IP Library Granted Patent US 9,868,241
Granted Patent B1
US 9,868,241 · App. 14/478,939 · Granted Jan 16, 2018

Extrusion process for tubular member

Inventor: William A. Coulson (Fort Collins, CO)
Assignee: WilMarc Holdings, LLC.
B29C47/0023B29C47/20B29C47/8835B29C47/8895B29C47/903B29C47/905B29D23/00B29K2101/00B29L2023/00
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Quick Facts
Patent No.
US 9,868,241
App. No.
14/478,939
Granted
Jan 16, 2018
Kind
B1
Abstract

An extrusion system for the production of polymeric tubes and a method of extruding polymeric tubes which reduce or obviate deformation or collapse of the polymeric tube upon egress from a die of an extruder.

Claims (53)

1. An extrusion system, comprising:

a perforated tubular member having a perforated tubular member length disposed between a perforated tubular member first end and a perforated tubular member second end, said perforated tubular member having a perforated tubular member external surface and a perforated tubular member internal surface defining a perforated tubular member passage between said perforated tubular member first and second ends; and

a fluid injector including:

a fluid injector central bore wall defining a fluid injector central bore aligned with said perforated tubular member internal surface; and

a fluid injector internal annular flow path which inwardly tapers to terminate in an annular outlet disposed about said fluid injector central bore adjacent said perforated tubular member first end, said annular outlet aligned with said perforated tubular member internal surface proximate said perforated tubular member first end to conduct an amount of coolant to said perforated tubular member internal surface.

2. The system of claim 1 , wherein said fluid injector comprises a pair of annular rings which, upon mated engagement, define said fluid injector central bore wall, and said fluid injector internal annular flow path which inwardly tapers to terminate in said annular outlet disposed about said fluid injector central bore.

3. The system of claim 2 , further comprising a bath having a bath interior space, said perforated tubular member coupled to said bath to locate said perforated tubular member second end a distance within said bath interior space.

4. The system of claim 3 , further comprising an extruder configured to extrude a polymeric tube, said polymeric tube passing through said fluid injector central bore into said perforated tubular member passage and into said bath interior space.

5. The system of claim 4 , wherein said bath comprises a level of coolant in said bath interior space exceeding a height of said perforated tubular member extending said distance within said bath interior space.

6. The system of claim 5 , wherein said bath further comprises an extrudate outlet through which said polymeric tube passes to egress from said bath, said extrudate outlet having an extrudate outlet seal configured to engage said polymeric tube external surface.

7. An extrusion system, comprising:

a perforated tubular member having a perforated tubular member length disposed between a perforated tubular member first end and a perforated tubular member second end, said perforated tubular member having a perforated tubular member external surface and a perforated tubular member internal surface defining a perforated tubular member passage between said perforated tubular member first and second ends;

a fluid injector having a fluid injector internal flow path terminating in an annular outlet disposed adjacent said perforated tubular member first end, said annular outlet aligned with said perforated tubular member internal surface proximate said perforated tubular member first end to conduct an amount of coolant to said perforated tubular member internal surface;

said fluid injector having a fluid injector bore wall defining a fluid injector central bore disposed adjacent said perforated tubular member first end, said fluid injector bore wall aligned with said perforated tubular member internal surface; and

a jacket assembly including a tubular jacket having a tubular jacket length disposed between a tubular jacket first end and a tubular jacket second end, said tubular jacket first end coupled to a retaining plate and said tubular jacket second end coupled to a mounting flange to define a jacket assembly internal space fluidically coupled to said fluid injector central bore, said retaining plate having a retaining plate bore wall which defines a retaining plate central bore aligned with said fluid injector central bore, said mounting flange having a mounting flange bore wall which defines a mounting flange central bore aligned with said fluid injector central bore.

8. The system of claim 7 , wherein said jacket assembly has an internal surface defining said jacket assembly internal space which conducts said amount of coolant to said fluid injector.

9. The system of claim 8 , further comprising an extrudate inlet seal coupled to said retaining plate bore wall configured to engage said polymeric tube external surface.

10. The system of claim 8 , further comprising a bath having a bath interior space, said perforated tubular member coupled to said bath to locate said perforated tubular member second end a distance within said bath interior space.

11. The system of claim 10 , further comprising an extruder configured to extrude a polymeric tube, said polymeric tube passing through said fluid injector central bore into said perforated tubular member passage and into said bath interior space.

12. The system of claim 11 , wherein said bath comprises a level of coolant in said bath interior space exceeding a height of said perforated tubular member extending said distance within said bath interior space.

13. The system of claim 12 , wherein said bath further comprises an extrudate outlet through which said polymeric tube passes to egress from said bath, said extrudate outlet having an extrudate outlet seal configured to engage said polymeric tube external surface.

14. A method of producing an extrusion system, said method comprising:

providing a perforated tubular member having a perforated tubular member length disposed between a perforated tubular member first end and a perforated tubular member second end, said perforated tubular member having a perforated tubular member external surface and a perforated tubular member internal surface defining a perforated tubular member passage between said perforated tubular member first and second ends;

providing a fluid injector including:

a fluid injector bore wall defining a fluid injector central bore; and

a fluid injector annular internal flow path which inwardly tapers to terminate in an annular outlet disposed about said fluid injector central bore;

disposing said fluid injector central bore wall adjacent said perforated tubular member first end to align said fluid injector bore wall with said perforated tubular member internal surface disposing said annular outlet adjacent said perforated tubular member first end; and

aligning said annular outlet with said perforated tubular member internal surface of said perforated tubular member first end to conduct coolant to said perforated tubular member internal surface.

15. The method of claim 14 , further comprising configuring said fluid injector as a pair of annular rings which, upon mated engagement, define said fluid injector central bore wall and said fluid injector annular internal flow path which inwardly tapers to terminate in said annular outlet disposed about said fluid injector bore and said fluid injector bore wall defining said fluid injector central bore.

16. The method of claim 15 , further comprising coupling said perforated tubular member to a bath having a bath interior space to locate said perforated tubular member second end a distance within said bath interior space.

17. The method of claim 16 , further comprising coupling a vacuum generator to said bath, said vacuum generator adapted to generate a reduced pressure within said bath interior space.

18. The method of claim 17 , further comprising coupling an extruder configured to extrude a polymeric tube to said fluid injector, said polymeric tube passing through said fluid injector central bore into said perforated tubular member passage and into said bath interior space.

19. The method of claim 18 , further comprising flowing said of coolant through said annular outlet of said fluid injector between said perforated tubular member internal surface and a polymeric tube external surface.

20. The method of claim 19 , wherein said reduced pressure within said bath interior space acts to draw said polymeric tube external surface toward said perforated tubular member internal surface as said polymeric tube passes through said perforated tubular member passage.

21. The method of claim 20 , further comprising:

providing a jacket assembly including a tubular jacket having a tubular jacket length disposed between a tubular jacket first end and a tubular jacket second end; and

coupling said tubular jacket first end to a retaining plate and coupling said tubular jacket second end to a mounting flange to define a jacket assembly internal space fluidically coupled to said fluid injector central bore;

said retaining plate having a retaining plate bore wall which defines a retaining plate central bore aligned with said fluid injector central bore;

said mounting flange having a mounting flange bore wall which defines a mounting flange central bore aligned with said fluid injector central bore.

22. A method of producing an extrusion system, comprising:

providing a perforated tubular member having a perforated tubular member length disposed between a perforated tubular member first end and a perforated tubular member second end, said perforated tubular member having a perforated tubular member external surface and a perforated tubular member internal surface defining a perforated tubular member passage between said perforated tubular member first and second ends;

providing a fluid injector having a fluid injector bore wall defining a fluid injector central bore, and a fluid injector internal flow path terminating in an annular outlet;

disposing said fluid injector central bore wall adjacent said perforated tubular member first end to align said fluid injector bore wall with said perforated tubular member internal surface and disposing said annular outlet adjacent said perforated tubular member first end; and

aligning said annular outlet with said perforated tubular member internal surface of said perforated tubular member first end to conduct coolant to said perforated tubular member internal surface;

providing a jacket assembly including a tubular jacket having a tubular jacket length disposed between a tubular jacket first end and a tubular jacket second end; and

coupling said tubular jacket first end to a retaining plate and coupling said tubular jacket second end to a mounting flange to define a jacket assembly internal space fluidically coupled to said fluid injector central bore;

said retaining plate having a retaining plate bore wall which defines a retaining plate central bore aligned with said fluid injector central bore;

said mounting flange having a mounting flange bore wall which defines a mounting flange central bore aligned with said fluid injector central bore.

23. The method of claim 22 , further comprising disposing said perforated tubular member in a bath.

24. The method of claim 23 , further comprising coupling a vacuum generator to said bath, said vacuum generator adapted to generate a reduced pressure within a bath interior space.

25. The method of claim 24 , further comprising coupling an extruder configured to extrude a polymeric tube to said fluid injector, said polymeric tube passing through said fluid injector central bore into said perforated tubular member passage and into said bath interior space.

26. The method of claim 25 , further comprising flowing said amount of coolant through said annular outlet of said fluid injector between said perforated tubular member internal surface and a polymeric tube external surface.

27. The method of claim 26 , wherein said reduced pressure within said bath interior space acts to draw said polymeric tube external surface toward said perforated tubular member internal surface as said polymeric tube passes through said perforated tubular member passage.

Assignments (3)
CORRECTIVE ASSIGNMENT TO CORRECT THE FIRST PATENT APPLICATION NUMBER FROM 61874819 TO 61874891 PREVIOUSLY RECORDED AT REEL: 037032 FRAME: 0223. ASSIGNOR(S) HEREBY CONFIRMS THE ASSIGNMENT. Recorded Nov 19, 2015
From: ELDON JAMES CORP.
To: WILMARC HOLDINGS, LLC
Reel/Frame 037151/0545 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Nov 13, 2015
From: ELDON JAMES CORP.
To: WILMARC HOLDINGS, LLC
Reel/Frame 037032/0223 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 5, 2014
From: COULSON, WILLIAM A.
To: ELDON JAMES CORP.
Reel/Frame 033682/0075 →
Continuity (1)
Provisional Application 61874891 · Sep 6, 2013