Claims
- 1. A method for shaping a non-circular cross-sectional profile of flowing melt comprising the steps of:
injecting the melt into an extrusion die; in the extrusion die, flowing the melt between a shaped bushing plate and shaped profile pin to shape the melt to the non-circular cross-sectional profile; and shaping the wall thickness of the non-circular cross-sectional profile by moving a first adjustment plate having an opening of the non-circular cross-sectional profile about the pin, transverse to the flow of the melt, movement of the adjustment plate being restricted to be without rotation relative to the bushing plate.
- 2. The method of claim 1, wherein the step of shaping the wall thickness of the non-circular cross-sectional profile includes:
moving a first adjustment plate having an opening of the non-circular cross-sectional profile about the pin, transverse to the flow of the melt, movement of the adjustment plate being restricted to be along a first transverse axis
- 3. The method of claim 2, wherein the step of shaping the wall thickness of the non-circular cross-sectional profile includes:
moving a second adjustment plate orthogonal to the first adjustment plate having an opening of the non-circular cross-sectional profile about the pin, movement of the second adjustment plate being restricted to be along a single second transverse axis orthogonal to the first transverse axis
- 4. The method of claim 3, wherein the step of shaping the wall thickness of the non-circular cross-sectional profile includes:
moving the first adjustment plate in a horizontal direction transverse to the flow of the melt; and moving the second adjustment plate in the vertical direction transverse to the flow of the melt.
- 5. The method of claim 3, wherein the first and second adjustment plates are moved by adjustment screws.
- 6. An extrusion die comprising:
a bushing plate having a flow path therein shaping an exterior profile of melt flowing therethrough; a profile pin within the flow path of the bushing plate shaping an interior profile of the flowing melt; and a first adjustment plate facing the bushing plate and surrounding the profile pin and moveable in a direction transverse to the flow of the melt to provide a shift of the non-circular cross-sectional profile of the flowing melt, movement of the first adjustment plate being restricted to prevent rotation relative to the bushing plate.
- 7. The extrusion die of claim 6, wherein the first adjustment plate facing the bushing plate and surrounding the profile pin and moveable in a direction transverse to the flow of the melt to provide a shift of the non-circular cross-sectional profile of the flowing melt, movement of the first adjustment plate being restricted to be along a first transverse axis
- 8. The extrusion die of claim 6, wherein the bushing plate further comprises:
non-circular cross-sectional surfaces defining a flow path through the bushing plate to maintain the desired non-circular cross-sectional profile therethrough; and opposing protrusions at a distal end from a face of the bushing plate defining at a distal end an adjustment channel which receives shoulders of a first adjustment plate and locates the first adjustment plate therein to prevent rotation of the first adjustment plate relative to the bushing plate.
- 9. The extrusion die of claim 7, wherein the first adjustment plate further comprises:
non-circular cross-sectional surfaces defining a flow path through the first adjustment plate to maintain the desired non-circular cross-sectional profile therethrough; shoulders at a proximal end from a face of the first adjustment plate moveable within an adjusting channel of a bushing plate to prevent rotation of the first adjustment plate relative to the bushing plate; and opposing adjusting channels from a distal face which receive shoulders of a second adjustment plate and locate the second adjustment plate therein to prevent rotation of the second adjustment plate relative to the first adjustment plate.
- 10. An extrusion die as claimed in claim 7 further comprising:
a second adjustment plate facing the first adjustment plate and surrounding the profile pin moveable orthogonal to the first adjustment plate to provide an orthogonal shift of the non-circular cross-sectional profile of the flowing melt, movement of the second adjustment plate being restricted to prevent rotation relative to the first adjustment plate.
- 11. The extrusion die of claim 10, wherein the second adjustment plate further comprises:
non-circular cross-sectional surfaces defining a flow path through the second adjustment plate to maintain the desired non-circular cross-sectional profile therethrough; and opposing shoulders at a proximal end from a face of the second adjustment plate moveable within adjusting channels of a first adjustment plate to prevent rotation of the second adjustment plate relative to the first adjustment plate.
- 12. An extrusion die as claimed in claim 6 further comprising:
a first bushing plate defining a flow path to maintain the circular cross-sectional profile exterior of the flowing melt; a second bushing plate defining a flow path to shape the circular melt exterior to the desired non-circular cross-sectional profile exterior of the flowing melt; and a third bushing plate defining a flow path to maintain the desired non-circular cross-sectional profile exterior of the flowing melt.
- 13. An extrusion die as claimed in claim 6 further comprising:
a first section defining a flow path to maintain the circular cross-sectional profile interior of the flowing melt; a second section defining a flow path to shape the circular melt interior to the desired non-circular cross-sectional profile interior of the flowing melt; and a third section defining a flow path to maintain the desired non-circular cross-sectional profile interior of the flowing melt.
- 14. A bushing plate comprising:
non-circular cross-sectional surfaces defining a flow path through the bushing plate to maintain the desired non-circular cross-sectional profile therethrough; and opposing protrusions at a distal end from a face of the bushing plate defining at a distal end an adjustment channel which receives shoulders of a first adjustment plate and locates the first adjustment plate therein to prevent rotation of the first adjustment plate relative to the bushing plate.
- 15. A first adjustment plate comprising:
non-circular cross-sectional surfaces defining a flow path through the first adjustment plate to maintain the desired non-circular cross-sectional profile therethrough; shoulders at a proximal end from a face of the first adjustment plate moveable within an adjusting channel of a bushing plate to prevent rotation of the first adjustment plate relative to the bushing plate; and opposing adjusting channels from a distal face which receive shoulders of a second adjustment plate and locate the second adjustment plate therein to prevent rotation of the second adjustment plate relative to the first adjustment plate.
- 16. A second adjustment plate comprising:
non-circular cross-sectional surfaces defining a flow path through the second adjustment plate to maintain the desired non-circular cross-sectional profile therethrough; and opposing shoulders at a proximal end from a face of the second adjustment plate moveable within adjusting channels of a first adjustment plate to prevent rotation of the second adjustment plate relative to the first adjustment plate.
- 17. An apparatus for shaping a non-circular cross-sectional profile comprising:
means for injecting the circular melt into a extrusion die; means for transforming the circular melt into a non-circular cross-sectional profile; and means for adjusting the wall thickness of the non-circular cross-sectional profile.
RELATED APPLICATION
[0001] This application claims the benefit of U.S. Provisional Application No. 60/267,987, filed on Feb. 9, 2001, the entire teachings of which are incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60267987 |
Feb 2001 |
US |