Claims
- 1. A heat-resistant plastic tube comprising:
a polyester-based elastomer which exhibits a change amount in angle of ±10° or less in a shape retainability performance test, a change rate in inner diameter of ±2% or less in a dimensional stability performance test, and a change rate in yield strength of ±30% or less in a flexibility retainability performance test.
- 2. The heat-resistant plastic tube according to claim 1, wherein the tube comprises a single layer comprising a polyester-based elastomer.
- 3. The heat-resistant plastic tube according to claim 1, wherein the tube comprises:
an inner layer comprising a polyester-based elestomer and an outer layer formed on an outside of the inner layer and comprising a crystalline polyester-based resin.
- 4. The heat-resistant plastic tube according to claim 1, wherein the tube comprises an inner layer comprising a crystalline polyester-based resin and an outer layer formed on an outside of the inner layer and comprising a polyester-based elastomer.
- 5. The heat-resistant plastic tube according to claim 1, wherein the tube comprises at least an inner layer comprising a polyester-based elastomer, an intermediate layer formed on an outside of the inner layer and comprising a crystalline polyester-basedresin, and an outer layer formed on an outside of the intermediate layer and comprising a polyester-based elastomer.
- 6. The heat-resistant plastic tube according to claim 1, wherein the tube is a fuel feed tube usable within an engine compartment of a motor vehicle.
- 7. The heat-resistant plastic tube according to claim 2, wherein the tube is a fuel feed tube usable within an engine compartment of a motor vehicle.
- 8. The heat-resistant plastic tube according to claim 3, wherein the tube is a fuel feed tube usable within an engine compartment of a motor vehicle.
- 9. The heat-resistant plastic tube according to claim 4, wherein the tube is a fuel feed tube usable within an engine compartment of a motor vehicle.
- 10. The heat-resistant plastic tube according to claim 5, wherein the tube is a fuel feed tube usable within an engine compartment of a motor vehicle.
- 11. The heat-resistant plastic tube according to claim 1, wherein the tube further comprises a bellows portion extending at least part of its length.
- 12. The heat-resistant plastic tube according to claim 2, wherein the tube further comprises a bellows portion extending at least part of its length.
- 13. The heat-resistant plastic tube according to claim 3, wherein the tube further comprises a bellows portion extending at least part of its length.
- 14. The heat-resistant plastic tube according to claim 4, wherein the tube further comprises a bellows portion extending at least part of its length.
- 15. The heat-resistant plastic tube according to claim 5, wherein the tube further comprises a bellows portion extending at least part of its length.
- 16. The heat-resistant plastic tube according to claim 3, wherein an innermost of the layers has a surface resistivity in a range of from 102 to 109 Ω/sq.
- 17. The heat-resistant plastic tube according to claim 4, wherein an innermost of the layers has a surface resistivity in a range of from 102 to 109 Ω/sq.
- 18. The heat-resistant plastic tube according to claim 5, wherein an innermost of the layers has a surface resistivity in a range of from 102 to 109 Ω/sq.
- 19. The heat-resistant plastic tube according to claim 13, wherein an innermost of the layers has a surface resistivity in a range of from 102 to 109 Ω/sq.
- 20. The heat-resistant plastic tube according to claim 14, wherein an innermost of the layers has a surface resistivity in a range of from 102 to 109 Ω/sq.
- 21. The heat-resistant plastic tube according to claim 15, wherein an innermost of the layers has a surface resistivity in a range of from 102 to 109 Ω/sq.
- 22. A manufacturing method of the heat resistant plastic tube according to claim 1, the tube having a bent portion, comprising steps of setting a body of a heat resistant plastic tube in a thermal bending mold, heating the tube body in the mold at 190° C. or higher and cooling the tube body in a state being set in the mold.
- 23. A manufacturing method of the heat-resistant plastic tube according to claim 2, the tube having a bent portion, comprising steps of setting a body of a heat resistant plastic tube in a thermal bending mold, heating the tube body in the mold at 190° C. or higher and cooling the tube body in a state being set in the mold.
- 24. A manufacturing method of the heat resistant plastic tube according to claim 3, the tube having a bent portion, comprising steps of setting a body of a heat resistant plastic tube in a thermal bending mold, heating the tube body in the mold at 190° C. or higher and cooling the tube body in a state being set in the mold.
- 25. A manufacturing method of the heat resistant plastic tube according to claim 4, the tube having a bent portion, comprising steps of setting a body of a heat resistant plastic tube in a thermal bending mold, heating the tube body in the mold at 190° C. or higher and cooling the tube body in a state being set in the mold.
- 26. A manufacturing method of the heat resistant plastic tube according to claim 5, the tube having a bent portion, comprising steps of setting a body of a heat resistant plastic tube in a thermal bending mold, heating the tube body in the mold at 190° C. or higher and cooling the tube body in a state being set in the mold.
Priority Claims (1)
Number |
Date |
Country |
Kind |
2001-220495 |
Jul 2001 |
JP |
|
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This application is a Continuation of International Patent Application Serial No. PCT/JP02/07365 filed Jul. 19, 2002, which was published in Japanese on Jan. 30, 2003 as WO 03/008850 A1.
Continuations (1)
|
Number |
Date |
Country |
Parent |
PCT/JP02/07365 |
Jul 2002 |
US |
Child |
10761508 |
Jan 2004 |
US |