Claims
- 1. A composite multilayer implantable structure comprising:
a first layer formed of textile material; a second layer formed of expanded polytetrafluoroethyene having a porous microstructure defined by nodes interconnected by fibrils; and an elastomeric bonding agent applied to one of said layers and disposed within the pores of said microstrcture for securing said first layer to said second layer.
- 2. A composite structure of claim 1 wherein said bonding agent is applied to one surface of said second layer.
- 3. A composite structure of claim 1 wherein said bonding agent is selected form the group consisting of urethanes, styrene/isobutylene/styrene block copolymers, silicones and combinations thereof.
- 4. A composite structure of claim 1 wherein said first layer comprises a textile pattern selected from the group comprising knits, weaves, stretch-knits, braids, non-woven textile structures and combinations thereof.
- 5. A composite structure of claim 2 wherein said first layer is placed in contact with said one surface of said second layer.
- 6. A composite structure of claim 1 wherein said first and second layers are substantially planar.
- 7. A composite structure of claim 6 wherein said first and second planar layers form a vascular patch.
- 8. A composite structure of claim 7 wherein said vascular patch includes said first layer being a blood contact layer and said second layer being a tissue contacting layer.
- 9. A composite structure of claim 1 wherein said first and second layers are substantially tubular.
- 10. A composite structure of claim 9 wherein said first and second tubular layers form an elongate tubular vascular graft.
- 11. A composite structure of claim 10 wherein said vascular graft has an inner blood-contacting second layer and an outer tissue-contacting first layer.
- 12. A composite structure of claim 10 wherein said vascular graft has an inner blood-contacting textile layer and an outer tissue-contacting non-textile layer.
- 13. A composite structure of claim 10 wherein said graft includes a plurality of longitudinally spaced crimps therealong.
- 14. A composite structure of claim 10 wherein said graft is helically wrapped with a monofilament externally therearound.
- 15. A composite structure of claim 14 wherein said monofilament comprises polypropylene.
- 16. A composite structure of claim 15 wherein said monofilament is attached by heat bonding.
- 17. A composite structure of claim 10 wherein said graft includes an external support coil helically positioned thereover.
- 18. A composite structure of claim 10 wherein said graft includes a support coil helically positioned between said first and second tubular layers.
- 19. A composite structure of claim 10 wherein said elastomeric bonding agent is self-sealing.
- 20. A composite structure of claim 10 wherein said composite tubular structure is longitudinally compressed.
- 21. A composite structure of claim 10 wherein said vascular graft has enhanced tear-resistant characteristics.
- 22. A composite structure of claim 1 wherein said textile material comprises PET and the elastomeric bonding agent is a polycarbonate urethane.
- 23. A composite structure of claim 1 wherein said composite structure further comprises a third layer.
- 24. A composite structure of claim 23 wherein said third layer is positioned adjacent said second layer.
- 25. A composite structure of claim 24 wherein said third layer is ePTFE.
- 26. A composite structure of claim 23 wherein said third layer is positioned said adjacent said first layer.
- 27. A composite structure of claim 26 wherein said third layer is formed of textile material.
- 28. A composite structure of claim 1 wherein said elastomeric bonding agent is applied to said second layer in solution.
- 29. A composite structure of claim 28 wherein said solution includes dimethylacetamide.
- 30. A composite structure of claim 1 wherein said bonding agent is a solid tubular structure.
- 31. A composite structure of claim 1 wherein said bonding agent is a powder.
- 32. A composite structure of claim 1 wherein said bond agent is applied by thermal processing means.
- 33. A method of forming a vascular prosthesis comprising the steps of:
forming an ePTFE layer having opposed surfaces comprising a microporous structure of nodes interconnected by fibrils; forming a textile layer having opposed surfaces; applying a coating of an elastomeric bonding agent to one of said opposed surfaces; and securing said ePTFE and said textile layer together with said bonding agent being disposed in said microporous structure.
- 34. A method of claim 33 wherein said applying step includes:
applying a solution of said bonding agent.
- 35. A method of claim 34 wherein said applying step further includes:
spray coating said surface of said ePTFE with said solution.
- 36. A method of forming a textile ePTFE composite graft comprising:
providing a tubular textile structure having opposed surfaces; providing a tubular ePTFE liner structure having opposed surfaces and having a microporous structure of nodes interconnected by fibrils; applying a coating of an elastomeric bonding agent to one of said opposed surfaces; and securing said textile structure and said ePTFE liner structure with said bonding agent being present in mircropores of said microporous structure.
- 37. A method of claim 36 wherein said tubular textile structure defines an inner and outer surface.
- 38. A method of claim 37 wherein said ePTFE liner structure is applied to said outer textile surface.
- 39. A method of claim 37 wherein said ePTFE liner structure is applied to said inner textile surface.
- 40. A method of forming a textile covered ePTFE graft, comprising the steps of:
providing an ePTFE tube having a microporous structure of nodes interconnected by fibrils; applying a coating of an elastomeric bonding agent to a surface of said ePTFE tube with said bonding agent being disposed within said micropores thereof; and securing a textile tube to said coated surface of said ePTFE tube.
- 41. A method of forming a composite implantable patch comprising the steps of:
providing an elongate planar ePTFE substrate, said substrate having a microporous structure defined by nodes interconnected by fibrils; applying a coating of an elastomeric bonding agent to one surface of said ePTFE substrate, said bonding agent being disposed within said micropores thereof; and securing an elongate planar textile substrate to said coated surface of said ePTFE substrate.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] The present invention claims priority to U.S. Provisional Patent Application No. 60/279,401, filed Jun. 11, 2001. The present application is being concurrently filed with Attorney Docket No. 498-270, herein incorporated by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60297401 |
Jun 2001 |
US |