Claims
- 1. An alloy composition comprising:
titanium; and a molybdenum equivalent weight of about 7 to about 11 wt %, wherein the weight percents are based upon the total weight of the alloy composition, wherein the alloy composition is superelastic and/or pseudoelastic.
- 2. The composition of claim 1, wherein the composition is cold worked and/or solution treated; and wherein the solution treating can be conducted at a temperature above and/or below the β transus temperature.
- 3. The composition of claim 1, wherein the molybdenum equivalent weight is determined by the equation (1)
- 4. The composition of claim 1, comprising:
about 8 to about 10 wt % molybdenum, about 2.8 to about 6 wt % aluminum, up to about 2 wt % vanadium, up to about 4 wt % niobium, with the balance being titanium, wherein the weight percents are based on the total weight of the alloy composition, and wherein the composition is cold worked.
- 5. The composition of claim 4, further comprising solution treating the composition at a temperature of greater than or equal to the β transus temperature for a time period of greater than or equal to about 30 seconds.
- 6. The composition of claim 5, wherein the temperature is about 850 to about 1000° C.
- 7. The composition of claim 4, further comprising solution treating the composition at a temperature of less than or equal to the β transus temperature for a time period of greater than or equal to about 1 minute.
- 8. The composition of claim 7, wherein the temperature is about 750 to about 850° C.
- 9. The composition of claim 1, wherein the composition has a β phase and/or an α and a β phase.
- 10. The composition of claim 1, wherein the composition has an elastic recovery of greater than or equal to about 75% of the applied change in length when the applied change in length is 2% of the original length.
- 11. The composition of claim 1, wherein the composition has an elastic recovery of greater than or equal to about 85% of the applied change in length when the applied change in length is 2% of the original length.
- 12. The composition of claim 1, wherein the composition has an elastic recovery of greater than or equal to about 50% of the applied change in length when the applied change in length is 4% of the original length.
- 13. The composition of claim 1, wherein the composition has an elastic recovery of greater than or equal to about 75% of the applied change in length when the applied change in length is 4% of the original length.
- 14. The composition of claim 1, wherein the composition after cold working has a reduction in the elastic modulus of greater than or equal to about 10% when compared with the elastic modulus of an equivalent heat treated composition.
- 15. The composition of claim 1, wherein the composition after cold working has a reduction in the elastic modulus of greater than or equal to about 20% when compared with the elastic modulus of an equivalent heat treated composition.
- 16. The composition of claim 1, wherein the composition after cold working has a reduction in the elastic modulus of greater than or equal to about 25% when compared with the elastic modulus of an equivalent heat treated composition.
- 17. The composition of claim 4, wherein the composition, after cold working and/or solution treating, has an elastic recovery of greater than or equal to about 75% of the applied change in length when the applied change in length is 2% of the original length.
- 18. The composition of claim 4, wherein the composition, after cold working and/or solution treating, has an elastic recovery of greater than or equal to about 85% of the applied change in length when the applied change in length is 2% of the original length.
- 19. The composition of claim 4, wherein the composition, after cold working and/or solution treating, has an elastic recovery of greater than or equal to about 50% of the applied change in length when the applied change in length is 4% of the original length.
- 20. The composition of claim 4, wherein the composition, after cold working and/or solution treating, has an elastic recovery of greater than or equal to about 75% of the applied change in length when the applied change in length is 4% of the original length.
- 21. The composition of claim 4, wherein the composition, after cold working, has a reduction in the elastic modulus of greater than or equal to about 10% when compared with the elastic modulus of an equivalent heat treated composition.
- 22. The composition of claim 4, wherein the composition, after cold working, has a reduction in the elastic modulus of greater than or equal to about 20% when compared with the elastic modulus of an equivalent heat treated composition.
- 23. The composition of claim 4, wherein the composition, after cold working, has a reduction in the elastic modulus of greater than or equal to about 25% when compared with the elastic modulus of an equivalent heat treated composition.
- 24. An article manufactured from the composition of claim 1.
- 25. An article manufactured from the composition of claim 4.
- 26. A method for making an article comprising:
working a shape, wherein the shape has a composition comprising titanium; and a molybdenum equivalent weight of about 7 to about 11 wt %, wherein the weight percents are based upon the total weight of the alloy composition; and wherein the molybdenum equivalent weights are determined by the equation (1) MOeq.=1.00Mo+0.28Nb+0.22Ta+0.67V+1.43Co+1.60Cr+0.77Cu+2.90Fe+1.54Mn+1.11Ni+0.44W−1.00Al (1) or the equation (2) MOeq.=1.00Mo+0.28Nb+0.22Ta+0.67V+1.43Co+1.60Cr+0.77Cu+2.90Fe+1.54Mn+1.11 Ni+0.44W+0.25(Sn+Zr+Hf)−1.00Al (2) wherein Mo is molybdenum, Nb is niobium, Ta is tantalum, V is vanadium, Co is cobalt, Cr is chromium, Cu is copper, Fe is iron, Mn is manganese, Ni is nickel, W is tungsten, Al is aluminum, Sn is tin, Zr is zirconium and Hf is hafnium; wherein the aluminum can be substituted by boron, carbon, gallium and/or germanium and wherein the respective chemical symbols represent the amounts of the respective elements in weight percent based on the total weight of the alloy composition; solution treating the shape; and cooling the shape.
- 27. The method of claim 26, wherein the working is accomplished through cold working or hot working.
- 28. The method of claim 26, wherein the solution treating is conducted at a temperature below the β transus temperature for the composition.
- 29. The method of claim 26, wherein the solution treating is conducted at a temperature above the β transus temperature for the composition.
- 30. The method of claim 26, wherein the cooling is conducted in air and/or an inert gas.
- 31. The method of claim 26, wherein the shape is further heat aged at a temperature of about 350 to about 550° C.
- 32. The method of claim 31, wherein the heat ageing is conducted for a time period of 10 seconds to about 8 hours.
- 33. The method of claim 26, further comprising cold working the shape.
- 34. A method for making an article comprising:
cold working a shape from a composition comprising about 8 to about 10 wt % molybdenum, about 2.8 to about 6 wt % aluminum, up to about 2 wt % vanadium, up to about 4 wt % niobium, with the balance being titanium, wherein the weight percents are based on the total weight of the alloy composition; solution treating the shape; and cooling the shape.
- 35. The method of claim 34, wherein the solution treating is conducted at a temperature below the isomorphic temperature for the composition.
- 36. The method of claim 34, wherein the solution treating is conducted at a temperature above the isomorphic temperature for the composition.
- 37. The method of claim 34, wherein the cooling is conducted in air.
- 38. The method of claim 34, wherein the shape is further heat aged at a temperature of about 350 to about 550° C.
- 39. The method of claim 38, wherein the heat ageing is conducted for a time period of 10 seconds to about 8 hours.
- 40. The method of claim 34, further comprising cold working the shape.
- 41. A method comprising:
cold working a wire having a composition comprising titanium; and a molybdenum equivalent weight of about 7 to about 11 wt %, wherein the weight percents are based upon the total weight of the alloy composition; and wherein the molybdenum equivalent weights are determined by the equation (1) MOeq.=1.00Mo+0.28Nb+0.22Ta+0.67V+1.43Co+1.60Cr+0.77Cu+2.90Fe+1.54Mn+1.11 Ni+0.44W−1.00Al (1) or the equation (2) MOeq.=1.00Mo+0.28Nb+0.22Ta+0.67V+1.43Co+1.60Cr+0.77Cu+2.90Fe+1.54Mn+1.11 Ni+0.44W+0.25(Sn+Zr+Hf)−1.00Al (2) wherein Mo is molybdenum, Nb is niobium, Ta is tantalum, V is vanadium, Co is cobalt, Cr is chromium, Cu is copper, Fe is iron, Mn is manganese, Ni is nickel, W is tungsten, Al is aluminum, S is tin, Zr is zirconium and Hf is hafnium; and wherein the respective chemical symbols represent the amounts of the respective elements in weight percent based on the total weight of the alloy composition; solution treating the wire; and heat treating the wire.
- 42. The method of claim 41, wherein the composition comprises about 8 to about 10 wt % molybdenum, about 2.8 to about 6 wt % aluminum, up to about 2 wt % vanadium, up to about 4 wt % niobium, with the balance being titanium, wherein the weight percents are based on the total weight of the alloy composition.
- 43. The method of claim 41, wherein the cold working results in a reduction in cross-sectional area of about 5 to about 85%.
- 44. The method of claim 41, wherein the wire diameter is about 0.1 to about 10 millimeters.
- 45. The method of claim 41, wherein the heat treating is conducted at a temperature of about 500° C. to about 900° C.
- 46. The method of claim 41, wherein the wire is solution treated at a temperature of about 800 to about 1000° C.
- 47. The method of claim 41, wherein the article has a β phase or an α phase and a β phase.
- 48. The method of claim 41, wherein the article has an elastic recovery of greater than or equal to about 75% of the applied change in length when the applied change in length is 2% of the original length.
- 49. The method of claim 41, wherein the article has an elastic recovery of greater than or equal to about 50% of the applied change in length when the applied change in length is 4% of the original length.
CROSS REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority to U.S. application Ser. No. 10/609,003 filed on Jun. 27, 2003 and to U.S. Provisional Application 60/392,620 filed Jun. 27, 2002, the entire contents of which are incorporated herein by reference.
Provisional Applications (1)
|
Number |
Date |
Country |
|
60392620 |
Jun 2002 |
US |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
10609003 |
Jun 2003 |
US |
Child |
10755034 |
Jan 2004 |
US |