Claims
- 1. A process for the preparation of stable wrought alloys of lead which comprises casting an alloy consisting essentially of from about 0.02% to about 0.1% by weight of calcium, tin in an amount such that the tin to calcium weight ratio or relative tin content is from about 7:1 to 10:1 and the absolute tin content is from about 0.3% to about 1.0% by weight, and the balance substantially lead; and cold working the casting at a time period of within about 24 hours after the casting thereof.
- 2. The process as defined by claim 1 wherein the alloy has a calcium content of from about 0.045% to about 0.075% by weight.
- 3. The process as defined by claim 1 wherein the casting is cold worked at a time period of within about 8 hours after the casting thereof.
- 4. The process as defined by claim 1 wherein the casting is cold worked at a time period of within about 1 hour after the casting thereof.
- 5. A process for the preparation of stable wrought alloys of lead which comprises casting an alloy consisting essentially of from about 0.02% to about 0.1% by weight of calcium, tin in an amount such that the tin to calcium weight ratio or relative tin content is from more than 10:1 up to about 100:1 and the absolute tin content is from about 0.3% to about 2.0% by weight, and the balance substantially lead; and cold working the casting at a time period of within about 48 hours after the casting thereof.
- 6. The process as defined by claim 5 wherein the alloy has a calcium content of from about 0.045% to about 0.075% by weight.
- 7. The process as defined by claim 5 wherein the tin to calcium weight ratio or relative tin content is from more than 10:1 up to about 60:1 and the absolute tin content is from about 0.6% to about 1.8% by weight.
- 8. The process as defined by claim 5 wherein the tin to calcium weight ratio or relative tin content is from about 16:1 to about 40:1 and the absolute tin content is from about 1.0% to about 1.8% by weight.
- 9. The process as defined by claim 5 wherein the tin to calcium weight ratio or relative tin content is about 25:1.
- 10. The process as defined by claim 5 wherein the casting is cold worked at a time period of within about 24 hours after the casting thereof.
- 11. The process as defined by claim 5 wherein the casting is cold worked at a time period of within about 8 hours after the casting thereof.
- 12. The process as defined by claim 5 wherein the alloy is continuously cast and the casting is cold worked by cold rolling at a time period of within about 48 hours after the casting thereof.
- 13. A process for the preparation of stable wrought alloys of lead which comprises continuously casting an alloy consisting essentially of from about 0.03% to about 0.1% by weight of calcium, tin in an amount such that the tin to calcium weight ratio or relative tin content is from 10:1 up to about 25:1 and the absolute tin content is from about 0.3% to about 2.0% by weight, and the balance substantially lead; and cold rolling the casting at a time period of within about 24 hours after the casting thereof.
- 14. A process for the preparation of stable wrought alloys of lead which comprises heating an aged work piece of an alloy consisting essentially of from about 0.02% to about 0.1% by weight of calcium, tin in an amount such that the tin to calcium weight ratio or relative tin content is from about 7:1 to 10:1, and the absolute tin content is from about 0.3% to about 1.0% by weight, and the balance substantially lead, said heating being at a temperature and for a time sufficient to place a substantial portion of the calcium-containing phases in solid solution in the lead; cooling the work piece to ambient temperature to form a super-saturated solid solution of the calcium-containing phases in the lead; and cold working the work piece at a time period of within about 24 hours after the cooling thereof.
- 15. The process as defined by claim 14 wherein the alloy has a calcium content of from about 0.045% to about 0.075% by weight.
- 16. The process as defined by claim 14 wherein the work piece is cold worked at a time period of within about 8 hours after the cooling thereof.
- 17. The process as defined by claim 14 wherein the work piece is cold worked at a time period of within about 1 hour after the cooling thereof.
- 18. A process for the preparation of stable wrought alloys of lead which comprises heating an aged work piece of an alloy consisting essentially of from about 0.02% to about 0.1% by weight of calcium, tin in an amount such that the tin to calcium weight ratio or relative tin content is from more than 10:1 up to about 100:1 and the absolute tin content is from about 0.3% and about 2.0% by weight, and the balance substantially lead, said heating being at a temperature and for a time sufficient to place a substantial portion of the calcium-containing phases in solid solution in the lead; cooling the work piece to ambient temperature to form a super-saturated solid solution of the calcium-containing phases in the lead; and cold working the work piece at a time period of within about 48 hours after the cooling thereof.
- 19. The process as defined by claim 18 wherein the alloy has a calcium content of from about 0.045% to about 0.075% by weight.
- 20. The process as defined by claim 18 wherein the tin to calcium weight ratio or relative tin content is from more than 10:1 up to about 60:1 and the absolute tin content is from about 0.6% to about 1.8% by weight.
- 21. The process as defined by claim 18 wherein the tin to calcium weight ratio or relative tin content is from about 16:1 to about 40:1 and the absolute tin content is from about 1.0% to about 1.8% by weight.
- 22. The process as defined by claim 18 wherein the tin to calcium weight ratio or relative tin content is about 25:1.
- 23. The process as defined by claim 18 wherein the work piece is cold worked at a time period of within about 24 hours after the cooling thereof.
- 24. The process as defined by claim 18 wherein the work piece is cold worked at a time period of within about 8 hours after the cooling thereof.
- 25. Cold worked lead-calcium-tin alloys produced by the process defined by claim 1 having a stable ultimate tensile strength at room temperature of at least about 6,000 psi., a stable stress-to-rupture life at room temperature of at least 25 hours at a stress level of 3,000 psi., and a stable, fine grained, worked, non-recrystallized microstructure at room temperature.
- 26. Cold worked lead-calcium-tin alloys produced by the process defined by claim 5 having a stable ultimate tensile strength at room temperature of at least about 6,500 psi., a stable stress-to-rupture life at room temperature of at least 5 hours at a stress level of 4,000 psi., and a stable, fine grained, worked, non-recrystallized microstructure at room temperature.
- 27. Cold worked lead-calcium-tin alloys produced by the process defined by claim 7 having a stable ultimate tensile strength at room temperature of at least about 8,500 psi., a stable stress-to-rupture life at room temperature of at least 30 hours at a stress level of 4,000 psi., and a stable, fine grained, worked, non-recrystallized microstructure at room temperature.
- 28. Cold worked lead-calcium-tin alloys produced by the process defined by claim 8 having a stable ultimate tensile strength at room temperature of at least about 9,000 psi., a stable stress-to-rupture life at room temperature of at least 100 hours at a stress level of 4,000 psi., and a stable, fine grained, worked non-recrystallized microstructure at room temperature.
- 29. Cold worked lead-calcium-tin alloys produced by the process defined by claim 9 having a stable ultimate tensile strength at room temperature of at least about 10,000 psi., a stable stress-to-rupture life at room temperature of at least 300 hours at a stress level of 4,000 psi., and a stable, fine grained, worked, non-recrystallized microstructure at room temperature.
- 30. Cold worked lead-calcium-tin alloys produced by the process defined by claim 13 having strength stability and microstructural stability at room temperature.
- 31. Cold worked lead-calcium-tin alloys produced by the process defined by claim 14 having a stable ultimate tensile strength at room temperature of at least about 6,000 psi., a stable stress-to-rupture life at room temperature of at least 25 hours at a stress level of 3,000 psi., and a stable, fine grained, worked, non-recrystallized microstructure at room temperature.
- 32. Cold worked lead-calcium-tin alloys produced by the process defined by claim 18 having a stable ultimate tensile strength at room temperature of at least about 6,500 psi., a stable stress-to-rupture life at room temperature of at least 5 hours at a stress level of 4,000 psi., and a stable, fine grained, worked, non-recrystallized microstructure at room temperature.
- 33. Cold worked lead-calcium-tin alloys produced by the process defined by claim 20 having a stable ultimate tensile strength at room temperature of at least about 8,500 psi., a stable stress-to-rupture life at room temperature of at least 30 hours at a stress level of 4,000 psi., and a stable, fine grained, worked, non-recrystallized microstructure at room temperature.
- 34. Cold worked lead-calcium-tin alloys produced by the process defined by claim 21 having a stable ultimate tensile strength at room temperature of at least about 9,000 psi., a stable stress-to-rupture life at room temperature of at least 100 hours at a stress level of 4,000 psi., and a stable, fine grained, worked, non-recrystallized microstructure at room temperature.
- 35. Cold worked lead-calcium-tin alloys produced by the process defined by claim 22 having a stable ultimate tensile strength at room temperature of at least about 10,000 psi., a stable stress-to-rupture life at room temperature of at least 300 hours at a stress level of 4,000 psi., and a stable, fine grained, worked, non-recrystallized microstructure at room temperature.
Parent Case Info
This application is a continuation-in-part of U.S. application Serial No. 472,113, filed May 22, 1974, now abandoned; which application is a continuation-in-part of both U.S. application Serial No. 394,096, filed September 4, 1973, and U.S. application Serial No. 369,452, filed June 13, 1973, now both abandoned; which two applications are, respectively, a continuation and a division of U.S. application Serial No. 328,333, filed January 31, 1973, now abandoned; which application Serial No. 328,333 is a continuation-in-part of U.S. application Serial No. 72,825, filed September 16, 1970, now abandoned; which application Serial No. 72,825 is a continuation-in-part of U.S. application Serial No. 4,240, filed January 20, 1970, now abandoned.
US Referenced Citations (4)
Number |
Name |
Date |
Kind |
2049938 |
Anderson et al. |
Aug 1936 |
|
2142835 |
Betterton et al. |
Jan 1939 |
|
2159124 |
Betterton et al. |
May 1939 |
|
3706605 |
Newbury et al. |
Dec 1972 |
|
Foreign Referenced Citations (2)
Number |
Date |
Country |
314,522 |
Sep 1930 |
UK |
548,775 |
Oct 1942 |
UK |
Non-Patent Literature Citations (1)
Entry |
Greenwood, et al., "The Influence of Calcium on the Creep Characteristics of Lead", Metallurgic Vol. 39, No. 233, 3/49 pp. 241-245. |
Related Publications (1)
|
Number |
Date |
Country |
|
369452 |
Jun 1973 |
|
Divisions (1)
|
Number |
Date |
Country |
Parent |
328333 |
|
|
Continuations (1)
|
Number |
Date |
Country |
Parent |
328333 |
Jan 1973 |
|
Continuation in Parts (4)
|
Number |
Date |
Country |
Parent |
472113 |
May 1974 |
|
Parent |
394096 |
Sep 1973 |
|
Parent |
72825 |
Sep 1970 |
|
Parent |
4240 |
Jan 1970 |
|