accordance with claim 26, wherein the wall thickness of the container is between about 0.1 and 5 mm.
- 30. A method in accordance with claim 26, wherein the wall thickness of the container is between 0.2 and 3 mm.
- 31. A method in accordance with claim 26, wherein the powder has a particle size of less than 1 mm.
- 32. A method in accordance with claim 26, wherein the metal powder has a particle size less than 0.6 mm.
- 33. A method in accordance with claim 26, wherein the wall thickness of the container is less than 1% of the outer diameter of the container.
- 34. A method in accordance with claim 26, wherein the cold-isostatic pressure compresses the metal powder to about from 80-90% of the theoretical density.
- 35. A method in accordance with claim 26, wherein the filled container is vibrated by means of ultrasonic vibration.
- 36. A blank in accordance with claim 1, wherein the metal powder in the container has been compacted by vibration to 60 to 70% of the theoretical density.
- 37. A blank in accordance with claim 7, wherein the metal powder in said regions has been compacted by vibration to 60 to 70% of the theoretical density.
- 38. A blank in accordance with claim 9, wherein the metal powder in the container has been compacted by vibration to 60 to 70% of the theoretical density.
- 39. A blank in accordance with claim 17, wherein the metal powder has been compacted by vibration to 60 to 70% of the theoretical density.
- 40. A blank in accordance with claim 20, wherein the metal powder has been compacted by vibration to 60 to 70% of the theoretical density.
Priority Claims (1)
Number |
Date |
Country |
Kind |
2419014 |
Apr 1974 |
DEX |
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CROSS-REFERENCE TO RELATED APPLICATION
This application is a division of application Ser. No. 569,264 filed Apr. 18, 1975, and now U.S. Pat. No. 4,050,143.
US Referenced Citations (7)
Divisions (1)
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Number |
Date |
Country |
Parent |
569264 |
Apr 1975 |
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