IP Library › Granted Patent US 9,982,812
Granted Patent B2
US 9,982,812 · App. 14/643,456 · Granted May 29, 2018

Multilayer flexible tube and methods for making same

Inventors: Wayne Edward Garver (Hudson, OH); Gerald H. Ling (Wayland, MA); Charles S. Golub (Westford, MA); Kathryn J. Morris (Tallmadge, OH); Mark F. Colton (Rootstown, OH)
Assignee: SAINT-GOBAIN PERFORMANCE PLASTICS CORPORATION
F16L11/12B29C47/0004B29C47/0023B29C47/065B29C47/067B32B1/08B32B7/12B32B27/08B32B27/18B32B27/302B32B27/304B32B27/322B32B27/34B32B27/36B32B27/40F16L11/04F16L11/045B29K2027/16B29L2023/006B32B2250/24B32B2307/536B32B2307/54Y10T428/1393
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Quick Facts
Patent No.
US 9,982,812
App. No.
14/643,456
Granted
May 29, 2018
Kind
B2
Abstract

A multilayer flexible tube includes an inner layer including a melt processable fluoropolymer, wherein the fluoropolymer includes a copolymer of a poly vinylidene fluoride (PVDF) and a hexafluoropropylene (HFP); and an outer layer including a melt processable polymer having a shore hardness less than a shore hardness of the inner layer. Further provided is a method of making the multilayer flexible tube.

Claims (25)

1. A multilayer flexible tube comprising:

an inner layer comprising a melt processable fluoropolymer, wherein the fluoropolymer comprises a copolymer of a poly vinylidene fluoride (PVDF) and a hexafluoropropylene (HFP), wherein the inner layer has an inner lumen that defines a passage for fluid to flow through; and

an outer layer comprising a melt processable polymer having a shore hardness less than a shore hardness of the inner layer, wherein the inner layer, the outer layer, or combination thereof further comprises a co-agent comprising bis-phenol AF, triaryl isocyanurate (TAIC), Triaryl cyanurate (TAC), an organic peroxide, or combination thereof.

2. The multilayer tube of claim 1 , wherein the molar ratio of the poly vinylidene fluoride to the hexafluoropropylene in the copolymer is 1:99 to 99:1.

3. The multilayer flexible tube of claim 1 , wherein the copolymer of the poly vinylidene fluoride and the hexafluoropropylene has a shore D of less than about 95.

4. The multilayer flexible tube of claim 1 , wherein the outer layer is a thermoplastic polyurethane, a thermoset urethane, a fluoroelastomer, EPDM, a thermoplastic EPDM composite, a styrene-ethylene based copolymer, a styrene isoprene based copolymer, a polyolefin elastomer, a PVC, an isoprene, a thermoplastic isoprene composite, a blend, an alloy, or any combination thereof.

5. The multilayer flexible tube of claim 1 , wherein the outer layer has a shore A hardness of less than about 80.

6. The multilayer flexible tube of claim 1 , wherein the inner layer is disposed directly on the outer layer.

7. The multilayer flexible tube of claim 1 , further comprising a tie layer disposed between the inner layer and the outer layer.

8. The multilayer flexible tube of claim 7 , wherein the tie layer comprises a thermoplastic urethane, a blend of a thermoplastic urethane with a fluoropolymer copolymer of hexafluoropropylene and poly vinylidene fluoride, or a combination thereof.

9. The multilayer flexible tube of claim 7 , wherein the tie layer further comprises an adhesion promoter, the adhesion promoter comprising a maleic anhydride grafted PVDF, a silane-based adhesion promoter, an epoxy-based chemical, an EVOH, acrylate polymer, an acrylate copolymer, an acetal copolymer, a thermoplastic with polarity, or combination thereof.

10. The multilayer flexible tube of claim 1 , wherein the flexible tube has a resistance to fuel permeation of less than about 15 g/day/m 2 , when measured by SAE J30 and SAE J1737.

11. The multilayer flexible tube of claim 1 , wherein the multilayer flexible tube has a flexural modulus of at least about 10,000 psi.

12. The multilayer flexible tube of claim 1 , wherein the inner layer and the outer layer are resistant to layer separation after exposure to fuel after at least 2 weeks at 110° F.

13. The multilayer flexible tube of claim 1 , wherein the multilayer flexible tube is a fuel tube, a peristaltic pump tube, or a chemically resistant liquid transfer tube.

14. The multilayer flexible tube of claim 1 , wherein the multilayer flexible tube is irradiated.

15. A multilayer flexible tube comprising:

an inner layer comprising a melt processable fluoropolymer, wherein the fluoropolymer comprises a copolymer of a poly vinylidene fluoride (PVDF) and a hexafluoropropylene (HFP), wherein the inner layer has an inner lumen that defines a passage for fluid to flow through;

an outer layer comprising a melt processable polymer having a shore hardness less than a shore hardness of the inner layer, wherein the inner layer, the outer layer, or combination thereof further comprises a co-agent comprising bis-phenol AF, triaryl isocyanurate (TAIC), Triaryl cyanurate (TAC), an organic peroxide, or combination thereof; and

a tie layer disposed between the inner layer and the outer layer, wherein the tie layer comprises a thermoplastic urethane, a blend of a thermoplastic urethane with a fluoropolymer copolymer of hexafluoropropylene and poly vinylidene fluoride, or a combination thereof.

16. The multilayer flexible tube of claim 15 , wherein the outer layer is a thermoplastic polyurethane, a thermoset urethane, a fluoroelastomer, EPDM, a thermoplastic EPDM composite, a styrene-ethylene based copolymer, a styrene isoprene based copolymer, a polyolefin elastomer, a PVC, an isoprene, a thermoplastic isoprene composite, a blend, an alloy, or any combination thereof.

17. A method of making a multilayer flexible tube comprising:

providing an inner layer comprising a melt processable fluoropolymer, wherein the fluoropolymer comprises a copolymer of a poly vinylidene fluoride (PVDF) and a hexafluoropropylene (HFP), wherein the inner layer has an inner lumen that defines a passage for fluid to flow through; and

providing an outer layer comprising a melt processable polymer having a shore hardness less than a shore hardness of the inner layer, wherein the inner layer, the outer layer, or combination thereof further comprises a co-agent comprising bis-phenol AF, triaryl isocyanurate (TAIC), Triaryl cyanurate (TAC), an organic peroxide, or combination thereof.

18. The method of making the multilayer the flexible tube of claim 17 , wherein providing the inner layer and providing the outer layer includes heating the fluoropolymer to an extrusion viscosity and the polymer of the outer layer to an extrusion viscosity, wherein a difference of the extrusion viscosity of the fluoropolymer and the extrusion viscosity of the polymer is not greater than 25%.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 8, 2015
From: GARVER, WAYNE EDWARD; LING, GERALD H.; GOLUB, CHARLES S.; MORRIS, KATHRYN J.; COLTON, MARK F.
To: SAINT-GOBAIN PERFORMANCE PLASTICS CORPORATION
Reel/Frame 036022/0672 →
Continuity (2)
Provisional Application 61950602 · Mar 10, 2014
Related Publication 20150252918A1 · Sep 10, 2015