Claims
- 1. A process for making fine metallic fibers comprising:arranging a multiplicity of metallic wires to form an assembly of the metallic wires; wrapping the assembly of the metallic wires with a wrapping material to form a wrapped assembly; inserting a plurality of the wrapped assemblies into a tube for providing a cladding; drawing the cladding for reducing the outer diameter thereof and for reducing the cross-section of each of the multiplicity of metallic wires within the cladding to transform the plurality of metallic wires into a multiplicity of fine metallic fibers; and removing the cladding for providing the multiplicity of fine metallic fibers.
- 2. A process for making fine metallic fibers as set forth in claim 1, wherein the step of arranging the multiplicity of metallic wires to form the assembly of the metallic wires includes arranging the multiplicity of metallic wires in a tight assembly with the multiplicity of metallic wires being in contact with adjacent metallic fibers.
- 3. A process for making fine metallic fibers as set forth in claim 1, wherein the step of wrapping the assembly of the metallic wires with the wrapping material to form the wrapped assembly includes helically wrapping a stranding wire about the assembly of the metallic wires to maintain the assembly of the metallic wires in a tightly stranded wrapped assembly.
- 4. A process for making fine metallic fibers as set forth in claim 1, wherein the step of wrapping the assembly of the metallic wires with the wrapping material includes wrapping the assembly of the metallic wires with a stranding wire under tension for tightly wrapping the wrapped assemblies.
- 5. A process for making fine metallic fibers as set forth in claim 1, wherein the step of wrapping the assembly of the metallic wires with the wrapping material includes wrapping the assembly of the metallic wires with a stranding wire interposed between the assembly of the metallic wires and the tube for reducing friction between the wrapped assembly and the tube to facilitate the movement of the wrapped assemblies inside the tube.
- 6. A process for making fine metallic fibers as set forth in claim 1, wherein the step of inserting the plurality of the wrapped assemblies into the tube includes simultaneously inserting the plurality of the wrapped assemblies into the tube.
- 7. A process for making fine metallic fibers as set forth in claim 1, wherein the step of inserting the plurality of the wrapped assemblies into the tube includes inserting the plurality of the wrapped assemblies into a preformed tube.
- 8. A process for making fine metallic fibers as set forth in claim 1, wherein the step of inserting the plurality of the wrapped assemblies into the tube includes forming a tube about the plurality of the wrapped assemblies.
- 9. A process for making fine metallic fibers as set forth in claim 1, wherein the step of removing the cladding comprises mechanically removing the cladding for providing the multiplicity of fine metallic fibers.
- 10. A process for making fine metallic fibers as set forth in claim 1, wherein the step of removing the cladding comprises chemically removing the cladding for providing the multiplicity of fine metallic fibers.
- 11. A process for making fine metallic fibers comprising:coating a multiplicity of metallic wires with a coating material; arranging a multiplicity of metallic wires in a substantially parallel configuration to form an assembly of the metallic wires; wrapping the assembly of the metallic wires with a stranding wire to form a wrapped assembly; simultaneously inserting a plurality of the wrapped assemblies into a preformed tube for providing a cladding; drawing the cladding for reducing the outer diameter thereof and for reducing the cross-section of each of the multiplicity of metallic wires within the cladding to transform the multiplicity of metallic wires into a multiplicity of fine metallic fibers; removing the cladding from the multiplicity of metallic fibers and the coating material; and removing the coating material for providing the multiplicity of fine metallic fibers.
- 12. A process for making fine metallic fibers as set forth in claim 11, wherein the step of coating the multiplicity of metallic wires with a coating material includes electroplating the coating material onto the multiplicity of metallic wires.
- 13. A process for making fine metallic fibers as set forth in claim 11, wherein the step of arranging the multiplicity of metallic wires to form the assembly of the metallic wires includes arranging the multiplicity of metallic wires in a tight assembly with the multiplicity of metallic wires being in contact with adjacent metallic fibers.
- 14. A process for making fine metallic fibers as set forth in claim 11, wherein the step of wrapping the assembly of the metallic wires with the stranding wire to form the wrapped assembly includes helically wrapping the stranding wire about the assembly of the metallic wires to maintain the assembly of the metallic wires in a tightly wrapped assembly.
- 15. A process for making fine metallic fibers as set forth in claim 11, wherein the step of wrapping the assembly of the metallic wires with the stranding wire includes wrapping the assembly of the metallic wires with the stranding wire under tension for tightly wrapping the wrapped assemblies.
- 16. A process for making fine metallic fibers as set forth in claim 11, wherein the step of wrapping the assembly of the metallic wires with the stranding wire includes wrapping the assembly of the metallic wires with the stranding wire being interposed between the assembly of the metallic wires and the tube for reducing friction between the wrapped assembly and the tube to facilitate the movement of the wrapped assemblies inside the tube.
- 17. A process for making fine metallic fibers as set forth in claim 11, including the step of treating an interior of the continuous tube with a release material to inhibit chemical interaction between the continuous tube and the multiplicity of coated metallic wires within the continuous tube.
- 18. A process for making fine metallic fibers as set forth in claim 11, wherein the step of inserting the plurality of the wrapped assemblies into the tube includes simultaneously inserting the plurality of the wrapped assemblies into a preformed tube.
- 19. A process for making fine metallic fibers as set forth in claim 11, wherein the step of inserting the plurality of the wrapped assemblies into the tube includes forming a tube about the plurality of the wrapped assemblies.
- 20. A process for making fine metallic fibers as set forth in claim 11, wherein the step of drawing the cladding for reducing the outer diameter thereof comprises drawing the cladding for diffusion welding the coating material within the cladding to form a substantially unitary coating material with the multiplicity of metallic wires contained therein.
- 21. A process for making fine metallic fibers as set forth in claim 11, wherein the step of removing the cladding comprises mechanically removing the cladding for providing the multiplicity of fine metallic fibers.
- 22. A process for making fine metallic fibers as set forth in claim 11, wherein the step of removing the cladding comprises chemically removing the cladding for providing the multiplicity of fine metallic fibers.
- 23. A process for making fine metallic fibers as set forth in claim 11, wherein the step of removing the coating material includes chemically removing the coating material for providing the multiplicity of fine metallic fibers.
- 24. A process for making fine metallic fibers as set forth in claim 11, wherein the step of removing the coating material includes immersing the remainder into an acid for dissolving the coating material for providing the multiplicity of fine metallic fibers.
- 25. A process for making fine metallic fibers comprising:coating a multiplicity of metallic wires with a coating material; arranging a multiplicity of metallic wires in a substantially parallel configuration to form an assembly of the metallic wires; wrapping the assembly with a wrapping material to form a wrapped assembly with the wrapping material being the same material as the coating material; cladding the plurality of the wrapped assemblies with a cladding material for providing a cladding with the cladding material being the same material as the coating material; drawing the cladding for reducing the outer diameter thereof and for reducing the cross-section of each of the multiplicity of metallic wires within the cladding to transform the multiplicity of metallic wires into a multiplicity of fine metallic fibers; and simultaneously removing the coating material and the wrapping material and the cladding material for providing the multiplicity of fine metallic fibers.
- 26. A process for making ultra fine metallic fibers comprising:coating a multiplicity of metallic wires with a coating material; arranging a multiplicity of metallic wires in a substantially parallel configuration to form an assembly of the metallic wires; wrapping the assembly of the metallic wires with a wrapping material to form a wrapped assembly with the wrapping material being of the same type of material as the coating material; cladding a plurality of the first wrapped assembly with a cladding material to provide a cladding with the cladding material being of the same type of material as the coating material; drawing the cladding for reducing the outer diameter thereof and for reducing the cross-section of each of the multiplicity of metallic wires within the first cladding and for diffusion welding the coating material and the wrapping material and the cladding material to form a substantially unitary first support with the multiplicity of metallic wires contained therein; drawing the support for reducing the diameter thereof and for reducing the corresponding cross-section of each of the multiplicity of metallic wires contained therein to transform the multiplicity of metallic wires into a multiplicity of fine metallic fibers; and simultaneously removing the diffusion welded coating material and the wrapping material and the cladding material for providing the multiplicity of fine metallic fibers.
- 27. A process for making fine metallic fibers comprising:coating a multiplicity of metallic wires with a coating material; arranging a multiplicity of metallic wires in a substantially parallel configuration to form an assembly of the metallic wires; wrapping the assembly of the metallic wires with a stranding wire to form a wrapped assembly; simultaneously inserting a plurality of the wrapped assemblies into a preformed tube for providing a cladding; drawing the cladding for reducing the outer diameter thereof and for reducing the cross-section of each of the multiplicity of metallic wires within the cladding to transform the multiplicity of metallic wires into a multiplicity of fine metallic fibers and for diffusion welding the coating material within the cladding to form a substantially unitary coating material with the multiplicity of fine metallic fibers contained therein; removing the cladding to provide a remainder comprising the diffusion welded coating material with the multiplicity of metallic wires contained therein; and removing the diffusion welded coating material from the remainder for providing the multiplicity of fine metallic fibers.
- 28. A process for making fine metallic fibers comprising:coating a multiplicity of metallic wires with a coating material; arranging a multiplicity of metallic wires in a substantially parallel configuration to form an assembly of the metallic wires; wrapping the assembly of the metallic wires with a stranding wire to form a wrapped assembly; simultaneously inserting a plurality of the wrapped assembly into a preformed tube for providing a cladding; drawing the cladding for reducing the outer diameter thereof and for reducing the cross-section of each of the multiplicity of metallic wires within the cladding and for diffusion welding the coating material within the cladding to form a substantially unitary coating material with the multiplicity of metallic wires contained therein; removing the cladding to provide a remainder comprising the diffusion welded coating material with the multiplicity of metallic wires contained therein; drawing the remainder for reducing the diameter thereof and for reducing the corresponding cross-section of each of the multiplicity of metallic wires contained therein to transform the multiplicity of metallic wires into a multiplicity of fine metallic fibers; and removing the diffusion welded coating material from the remainder for providing the multiplicity of fine metallic fibers.
- 29. A process for making ultra fine metallic fibers comprising:coating a multiplicity of metallic wires with a coating material; arranging a multiplicity of metallic wires in a substantially parallel configuration to form an assembly of the metallic wires; wrapping the assembly of the metallic wires with a stranding wire to form a first wrapped assembly; simultaneously inserting a plurality of the first wrapped assembly into a first tube for providing a first cladding; drawing the first cladding for reducing the outer diameter thereof and for reducing the cross-section of each of the multiplicity of metallic wires within the first cladding and for diffusion welding the coating material within the first cladding to form a substantially unitary coating material with the multiplicity of metallic wires contained therein; removing the first cladding to provide a first remainder comprising the diffusion welded coating material with the multiplicity of metallic wires contained therein; drawing the first remainder for reducing the diameter thereof and for reducing the corresponding cross-section of each of the multiplicity of metallic wires contained therein to transform the multiplicity of metallic wires into a multiplicity of fine metallic fibers; assembling a plurality of the drawn first remainders in a substantially parallel configuration to form an assembly of the drawn first remainders; wrapping the assembly of the drawn first remainders with a stranding wire to form a second wrapped assembly; simultaneously inserting a plurality of the second wrapped assemblies into a second tube for providing a second cladding; drawing the second cladding for reducing the outer diameter thereof and for reducing the cross-section of each of the multiplicity of fine metallic fibers within the second cladding and for diffusion welding the coating material within the second cladding to form a substantially unitary coating material with the multiplicity of fine metallic fibers contained therein; removing the second cladding to provide a second remainder comprising the diffusion welded coating material with the multiplicity of fine metallic fibers contained therein; drawing the second remainder for reducing the diameter thereof and for reducing the corresponding cross-section of each of the multiplicity of fine metallic fibers contained therein to transform the multiplicity of fine metallic fibers into a multiplicity of ultra fine metallic fibers; and removing the diffusion welded coating material from the second remainder for providing the multiplicity of ultra fine metallic fibers.
- 30. A process for making ultra fine metallic fibers comprising:coating a multiplicity of metallic wires with a coating material; arranging a multiplicity of metallic wires in a substantially parallel configuration to form an assembly of the metallic wires; wrapping the assembly of the metallic wires with a wrapping material to form a first wrapped assembly with the wrapping material being of the same type of material as the coating material; cladding a plurality of the first wrapped assembly with a cladding material to provide a first cladding with the cladding material being of the same type of material as the coating material; drawing the first cladding for reducing the outer diameter thereof and for reducing the cross-section of each of the multiplicity of metallic wires within the first cladding and for diffusion welding the coating material and the wrapping material and the cladding material to form a substantially unitary first support with the multiplicity of metallic wires contained therein; drawing the first support for reducing the diameter thereof and for reducing the corresponding cross-section of each of the multiplicity of metallic wires contained therein to transform the multiplicity of metallic wires into a multiplicity of fine metallic fibers; assembling a plurality of the drawn first supports in a substantially parallel configuration to form an assembly of the drawn first remainders; wrapping the assembly of the drawn first supports with a wrapping material to form a second wrapped assembly with the wrapping material being of the same type of material as the coating material; cladding a plurality of the second wrapped assembly with a cladding material to provide a second cladding with the cladding material being of the same type of material as the coating material; drawing the second cladding for reducing the outer diameter thereof and for reducing the cross-section of each of the multiplicity of fine metallic fibers within the second cladding and for diffusion welding the coating material, and the wrapping material and the cladding material to form a substantially unitary second support with the multiplicity of fine metallic fibers contained therein; drawing the second support for reducing the diameter thereof and for reducing the corresponding cross-section of each of the multiplicity of fine metallic fibers contained therein to transform the multiplicity of fine metallic fibers into a multiplicity of ultra fine metallic fibers; and simultaneously removing the diffusion welded coating material and the wrapping material and the cladding material for providing the multiplicity of ultra fine metallic fibers.
- 31. A metallic fiber made by the process comprising:coating a plurality of metallic wires with a coating material; forming the plurality of metallic wires into an assembly of metallic wires; encasing the assembly of metallic wires with a wrapping material for providing a first bound assembly; forming a continuous tube about the first bound assembly for providing a first cladding; drawing the first cladding for reducing the outer diameter thereof and for reducing the cross-section of each of the plurality of metallic wires within the first cladding and for diffusion welding the coating material and the wrapping material within the first cladding to form a substantially unitary coating material with the plurality of metallic wires contained therein; mechanically removing the tube to provide a first remainder comprising the diffusion welded coating material and the wrapping material with the plurality of metallic wires contained therein; drawing the first remainder for reducing the diameter thereof and for reducing the corresponding cross-section of each of the plurality of metallic wires contained therein to transform the plurality of metallic wires into a plurality of fine metallic fibers; assembling a plurality of the drawn first remainders; forming a continuous tube about the assembly of drawn first remainders for providing a second cladding; encasing the assembly of the drawn first remainders with a wrapping material for providing a second bound assembly; forming a continuous tube about the second bound assembly for providing a second cladding; drawing the second cladding for reducing the outer diameter thereof and for reducing the cross-section of each of the plurality of fine metallic fibers within the second cladding and for diffusion welding the coating material and the wrapping material within the second cladding to form a substantially unitary coating material with the plurality of fine metallic fibers contained therein; mechanically removing the tube to provide a second remainder comprising the diffusion welded coating material and the wrapping material with the plurality of fine metallic fibers contained therein; drawing the second remainder for reducing the diameter thereof and for reducing the corresponding cross-section of each of the plurality of fine metallic fibers contained therein to transform the plurality of fine metallic fibers into a plurality of ultra fine metallic fibers; and removing the diffusion welded coating material and the wrapping material from the remainder for providing the plurality of ultra fine metallic fibers.
- 32. The metallic fiber of claim 31, wherein the fiber has a diameter of about 0.06 microns or less.
- 33. The metallic fiber of claim 32, wherein the fiber has a diameter of 0.06 microns.
- 34. The metallic fiber of claim 31, wherein the fiber is stainless steel.
- 35. A metallic fiber made by the process comprising of:coating a plurality of metallic wires with a coating material; forming the plurality of metallic wires into an assembly of metallic wires; encasing the assembly of metallic wires with a wrapping material for providing a bound assembly; forming a continuous tube about the bound assembly for providing a cladding; drawing the cladding for reducing the outer diameter thereof and for reducing the cross-section of each of the plurality of metallic wires within the cladding; removing the tube to provide a remainder comprising the coating material and the wrapping material with the plurality of metallic wires contained therein; drawing the remainder for reducing the diameter thereof and for reducing the corresponding cross-section of each of the plurality of metallic wires contained therein to transform the plurality of metallic wires into a plurality of metallic fibers; removing the coating material and the wrapping material from the remainder for providing the plurality of metallic fibers.
- 36. The metallic fiber of claim 35, wherein the fiber has a diameter of about 0.06 microns or less.
- 37. The metallic fiber of claim 36, wherein the fiber has a diameter of 0.06 microns.
- 38. The metallic fiber of claim 35, wherein the fiber is stainless steel.
- 39. A metallic nanofiber comprising a drawn metallic fiber having a diameter of about 0.06 microns or less.
- 40. The metallic nanofiber of claim 39, wherein the fiber has a diameter of 0.06 microns.
- 41. The metallic nanofiber of claim 39, wherein the fiber is stainless steel.
CROSS-REFERENCE TO RELATED APPLICATIONS
This is a continuation-in-part of U.S. patent application Ser. No. 09/190,723 filed Nov. 12, 1998 now U.S. Pat. No. 6,112,395. U.S. patent application Ser. No. 09/190,723 filed Nov. 12, 1998 claims benefit of U.S. Provisional application serial No. 60/065,363 filed Nov. 12, 1997. All subject matter set forth in application Ser. No. 09/190,723 and application serial No. 60/065,363 is hereby incorporated by reference into the present application as if fully set forth herein.
US Referenced Citations (26)
Provisional Applications (1)
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Date |
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60/065363 |
Nov 1997 |
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Continuation in Parts (1)
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Number |
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09/190723 |
Nov 1998 |
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09/654980 |
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