Claims
- 1. A strand comprising a plurality of stainless steel wires, which are in a compacted, mechanically stress relieved condition the plurality of stainless steel wires comprising outer wires including outer surfaces having a compressive residual stress state.
- 2. The strand of claim 1, wherein the plurality of stainless steel wires are in a mechanically stress relieved and thermally stress relieved condition.
- 3. A wire rope comprising a plurality of the strands according to claim 2.
- 4. A wire rope comprising a plurality of the strands according to claim 1.
- 5. The wire rope of claim 4, wherein the wire rope comprises at least three strands and is torque balanced.
- 6. The wire rope of claim 3, wherein the wire rope comprises at least three strands and is torque balanced.
- 7. A strand comprising a plurality of metal wires, which are in a compacted, mechanically stress relieved and thermally stress relieved condition, the plurality of metal wires comprising outer wires including outer surfaces having a compressive residual stress state.
- 8. The strand of claim 7, wherein the plurality of metal wires comprise high-carbon steel.
- 9. A wire rope comprising a plurality of the strands according to claim 8.
- 10. A wire rope comprising a plurality of the strands according to claim 7.
- 11. The wire rope of claim 10, wherein the wire rope comprises at least three strands and is torque balanced.
- 12. The wire rope of claim 9, wherein the wire rope comprises at least three strands and is torque balanced.
- 13. The wire rope of claim 10, further comprising a core surrounded by the strands, and wherein the wire rope is rotation resistant.
- 14. The wire rope of claim 9, further comprising a core surrounded by the strands, and wherein the wire rope is rotation resistant.
- 15. A method, comprising:heating a plurality of wires to thermally stress relieve the wires; and stranding the wires to form at least one strand, wherein the wires are compacted during the stranding so as to mechanically stress relieve the at least one strand; wherein the at least one mechanically stress relieved strand comprising outer wires including outer surfaces having a compressive residual stress state.
- 16. The method of claim 15, wherein the stranding comprises stranding the wires to form a plurality of strands, the wires being compacted during the stranding so as to mechanically stress relieve the strands; and the method further comprises closing the plurality of strands to form a wire rope.
- 17. The method of claim 16, further comprising heating the wire rope to thermally stress relieve the wire rope.
- 18. The method of claim 17, wherein the wire rope comprises at least three strands, and the wire rope is torque balanced.
- 19. The method of claim 16, wherein the wire rope comprises at least three strands, and the wire rope is torque balanced.
- 20. The method of claim 17, wherein the wires comprise stainless steel.
- 21. The method of claim 16, wherein the wires comprise stainless steel.
- 22. The method of claim 16, further comprising:providing a core; and arranging the plurality of strands so as to surround the core and form the wire rope.
- 23. A method of making a torque balanced, stainless steel wire rope, comprising:providing at least three strands comprised of stainless steel, the strands being in a mechanically stress relieved and thermally stress relieved condition and the strands comprising outer wires including outer surfaces having a compressive residual stress state; and closing the strands to form a torque balanced wire rope.
- 24. The wire rope of claim 9, wherein the wire rope comprises three strands and has a breaking strength of 275,084 psi.
- 25. The wire rope of claim 24, wherein the wire ropes has a reverse-bend fatigue number of cycles to failure of 11,681, as determined on 12 inch pitch diameter sheaves and by applying a constant tensile load of 8000 pounds on the wire rope.
- 26. The wire rope of claim 3, wherein the wire rope comprises three strands and has a breaking strength of 261,706.
- 27. The wire rope of claim 26, wherein the wire ropes has a reverse-bend fatigue number of cycles to failure of 7,848, as determined on 12 inch pitch diameter sheaves and by applying a constant tensile load of 8000 pounds on the wire rope.
Parent Case Info
This nonprovisional application claims the benefit of U.S. Provisional Application No. 60/083,800, filed May 1, 1998.
US Referenced Citations (10)
Non-Patent Literature Citations (2)
Entry |
“Thermomechanical Surface Hardening Raises Spring Life,” Advanced Materials & Processes 3/99, p. 17. |
S. R. Bhonsle et al, “Mechanical Fatigue Properties of Stress Relieved Type 302 Stainless Steel Wire,” Journal of Materials Engineering and Performance, vol. 1, No. 3, 6/92, pp. 363-369. |
Provisional Applications (1)
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Number |
Date |
Country |
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60/083800 |
May 1998 |
US |