Claims
- 1. A method of forming a solidified foam bulk amorphous alloy structure comprising:
providing a bulk solidifying amorphous alloy; heating the bulk solidifying amorphous alloy above the melting temperature of a corresponding crystalline phase of the bulk solidifying amorphous alloy to form a molten bulk solidifying amorphous alloy; pressurizing the molten bulk solidifying amorphous alloy; stirring the molten bulk solidifying amorphous alloy under pressure to form a mixture of a plurality of bubbles and the molten bulk solidifying amorphous alloy; and cooling the mixture sufficiently fast below the glass transition temperature of the bulk solidifying amorphous alloy to form a solidified foam bulk amorphous alloy structure.
- 2. The method as in claim 1, wherein the cooling further comprises depressurizing the mixture to achieve a increase the pore size and volume fraction of the bubbles.
- 3. The method as in claim 1, wherein the mixture is injected into a closed die-cavity to form a shaped article.
- 4. The method described in claim 1 wherein the molten bulk solidifying amorphous alloy is pressurized at a pressure between 15 psi and 15 kpsi.
- 5. The method described in claim 1 wherein the molten bulk solidifying amorphous alloy is stirred by a propeller, and the propeller is spun at rates of from 30 rpm to 1200 rpm or more.
- 6. The method described in claim 1 further comprising injecting a pressurized gas into the molten bulk solidifying amorphous alloy.
- 7. The method described in claim 6 wherein the pressurized gas is at a pressure higher that the pressure of the pressurized molten bulk solidifying amorphous alloy.
- 8. The method described in claim 6 wherein the gas is an inert gas from the group consisting of argon, helium, and nitrogen.
- 9. The method described in claim 1 further comprising:
heating the solidified foam bulk amorphous alloy structure to about the glass transition temperature or above; and shaping the foam bulk amorphous alloy structure into a net-shape article, while substantially preserving the underlying foam bulk amorphous alloy structure.
- 10. The method described in claim 9 wherein the step of shaping includes molding the heated solidified foam bulk amorphous alloy structure using a molding process selected from the group consisting of blow molding, die-forming, and replication of surface features.
- 11. A method of forming a foamed bulk solidifying amorphous alloy structure comprising:
providing a bulk solidifying amorphous alloy; heating the bulk solidifying amorphous alloy above the melting temperature of a corresponding crystalline phase of the bulk solidifying amorphous alloy to form a molten bulk solidifying amorphous alloy; pressurizing the molten bulk solidifying amorphous alloy; introducing a volatile agent into the pressurized molten bulk solidifying amorphous alloy to form a mixture of bubbles within the pressurized molten bulk solidifying amorphous alloy; and cooling and depressurizing the molten bulk solidifying amorphous alloy below the glass transition temperature of the bulk solidifying amorphous alloy to form a solidified foam bulk amorphous alloy structure.
- 12. The method described in claim 11 wherein the volatile agent is a hydrite.
- 13. The method described in claim 11 further comprising:
heating the solidified foam bulk amorphous alloy structure to about the glass transition temperature or above; and shaping the solidified foam bulk amorphous alloy structure into a net-shape article, while substantially preserving the underlying solidified foam bulk amorphous alloy structure.
- 14. The method described in claim 13 wherein the step of shaping includes molding the heated solidified foam bulk amorphous alloy structure using a molding process selected from the group consisting of blow molding, die-forming, and replication of surface features.
- 15. A solidified foam bulk amorphous alloy structure comprising a foam structure of a bulk solidifying amorphous alloy having a critical cooling rate at about 500 K/sec or less wherein a continuous piece of the bulk solidifying amorphous alloy is connected through a pore structure comprising a plurality of pores.
- 16. The solidified foam bulk amorphous alloy structure described in claim 15, wherein the plurality of pores are connected to each other throughout to form an open cell-structure.
- 17. The solidified foam bulk amorphous alloy structure described in claim 15, wherein the plurality of pores are each fully surrounded by a portion of the continuous piece of amorphous alloy to form a closed-cell structure.
- 18. The solidified foam bulk amorphous alloy structure described in claim 15, wherein the size of each pore is from 1 micron to up to 5.0 mm in size and the volume fraction of the plurality of pores is from 10% to up to 95% or more.
- 19. The solidified foam bulk amorphous alloy structure described in claim 15, wherein the solidified foam bulk amorphous alloy structure forms an amorphous body member, and wherein the thickness of the bulk solidifying amorphous alloy is less than 2.0 mm.
- 20. The solidified foam bulk amorphous alloy structure described in claim 15, wherein the solidified foam bulk amorphous alloy structure forms an amorphous body member, and wherein the thickness of the bulk solidifying amorphous alloy is less than 1.0 mm.
- 21. The solidified foam bulk amorphous alloy structure described in claim 15, wherein the solidified foam bulk amorphous alloy structure forms an amorphous body member, and wherein the thickness of the bulk solidifying amorphous alloy is less than 250 microns.
- 22. The solidified foam bulk amorphous alloy structure described in claim 19, wherein the weight of the bulk solidifying amorphous alloy in the solidified foam bulk amorphous alloy structure comprises no more than 50% of the total weight of the amorphous body member.
- 23. The solidified foam bulk amorphous alloy structure described in claim 19, wherein the weight of the bulk solidifying amorphous alloy in the solidified foam bulk amorphous alloy structure comprises no more than 20% of the total weight of the amorphous body member.
- 24. The solidified foam bulk amorphous alloy structure described in claim 19, wherein the weight of the bulk solidifying amorphous alloy in the solidified foam bulk amorphous alloy structure comprises no more than 5% of the total weight of the amorphous body member.
- 25. The solidified foam bulk amorphous alloy structure described in claim 20, wherein the weight of the bulk solidifying amorphous alloy in the solidified foam bulk amorphous alloy structure comprises no more than 50% of the total weight of the amorphous body member.
- 26. The solidified foam bulk amorphous alloy structure described in claim 20, wherein the weight of the bulk solidifying amorphous alloy in the solidified foam bulk amorphous alloy structure comprises no more than 20% of the total weight of the amorphous body member.
- 27. The solidified foam bulk amorphous alloy structure described in claim 20, wherein the weight of the bulk solidifying amorphous alloy in the solidified foam bulk amorphous alloy structure comprises no more than 5% of the total weight of the amorphous body member.
- 28. The solidified foam bulk amorphous alloy structure described in claim 21, wherein the weight of the bulk solidifying amorphous alloy in the solidified foam bulk amorphous alloy structure comprises no more than 50% of the total weight of the amorphous body member.
- 29. The solidified foam bulk amorphous alloy structure described in claim 21, wherein the weight of the bulk solidifying amorphous alloy in the solidified foam bulk amorphous alloy structure comprises no more than 20% of the total weight of the amorphous body member.
- 30. The solidified foam bulk amorphous alloy structure described in claim 21, wherein the weight of the bulk solidifying amorphous alloy in the solidified foam bulk amorphous alloy structure comprises no more than 5% of the total weight of the amorphous body member.
- 31. The solidified foam bulk amorphous alloy structure described in claim 15, wherein the volume fraction of the plurality of pores is in the range of 20 to 95%.
- 32. The solidified foam bulk amorphous alloy structure described in claim 15, wherein the plurality of pores have a size typically larger than 250 micron, and a pore shape that is a closed ellipsoidal.
- 33. The solidified foam bulk amorphous alloy structure described in claim 32, wherein the volume fraction of the plurality of pores is in the range of 5 to 50%.
- 34. The solidified foam bulk amorphous alloy structure described in claim 32, wherein the volume fraction of the plurality of pores is in the range of 10 to 30%.
- 35. The solidified foam bulk amorphous alloy structure described in claim 32, wherein the volume fraction of the plurality of pores is in the range of 40 to 70%.
- 36. The solidified foam bulk amorphous alloy structure described in claim 15, wherein the plurality of pores have a size typically larger than 20 micron, and a pore shape that is a closed ellipsoidal.
- 37. The solidified foam bulk amorphous alloy structure described in claim 36, wherein the volume fraction of the plurality of pores is in the range of 20 to 90%.
- 38. The solidified foam bulk amorphous alloy structure described in claim 36, wherein the volume fraction of the plurality of pores is in the range of 50 to 80%.
- 39. The solidified foam bulk amorphous alloy structure described in claim 36, wherein the pore shape is spherical and the volume fraction of the plurality of pores is in the range of 20% to 70%.
- 40. The solidified foam bulk amorphous alloy structure described in claim 39, wherein the volume fraction of the plurality of pores is in the range of 40% to 60%.
- 41. The solidified foam bulk amorphous alloy structure described in claim 15, wherein the plurality of pores have a size typically less than 10 micron, and a pore shape that is a closed ellipsoidal.
- 42. The solidified foam bulk amorphous alloy structure described in claim 41, wherein the volume fraction of the plurality of pores is in the range of 20 to 90%.
- 43. The solidified foam bulk amorphous alloy structure described in claim 41, wherein the volume fraction of the plurality of pores is in the range of 50 to 80%.
- 44. The solidified foam bulk amorphous alloy structure described in claim 41, wherein the pore shape is spherical and the volume fraction of the plurality of pores is in the range of 20% to 70%.
- 45. The solidified foam bulk amorphous alloy structure described in claim 44, wherein the volume fraction of the plurality of pores is in the range of 40% to 60%.
- 46. The solidified foam bulk amorphous alloy structure described in claim 15, wherein the plurality of pores have an open-cellular structure.
- 47. The solidified foam bulk amorphous alloy structure described in claim 46, wherein the volume fraction of the plurality of pores is in the range of 40 to 95%.
- 48. The solidified foam bulk amorphous alloy structure described in claim 46, wherein the volume fraction of the plurality of pores is in the range of 70 to 90%.
- 49. The solidified foam bulk amorphous alloy structure described in claim 15, wherein the bulk solidifying amorphous alloy has a composition according to the formula (Zr,Ti)a(Ni,Cu,Fe)b(Be,Al,Si,B)c, where a is in the range of from 30 to 75, b is in the range of from 5 to 60, and c in the range of from 0 to 50 in atomic percentages.
- 50. The solidified foam bulk amorphous alloy structure described in claim 49, wherein the bulk solidifying amorphous further comprises up to 20% of at least one additional transition metal.
- 51. The solidified foam bulk amorphous alloy structure described in claim 15, wherein the bulk solidifying amorphous alloy has a composition according to the formula Fe72Al5Ga2P11C6B4.
- 52. A solidified foam bulk amorphous alloy structure comprising a foam structure of a bulk solidifying amorphous alloy having a critical casting thickness of about 0.5 mm or less wherein a continuous piece of the bulk solidifying amorphous alloy is connected through a pore structure comprising a plurality of pores.
- 53. An article comprising the solidified foam bulk amorphous alloy structure described in claim 15, wherein the article has a solid thin shell on an outer surface thereof.
- 54. The article as described in claim 53, wherein the solid thin shell has a thickness less than 2.0 mm.
- 55. The article as described in claim 53, wherein the solid thin shell is one continuous piece covering the outer surface of the article.
- 56. The article as described in claim 53, wherein the solid thin shell has a metallurgical bond to the solidified foam bulk amorphous alloy structure.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application is based on and claims priority to Provisional U.S. Application No. 60/381,938, filed May 20, 2002.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60381938 |
May 2002 |
US |