Claims
- 1. A bulk-solidifying amorphous alloy comprising:
a base bulk solidifying amorphous alloy including a plurality of metal components each having a separate heat of formation for oxygen; and an additional alloying metal having an alloying metal heat of formation for oxygen, where the alloying metal heat of formation for oxygen is greater than the largest heat of formation for oxygen among the metal components.
- 2. The bulk-solidifying amorphous alloy of claim 1, wherein the base bulk solidifying amorphous alloy is Zr—Ti based.
- 3. The bulk-solidifying amorphous alloy of claim 1, wherein the additional alloying metal is selected from the group consisting of La, Y, Ca, Al, and Be.
- 4. A cast article of bulk-solidifying amorphous alloy of claim 2, wherein the bulk-solidifying amorphous alloy is defined by the molecular equation:
- 5. The cast article of claim 4, wherein k has a range of from about 0.5 to 1.
- 6. The cast article of claim 4, wherein k has a range of from about 3 to 5.
- 7. The cast article of claim 4, wherein k has a range of from about 5 to 10.
- 8. The cast article of claim 4, wherein k has a range of from about 1 to 3.
- 9. The bulk-solidifying amorphous alloy of claim 4, wherein the oxygen content is more than 200 ppm.
- 10. The bulk-solidifying amorphous alloy of claim 4, wherein the oxygen content is more than 500 ppm.
- 11. The bulk-solidifying amorphous alloy of claim 4, wherein the oxygen content is more than 1,000 ppm.
- 12. The bulk-solidifying amorphous alloy of claim 2, wherein the total of Zr and Ti comprises the largest atomic percentage of the metal components in the base alloy.
- 13. The bulk-solidifying amorphous alloy of claim 2, wherein the heat of formation for oxygen of Zr is within 5% of the largest metal component heat of formation for oxygen.
- 14. The bulk-solidifying amorphous alloy of claim 2, wherein the heat of formation for oxygen for Zr is the largest among the metal component heats of formation for oxygen chosen from the group of metal components of the base alloy comprising more than 5 atomic percentage of the base alloy.
- 15. The bulk-solidifying amorphous alloy of claim 1, wherein the base alloy has a ratio of glass transition temperature to melting temperature, Trg, of more than about 0.5.
- 16. The bulk-solidifying amorphous alloy of claim 1, wherein the base alloy has a ratio of glass transition temperature to melting temperature, Trg, of more than about 0.55.
- 17. The bulk-solidifying amorphous alloy of claim 1, wherein the base alloy has a ratio of glass transition temperature to melting temperature, Trg, of more than about 0.6.
- 18. A method of forming a bulk-solidifying amorphous alloy comprising the steps of:
providing a base bulk-solidifying amorphous alloy including a plurality of metal components each having a separate heat of formation for oxygen; providing an additional alloying metal having an alloying metal heat of formation for oxygen, where the alloying metal heat of formation for oxygen is greater than the largest heat of formation for oxygen among the metal components; and adding the additional alloying metal to the base alloy to form a new the bulk-solidifying amorphous alloy.
- 19. The method of claim 18, wherein the base alloy is Zr—Ti based.
- 20. The method of claim 18, wherein the additional alloying metal is selected from the group consisting of La, Y, Ca, Al, and B.
- 21. The method of claim 18, wherein the bulk-solidifying amorphous alloy is defined by the molecular equation:
- 22. The method of claim 18, wherein k has a range of from about 0.5 to 1.
- 23. The method of claim 18, wherein k has a range of from about 3 to 5.
- 24. The method of claim 18, wherein k has a range of from about 5 to 10.
- 25. The method of claim 18, wherein k has a range of from about 1 to 3.
- 26. The method of claim 19, wherein the total of Zr and Ti comprises the largest atomic percentage of the metal components in the bulk-solidifying amorphous alloy.
- 27. The method of claim 19, wherein the heat of formation of Zr is within 5% of the largest metal component heat of formation for oxygen.
- 28. The method of claim 19, wherein the heat of formation of Zr is the largest among the metal component heats of formation for oxygen chosen from the group of metal components of the base alloy comprising more than 5 atomic percentage of the base alloy.
- 29. The method of claim 18, wherein the base alloy has a ratio of glass transition temperature to melting temperature, Trg, of more than about 0.5.
- 30. The method of claim 18, wherein the base alloy has a ratio of glass transition temperature to melting temperature, Trg, of more than about 0.55.
- 31. The method of claim 18, wherein the base alloy has a ratio of glass transition temperature to melting temperature, Trg, of more than about 0.6.
- 32 The method of claim 18, wherein the step of providing the additional alloying metal comprises adding the additional alloying metal into a feedstock of the base alloy.
- 33. The method of claim 18, further comprising the step of superheating the bulk-solidifying amorphous alloy comprising heating the bulk-solidifying amorphous alloy to a superheating temperature.
- 34. The method of claim 33, wherein the step of superheating isconducted at a superheating temperature according to the equation: Theat=Tm(C)+200° C., where Theat is the superheating temperature and Tm is the melting temperature of the bulk-solidifying amorphous alloy.
- 35. The method of claim 33, wherein the step of superheating is conducted at a temperature in the range of from about 100° C. to 300° C. or more above the melting temperature of the bulk-solidifying amorphous alloy.
- 36. The method of claim 33, wherein the step of superheating is conducted at a temperature in the range of from about 300° C. or more above the melting temperature of the bulk-solidifying amorphous alloy.
- 37. The method of claim 33, wherein the step of superheating further comprises maintaining the superheating temperature for a specified dwell time in the range of from about 1 minutes to 60 minutes.
- 38. The method of claim 33, wherein the step of superheating further comprises maintaining the superheating temperature for a specified dwell time in the range of from about 5 minutes to 10 minutes.
- 39. The method of claim 33, wherein the step of superheating further comprises maintaining the superheating temperature for a specified dwell time in the range of from about 1 minutes to 5 minutes.
- 40. The method of claim 33, wherein the step of superheating further comprises maintaining the superheating temperature for a specified dwell time in the range of from about 1 minutes to 60 minutes.
- 41. The method of claim 33, wherein the step of superheating further comprises maintaining the superheating temperature for a specified dwell time in the range of from about 10 minutes to 30 minutes.
- 42. A method of forming a feedstock of bulk-solidifying amorphous alloy comprising the steps of:
providing a base alloy including a plurality of metal components each having a separate heat of formation for oxygen; and providing sn additional alloying metal having an alloying metal heat of formation for oxygen, where the alloying metal heat of formation for oxygen is greater than the largest heat of formation for oxygen among the metal components; adding the additional alloying metal to the base alloy to form the bulk-solidifying amorphous alloy; superheating the bulk-solidifying amorphous alloy comprising heating the bulk-solidifying amorphous alloy to a superheating temperature.
- 43 The method of claim 42, wherein the step of providing the additional alloying metal comprises adding the additional alloying metal into a feedstock of the base alloy.
- 44. A method of casting amorphous articles comprising the steps of:
providing a base alloy including a plurality of metal components each having a separate heat of formation for oxygen; and providing an additional alloying metal having an alloying metal heat of formation for oxygen, where the alloying metal heat of formation for oxygen is greater than the largest heat o formation for oxygen among the metal components; adding the additional alloying metal to the base alloy to form the bulk-solidifying amorphous alloy; superheating the bulk-solidifying amorphous alloy comprising heating the bulk-solidifying amorphous alloy to a superheating temperature; and casting the bulk-solidifying amorphous alloy into a finished article at a cooling rate such that the finished article remains substantially amorphous.
- 45. The method of claim 44, wherein the step of providing the additional alloying metal comprises adding the additional alloying metal into a feedstock of the base alloy.
- 46. The method of claim 44, wherein the step of cast occurs at a cooling rate less than the cooling rate required for the base alloy to ensure that the base alloy remains substantially amorphous.
- 47. The method of claim 44, wherein the base alloy has a ratio of glass transition temperature to melting temperature, Trg, of more than about 0.55.
- 48. The method of claim 44, wherein the base alloy has a ratio of glass transition temperature to melting temperature, Trg, of more than about 0.6.
- 49. The method of claim 44, wherein the bulk-solidifying amorphous alloy is defined by the molecular equation:
- 50. The method amorphous alloy of claim 44, wherein the base bulk solidifying amorphous alloy is Zr—Ti based.
- 51. The method amorphous alloy of claim 44, wherein the additional alloying metal is selected from the group consisting of La, Y, Ca, Al, and Be.
- 52. The method of claim 44, wherein the step of casting utilizes a method of high-pressure die-casting.
- 53. The method of claim 44, wherein the step of casting is carried out under inert atmosphere or vacuum.
- 54. The method of claim 44, wherein the finished article has an elastic limit of at least 1.2%.
- 55. The method of claim 44, wherein the finished article has an elastic limit of at least 1.8%.
- 56. The method of claim 44, wherein the finished article has an elastic limit of at least 1.8% plus a bend ductility of at least 1.0%.
- 57. The method of claim 44, further comprising the step of testing the elastic limit of the finished article.
- 58. The method of claim 57, wherein the step of testing comprises bend testing the finished article.
- 59. A cast article comprising at least one cast piece made from the bulk-solidifying amorphous alloy of claim 1.
- 60. The cast article of claim 59, wherein the article has an elastic limit of at least 1.2%.
- 61. The cast article of claim 59, wherein the article has an elastic limit of at least 1.8%.
- 62. The cast article of claim 59, wherein the article has an elastic limit of at least 1.8% plus a bend ductility of at least 1.0%.
- 63. The cast article of claim 59, wherein the base bulk solidifying amorphous alloy is Zr—Ti based.
- 64. The cast article of claim 63, wherein the article has an oxygen content of more than 200 ppm.
- 65. The cast article of claim 63, wherein the article has an oxygen content of more than 500 ppm.
- 66. The cast article of claim 63, wherein the article has an oxygen content of more than 1,000 ppm.
- 67. A feedstock blank comprising at least one piece made from the bulk-solidifying amorphous alloy of claim 1.
- 68. The feedstock blank of claim 67, wherein the base bulk solidifying amorphous alloy is Zr—Ti based.
- 69. The feedstock blank of claim 68, wherein the blank has an oxygen content of more than 200 ppm.
- 70. The feedstock blank of claim 68, wherein the blank has an oxygen content of more than 500 ppm.
- 71. The feedstock blank of claim 68, wherein the blank has an oxygen content of more than 1,000 ppm.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application claims priority on U.S. provisional application No. 60/327,175 filed on Oct. 3, 2001, the content of which is incorporated herein by reference.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60327175 |
Oct 2001 |
US |