Claims
- 1. A process for the production of a biaxially oriented tubular material having a wall thickness of at least 0.215 mm which comprises the steps of:
- providing an expanding former having an exterior surface;
- deforming a hollow workpiece of wall thickness at least 4 mm having an interior surface and an exterior surface and comprising an orientable thermoplastic polymer, by drawing it with application of heat directly over said exterior surface of said expanding former, in the solid phase, without the application of any liquid or lubricant to said interior surface of the workpiece during deformation thereof; and
- drawing said deformed workpiece off said expanding former using a tension transmitting mechanism exerting a draw tension sufficient to draw the workpiece over the former but insufficient to cause tensile failure of the workpiece to produce drawn biaxially oriented material in tubular form having a wall thickness of at least 0.215 mm;
- the process being carried out without the workpiece contacting an external solid surface at the deformation, such that there is no external force acting on the workpiece in a direction perpendicular to the axis of the workpiece at the deformation.
- 2. A process according to claim 1, wherein the thermoplastic polymer is a semi-crystalline polymer.
- 3. A process according to claim 2, wherein the thermoplastic polymer is a polyolefin.
- 4. A process according to claim 3, wherein the thermoplastic polymer is a polyethylene.
- 5. A process according to claim 3, wherein the thermoplastic polymer is a polypropylene.
- 6. A process according to claim 2, wherein the inner hoop draw ratio is at least 1.2.
- 7. A process according to claim 2, wherein the inner hoop draw ratio is at least 1.5.
- 8. A process according to claim 2, wherein the axial draw ratio is at least 2.
- 9. A process according to claim 8, wherein the axial draw ratio is at least 3.
- 10. A process according to claim 5, wherein the axial draw ratio is less than 8.
- 11. A process according to claim 1, wherein the thermoplastic polymer is a crystallizable polymer.
- 12. A process according to claim 11, wherein the thermoplastic polymer is a polyester.
- 13. A process according to claim 11, wherein the inner hoop draw ratio is at least 2.
- 14. A process according to claim 13, wherein the inner hoop draw ratio is at least 3.
- 15. A process according to claim 11, wherein the axial draw ratio is at least 2.
- 16. A process according to claim 11, wherein the thermoplastic polymer is poly(vinyl chloride).
- 17. A process according to claim 16, wherein the inner hoop draw ratio is at least 1.2.
- 18. A process according to claim 16, wherein the inner hoop draw ratio is at least 1.5.
- 19. A process according to claim 16, wherein the ratio of the axial draw ratio to the inner hoop draw ratio is in the range 0.5 to 1.0.
- 20. A process according to claim 1, wherein the workpiece has a nose portion and the tension transmitting mechanism comprises a hauloff comprising a pair of serrated jaws in which the nose portion is gripped; a tension transmitting element having two ends wherein one end is attached to the jaws and the other end is attached to a winch or a loading station to which a turning motion or mass may be applied to apply a draw tension to the workpiece.
- 21. A process according to claim 20, wherein the tension transmitting element is selected from the group consisting of a high tensile cable, a chain, a rack and pinion mechanism, a screw mechanism and a hydraulically operated draw mechanism.
- 22. A process according to claim 1, wherein the tension transmitting mechanism comprises a pair of continuous contra-rotating friction belts.
- 23. A process according to claim 1, wherein the draw tension is from 1.1 kN up to but not including the fracture stress point of the workpiece.
- 24. A process according to claim 1, wherein the thermoplastic polymer is heated to within 60.degree. C. of its melting point prior to deformation.
- 25. A process according to claim 1, wherein the thermoplastic polymer has a weight average molecular weight of from 50,000 to 150,000 and is heated to 70.degree. C. to 100.degree. C. prior to deformation.
- 26. A process according to claim 1, wherein the thermoplastic polymer has a weight average molecular weight of above 300,000 and is heated to 70.degree. C. to 120.degree. C. prior to deformation.
- 27. A process according to claim 1, wherein the thermoplastic polymer is selected from linear homo-polymers and linear copolymers of polypropylene has a weight average molecular weight of from 150,000 to 800,000 and is heated to 20.degree. C. to 170.degree. C. prior to deformation.
- 28. A process according to claim 27, wherein the thermoplastic polymer is heated to 90.degree. C. to 130.degree. C.
- 29. A process according to claim 1, wherein the thermoplastic polymer is a polyester and it is heated to 55.degree. C. to 100.degree. C. prior to deformation.
- 30. A process according to claim 1, wherein the thermoplastic polymer is selected from homopolyoxymethylene and copolyoxymethylene and is heated to 80.degree. C. to 170.degree. C. prior to deformation.
- 31. A process according to claim 30, wherein the thermoplastic polymer is heated to 150.degree. C. to 170.degree. C.
- 32. A process according to claim 1, wherein the thermoplastic polymer is a vinylidene fluoride polymer and is heated to 80.degree. C. to 165.degree. C. prior to deformation.
- 33. A process according to claim 1, wherein the thermoplastic polymer is polyvinylchloride and it is heated to about 100.degree. C. prior to deformation.
- 34. A process according to claim 27, wherein the thermoplastic polymer is a polypropylene and is heated to about 135.degree. C. or about 155.degree. C. prior to deformation.
- 35. A process according to claim 1, wherein the thermoplastic polymer is a high density polyethylene and is heated to about 115.degree. C. prior to deformation.
- 36. A process according to claim 1, wherein said hollow workpiece has a wall thickness of 4 mm-20.5 mm.
- 37. A process according to claim 36, wherein said wall thickness is 5 mm.
Priority Claims (1)
Number |
Date |
Country |
Kind |
8827967 |
Nov 1988 |
GBX |
|
Parent Case Info
This is a Rule 60 Continuation of application Ser. No. 08/013,164, filed 2 Feb. 1993, now abandoned, which is a Rule 62 Continuation of application Ser. No. 07/887,392, filed 21 May 1992, now abandoned, which is a Rule 62 Continuation of application Ser. No. 07/767,365, filed 30 Sep. 1991, now abandoned, which is a Rule 62 Continuation of application Ser. No. 07/439,888, filed 20 Nov. 1989, now abandoned.
US Referenced Citations (10)
Foreign Referenced Citations (12)
Number |
Date |
Country |
318905 |
Dec 1969 |
AUX |
3215984 |
Mar 1985 |
AUX |
0 157 601 |
Oct 1985 |
EPX |
2 252 202 |
Jun 1975 |
FRX |
2030 348 |
Jan 1971 |
DEX |
431619 |
Jul 1935 |
GBX |
691125 |
May 1953 |
GBX |
868388 |
May 1961 |
GBX |
986003 |
Mar 1965 |
GBX |
1003243 |
Sep 1965 |
GBX |
1113136 |
May 1968 |
GBX |
1279187 |
Jun 1972 |
GBX |
Non-Patent Literature Citations (2)
Entry |
Whittington's Dictionary of Plastics, First Edition, 1968, p. 105. |
"Biaxial Orientation" Encyclopedia of Polymer Science & Technology, vol. 2, W.R.R. Pad (The Dow Chemical Company) & J. Conrad (Gaylord Associates, Inc.) Interscience Publishers 1965, pp. 339-373. |
Continuations (4)
|
Number |
Date |
Country |
Parent |
13164 |
Feb 1993 |
|
Parent |
887392 |
May 1992 |
|
Parent |
767365 |
Sep 1991 |
|
Parent |
439888 |
Nov 1989 |
|