Claims
- 1. A nonwoven structure comprising first fibers and second fibers:
- the first fibers comprising meltblown microfibers; and
- the second fibers consisting essentially of a single polymer or polymer alloy, and having nonuniform melt viscosity and a substantially constant melting point across their cross-sections.
- 2. The nonwoven structure of claim 1, comprising a composite nonwoven structure, the composite nonwoven structure comprising at least one layer of the first fibers and at least one layer of the second fibers.
- 3. The composite nonwoven structure of claim 2, wherein the at least one layer of the first fibers and the at least one layer of the second fibers are positioned in alternating surface to surface relationship.
- 4. The composite nonwoven structure of claim 3, wherein the second fibers comprise a member selected from the group consisting of:
- monocomponent fibers comprising thermally oxidized surfaces; and
- multicomponent fibers comprising a core and at least one concentric layer.
- 5. The composite nonwoven structure of claim 4, wherein the second fibers are differentially stainable by RuO.sub.4, the surface of the second fibers demonstrating a darker stain than interior regions of the second fibers.
- 6. The composite nonwoven structure of claim 5, wherein the second fibers are monocomponent fibers comprising thermally oxidized surfaces.
- 7. The composite nonwoven structure of claim 4, wherein the melt flow rate, of the surface of the second fibers, is at least about one third of the melt flow rate of the first fibers.
- 8. The composite nonwoven structure of claim 7, wherein the first fibers comprise a first polymer and the second fibers consist essentially of a second polymer, the first polymer and the second polymer being selected from the group consisting of similar polymers, and substantially identical polymers.
- 9. The composite nonwoven structure of claim 8, wherein the first fibers and the second fibers are hydrophobic.
- 10. The composite nonwoven structure of claim 8, wherein each of the first polymer and the second polymer is a polyolefin.
- 11. The composite nonwoven structure of claim 10, wherein the polyolefin is polypropylene.
- 12. The composite nonwoven structure of claim 11, wherein the melt flow rate of the first fibers is about 800-1200 decigrams/minute, measured according to ASTM D1238L-82, Condition FR-230/2.16, and the melt flow rate, of the surface of the second fibers, is at least about 265 decigrams/minute, measured by conversion from the Intrinsic Viscosity value.
- 13. The composite nonwoven structure of claim 12, wherein the melt flow rate, of the surface of the second fibers, is at least about 800 decigrams/minute, measured by conversion from the Intrinsic Viscosity value.
- 14. A nonwoven structure comprising first fibers and second fibers:
- the first fibers comprising meltblown microfibers; and
- the second fibers having nonuniform melt viscosity across their cross-sections;
- wherein the melt flow rate, of the surface of the second fibers, is at least about one third of the melt flow rate of the first fibers.
- 15. The nonwoven structure of claim 14, comprising a composite nonwoven structure, the composite nonwoven structure comprising at least one layer of the first fibers and at least one layer of the second fibers.
- 16. The composite nonwoven structure of claim 15, wherein the at least one layer of the first fibers and the at least one layer of the second fibers are positioned in alternating surface to surface relationship.
- 17. The composite nonwoven structure of claim 16, wherein the second fibers comprise multicomponent fibers comprising a core and at least one concentric layer.
- 18. The composite nonwoven structure of claim 16, wherein the first fibers comprise a first polymer and the surface of the second fibers comprise a second polymer, the first polymer and the second polymer being selected from the group consisting of similar polymers, and substantially identical polymers.
- 19. The composite nonwoven structure of claim 18, wherein the first fibers and the surface of the second fibers are hydrophobic.
- 20. The composite nonwoven structure of claim 18, wherein the first fibers and the surface of the second fibers comprise polyolefin.
- 21. The composite nonwoven structure of claim 20, wherein the polyolefin comprises polypropylene.
- 22. The composite nonwoven structure of claim 21, wherein the melt flow rate of the first fibers is about 800-1200 decigrams/minute, measured according to ASTM D1238L-82, Condition FR-230/2.16, and the melt flow rate, of the surface of the second fibers, is at least about 265 decigrams/minute, measured by conversion from the Intrinsic Viscosity value.
- 23. The composite nonwoven structure of claim 22, wherein the melt flow rate, of the surface of the second fibers, is at least about 800 decigrams/minute, measured by conversion from the Intrinsic Viscosity value.
- 24. A method of preparing a composite nonwoven structure, comprising at least one layer of first fibers and at least one layer of second fibers,
- the first fibers comprising meltblown microfibers; and
- the second fibers consisting essentially of a single polymer or polymer alloy, and having nonuniform melt viscosity and a substantially constant melting point across their cross-sections;
- the method comprising a bonding step, of thermally bonding the at least one layer of first fibers and the at least one layer of second fibers to one another.
- 25. The method of claim 24, further comprising, prior to the bonding step, a preliminary bonding step, comprising thermally bonding carded staple fibers, to obtain the at least one layer of second fibers.
- 26. The method of claim 24, wherein the second fibers comprise spunbonded continuous filaments, the method further comprising, prior to the bonding step, preparation of the at least one layer of second fibers.
- 27. The method of claim 24, wherein the bonding step comprises calender bonding the at least one layer of first fibers and the at least one layer of second fibers.
- 28. The method of claim 24, wherein the first fibers and second fibers comprise polyolefin fibers.
- 29. The method of claim 28, wherein the polyolefin comprises polypropylene.
- 30. The method of claim 29, wherein the second fibers comprise spunbonded continuous filaments, the method further comprising, prior to the bonding step, preparation of the at least one layer of second fibers.
- 31. A method of preparing a composite nonwoven structure, comprising at least one layer of first fibers and at least one layer of second fibers,
- the first fibers comprising meltblown microfibers; and
- the second fibers having nonuniform melt viscosity across their cross-sections, and having surfaces characterized by a melt flow rate which is at least about one third of the melt flow rate of the first fibers;
- the method comprising a bonding step, of thermally bonding the at least one layer of first fibers and the at least one layer of second fibers to one another.
- 32. The method of claim 31, further comprising, prior to the bonding step, a preliminary bonding step, comprising thermally bonding carded staple fibers, to obtain the at least one layer of second fibers.
- 33. The method of claim 31, wherein the second fibers comprise spunbonded continuous filaments, the method further comprising, prior to the bonding step, preparation of the at least one layer of second fibers.
- 34. The method of claim 31, wherein the bonding step comprises calender bonding the at least one layer of first fibers and the at least one layer of second fibers.
- 35. The method of claim 31, wherein the first fibers and second fibers comprise polyolefin fibers.
- 36. The method of claim 35, wherein the polyolefin comprises polypropylene.
- 37. The method of claim 36, wherein the second fibers comprise spunbonded continuous filaments, the method further comprising, prior to the bonding step, preparation of the at least one layer of second fibers.
BACKGROUND OF THE INVENTION
1. Continuing Application Data
This application is a continuation-in-part of U.S. application Ser. No. 08/189,233, filed Jan. 31, 1994, and now abandoned, which is incorporated herein in its entirety, by reference thereto.
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Entry |
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Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
189233 |
Jan 1994 |
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