Claims
- 1. A thermoplastic polyurethane polymer comprising the reaction product of:
(a) a first hydroxyl terminated polyether intermediate; (b) a second hydroxyl terminated intermediate selected from the group consisting of polyether, polycaprolactone, polycarbonate, polyester, and mixtures thereof; (c) at least one aromatic hydroxyl terminated chain extender; and (d) at least one polyisocyanate; wherein said first hydroxyl terminated polyether intermediate is present in larger amount than said second hydroxyl terminated intermediate, and wherein said first hydroxyl terminated polyether has a higher number average molecular weight than said second hydroxyl terminated intermediate, and wherein the weighted average number average molecular weight of said first and said second hydroxyl terminated intermediate is greater than 1200 Daltons.
- 2. The thermoplastic polyurethane polymer of claim 1 wherein said polyisocyanate in (d) is a diisocyanate.
- 3. The thermoplastic polyurethane polymer of claim 2 wherein said diisocyanate is diphenyl methane-4,4′ diisocyanate.
- 4. The thermoplastic polyurethane polymer of claim 1 wherein said first hydroxyl terminated polyether intermediate has a number average molecular weight of from about 1500 to about 4000 Daltons.
- 5. The thermoplastic polyurethane polymer of claim 4 wherein said first hydroxyl terminated polyether intermediate has a number average molecular weight of from about 1800 to about 2500 Daltons.
- 6. The thermoplastic polyurethane polymer of claim 5 wherein said first hydroxyl terminated polyether intermediate is polytetramethylene ether glycol.
- 7. The thermoplastic polyurethane polymer of claim 1 wherein said second hydroxyl terminated intermediate is a hydroxyl terminated polyether intermediate.
- 8. The thermoplastic polyurethane polymer of claim 7 wherein said second hydroxyl terminated intermediate has a number average molecular weight of from about 700 to about 1500 Daltons.
- 9. The thermoplastic polyurethane polymer of claim 8 wherein said second hydroxyl terminated intermediate is polytetramethylene ether glycol.
- 10. The thermoplastic polyurethane polymer of claim 1 wherein said polymer has a weight average molecular weight of from about 25,000 to about 300,000 Daltons.
- 11. The thermoplastic polyurethane polymer of claim 10 wherein said weight average molecular weight is from about 50,000 to about 200,000 Daltons.
- 12. The thermoplastic polyurethane polymer of claim 11 wherein said weight average molecular weight is from about 75,000 to about 150,000 Daltons.
- 13. The thermoplastic polyurethane polymer of claim 1 wherein the weighted average number average molecular weight of said first and said second hydroxyl terminated intermediate is greater than 1500 Daltons.
- 14. The thermoplastic polyurethane polymer of claim 1 wherein said aromatic hydroxyl terminated chain extender is benzene glycol (HQEE).
- 15. The thermoplastic polyurethane polymer of claim 1 wherein said aromatic hydroxyl terminated chain extender is a blend of benzene glycol (HQEE) and hydroxyl ethyl resorcinol (HER).
- 16. The thermoplastic polyurethane polymer of claim 15 wherein the mole ratio of HQEE to HER is from about 98:2 to about 50:50.
- 17. The thermoplastic polyurethane polymer of claim 16 wherein the mole ratio of HQEE to HER is from about 70:30 to about 90:10.
- 18. The thermoplastic polyurethane polymer of claim 1 wherein the weight ratio of said first hydroxyl terminated polyether intermediate to said second hydroxyl terminated intermediate is from about 60:40 to about 90:10.
- 19. The thermoplastic polyurethane polymer of claim 18 wherein the weight ratio of said first hydroxyl terminated polyether intermediate to said second hydroxyl terminated intermediate is from about 70:30 to about 85:15.
- 20. A melt spun thermoplastic fiber comprising the reaction product of:
(a) a TPU polymer formed by the reaction of:
(i) a first hydroxyl terminated polyether intermediate; (ii) a second hydroxyl terminated intermediate selected from the group consisting of polyether, polycaprolactone, polycarbonate, polyester, and mixtures thereof; (iii) at least one aromatic hydroxyl terminated chain extender; and (iv) at least one polyisocyanate; wherein said first hydroxyl terminated polyether intermediate is present in larger amount than said second hydroxyl terminated intermediate, and wherein said first hydroxyl terminated polyether has a higher number average molecular weight than said second hydroxyl terminated intermediate, and wherein the weighted average number average molecular weight of said first and said second hydroxyl terminated intermediate is greater than 1200 Daltons; and (b) a crosslinking agent made by reacting (i) a hydroxyl terminated polyol selected from the group consisting of polyether, polyester, polycaprolactone, polycarbonate and mixtures thereof; and (ii) at least one polyisocyanate.
- 21. The fiber of claim 20 wherein said polyisocyanate in (a) (iv) and (b) (ii) is a diisocyanate.
- 22. The fiber of claim 21 wherein said diisocyanate is diphenyl methane-4,4′ diisocyanate.
- 23. The fiber of claim 20 wherein said first hydroxyl terminated polyether intermediate in (a) (i) has a number average molecular weight of from about 1500 to about 4000 Daltons.
- 24. The fiber of claim 23 wherein said first hydroxyl terminated polyether intermediate has a number average molecular weight of from about 1800 to about 2500 Daltons.
- 25. The fiber of claim 24 wherein said first hydroxyl terminated polyether intermediate is polytetramethylene ether glycol.
- 26. The fiber of claim 20 wherein said fiber has a weight average molecular weight of from about 200,000 to about 800,000 Daltons.
- 27. The fiber of claim 26 wherein said fiber has a weight average molecular weight of from about 250,000 to about 500,000 Daltons.
- 28. The fiber of claim 27 wherein said fiber has a weight average molecular weight of from about 300,000 to about 450,000 Daltons.
- 29. The fiber of claim 20 wherein said second hydroxyl terminated intermediate in (a) (ii) is a hydroxyl terminated polyether intermediate.
- 30. The fiber of claim 29 wherein said second hydroxyl terminated intermediate has a number average molecular weight of from about 700 to about 1500 Daltons.
- 31. The fiber of claim 30 wherein said second hydroxyl terminated intermediate is polytetramethylene ether glycol.
- 32. The fiber of claim 20 wherein the weighted average number average molecular weight of said first and said second hydroxyl terminated intermediate is greater than 1500 Daltons.
- 33. The fiber of claim 20 wherein said aromatic hydroxyl terminated chain extender in (a) (iii) is benzene glycol (HQEE).
- 34. The fiber of claim 20 wherein said aromatic hydroxyl terminated chain extender in (a) (iii) is a blend of benzene glycol (HQEE) and hydroxyl ethyl resorcinol (HER).
- 35. The fiber of claim 34 wherein the mole ratio of HQEE to HER is from about 98:2 to about 50:50.
- 36. The fiber of claim 35 wherein the mole ratio of HQEE to HER is from about 70:30 to about 90:10.
- 37. The fiber of claim 20 wherein the weight ratio of said first hydroxyl terminated polyether intermediate in (a) (i) to said second hydroxyl terminated intermediate in (a) (ii) is from about 60:40 to about 90:10.
- 38. The fiber of claim 37 wherein the weight ratio of said first hydroxyl terminated polyether intermediate to said second hydroxyl terminated intermediate is from about 70:30 to about 85:15.
- 39. The fiber of claim 1 wherein said crosslinking agent in (b) has a number average molecular weight of from about 1,000 to about 10,000 Daltons.
- 40. The fiber of claim 39 wherein said crosslinking agent has a number average molecular weight of from about 1,200 to about 4,000 Daltons.
- 41. The fiber of claim 40 wherein said crosslinking agent has a number average molecular weight of from about 1,500 to about 2,800 Daltons.
- 42. The fiber of claim 20 wherein said crosslinking agent in (b) is used at a level of from 5.0 to about 20.0 weight percent of the total weight of said TPU polymer and said crosslinking agent.
- 43. The fiber of claim 42 wherein the level of said crosslinking agent is from about 8.0 to about 15 weight percent.
- 44. The fiber of claim 43 wherein the level of said crosslinking agent is from about 10.0 to about 13.0 weight percent.
- 45. The melt spun fiber of claim 20 when made into a size of 40 denier will have greater than 1.6 weight percent dye pickup when dyed with a disperse dye at 130° C. for 60 minutes.
- 46. The melt spun fiber of claim 45 having greater than 2.0 weight percent dye pickup when dyed with a disperse dye at 130° C. for 60 minutes.
- 47. The melt spun fiber of claim 20 having a size of less than 240 denier.
- 48. The melt spun fiber of claim 47 having a size of from about 10 denier to less than 240 denier.
- 49. The melt spun fiber of claim 20 when made into a size of 40 denier retains greater than 50 percent of its original tenacity and power after exposure for 7 hours at 70° C. in an 8% chlorine bleach solution.
- 50. The melt spun fiber of claim 49 which retains greater than 60 percent of its original tenacity and greater than 80% of its original power after exposure for 7 hours at 70° C. in an 8% chlorine bleach solution.
- 51. A process for producing melt spun thermoplastic polyurethane fibers comprising:
(a) melting a TPU polymer formed by the reaction of:
(i) a first hydroxyl terminated polyether intermediate; (ii) a second hydroxyl terminated intermediate selected from the group consisting of polyether, polycaprolactone, polycarbonate, polyester, and mixtures thereof, (iii) at least one aromatic hydroxyl terminated chain extender; and (iv) at least one polyisocyanate; wherein said first hydroxyl terminated polyether intermediate is present in larger amount than said second hydroxyl terminated intermediate, and wherein said first hydroxyl terminated polyether has a higher number average molecular weight than said second hydroxyl terminated intermediate, and wherein the weighted average number average molecular weight of said first and said second hydroxyl terminated intermediate is at least 1200 Daltons; (b) adding to said melted thermoplastic polyurethane polymer at least one crosslinking agent made from reacting (i) a hydroxyl terminated polyol selected from the group consisting of polyether, polyester, polycaprolactone, polycarbonate, and mixtures thereof, and (ii) at least one polyisocyanate; (c) feeding said melted thermoplastic polyurethane polymer mixed with said crosslinking agent to at least one spinneret; (d) passing said melted polymer containing said crosslinking agent through said spinneret to produce melt spun fibers; (e) cooling said fibers; and (f) winding said fibers onto bobbins.
- 52. The process of claim 51 wherein said crosslinking agent is added to said melted thermoplastic polyurethane polymer in said extruder.
- 53. The process of claim 51 wherein said crosslinking agent is added to said melted polyether thermoplastic polyurethane polymer after said polymer exits said extruder.
- 54. The process of claim 53 wherein said crosslinking agent and said polymer are mixed with a dynamic mixer.
- 55. The process of claim 53 wherein said crosslinking agent and said polymer are mixed with a static mixer.
- 56. The process of claim 51 wherein said crosslinking agent is made from reacting a polyester or polyether hydroxyl terminated polyol and diisocyanate.
- 57. The process of claim 56 wherein said crosslinking agent has a number average molecular weight of from about 1,500 to about 2,800 Daltons.
- 58. The process of claim 51 wherein said bobbins are wound at a speed of from about 100 to about 3000 meters per minute.
- 59. The process of claim 58 wherein said bobbins are wound at a speed of from about 300 to about 1200 meters per minute.
- 60. The process of claim 51 wherein said fibers have a size less than 240 denier.
- 61. The process of claim 60 wherein said fibers have a size of from about 10 to less than about 240 denier.
- 62. The process of claim 54 wherein said dynamic mixer is attached to the exit end of said extruder.
- 63. The process of claim 62 wherein said dynamic mixer comprises a feed screw, a barrel and mixing pins, wherein said feed screw rotates within said barrel and said mixing pins are attached to said barrel and extending toward the centerline of said feed screw.
- 64. The process of claim 63 wherein said dynamic mixer produces a substantially plug flow stream with negligible back mixing.
- 65. The process of claim 51 wherein said melted polymer and said crosslinking agent have reached greater than 20 percent reaction completion as they exit said spinneret, as evidenced by the disappearance of NCO groups.
- 66. The process of claim 65 wherein reaction is from about 40 percent to about 50 percent complete.
- 67. An article comprising thermoplastic polyurethane melt spun fibers, said fibers derived from the reaction product of:
(a) a TPU polymer formed by the reaction of:
(i) a first hydroxyl terminated polyether intermediate; (ii) a second hydroxyl terminated intermediate selected from the group consisting of polyether, polycaprolactone, polycarbonate, polyester, and mixtures thereof; (iii) at least one aromatic hydroxyl terminated chain extender; and (iv) at least one polyisocyanate; wherein said first hydroxyl terminated polyether intermediate is present in larger amount than said second hydroxyl terminated intermediate, and wherein said first hydroxyl terminated polyether has a higher number average molecular weight than said second hydroxyl terminated intermediate, and wherein the weighted average number average molecular weight of said first and said second hydroxyl terminated intermediate is greater than 1200 Daltons; and (b) a crosslinking agent made by reacting (i) a hydroxyl terminated polyol selected from the group consisting of polyether, polyester, polycaprolactone, polycarbonate and mixtures thereof; and (ii) at least one polyisocyanate.
- 68. The article of claim 67 comprising from 1 to 60 weight percent of said thermoplastic polyurethane melt spun fibers.
- 69. The article of claim 68 comprising from 40 to 99 weight percent of a fiber selected from the group consisting of cotton, nylon and polyester.
- 70. The article of claim 69 comprising from 40 to 99 weight percent polyester.
- 71. The article of claim 70 which is dyed with a dispersive dye.
- 72. The article of claim 67 which is bleach resistant as evidenced by the thermoplastic polyurethane melt spun fibers retaining greater than 50 percent of their original tenacity and power after exposure for 7 hours at 70° C. in an 8% chlorine bleach solution.
- 73. The article of claim 72 wherein said thermoplastic polyurethane melt spun fibers retains greater than 60 percent of their original tenacity and greater than 80 percent of their original power after exposure for 7 hours at 70° C. in an 8% chlorine bleach solution.
- 74. The article of claim 73 wherein said article is swim wear.
CROSS REFERENCE
[0001] This patent application is filed pursuant to and claims priority from Provisional Application No. 60/483,823 filed on Jun. 30, 2003.
Provisional Applications (1)
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Number |
Date |
Country |
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60483823 |
Jun 2003 |
US |