Device for guiding a film tube
US-11975471-B2 · May 7, 2024 · US
US11833726B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-11833726-B2 |
| Application number | US-202017128340-A |
| Country | US |
| Kind code | B2 |
| Filing date | Dec 21, 2020 |
| Priority date | Dec 23, 2010 |
| Publication date | Dec 5, 2023 |
| Grant date | Dec 5, 2023 |
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A system and method are presented in which a flow of plastic is extruded to obtain nano-sized features by forming multiple laminated flow streams, flowing in parallel through the non-rotating extrusion system. Each of the parallel laminated flow streams are subjected to repeated steps in which the flows are compressed, divided, and overlapped to amplify the number of laminations. The parallel amplified laminated flows are rejoined to form a combined laminated output with nano-sized features. The die exit is formed to provide a tubular shape.
Opening claim text (preview).
What is claimed is: 1. A micro-layer tubular extrusion product, comprising: multiple solidified ribbon shaped flow streams each including multiple laminated flow streams arranged to flow in parallel, each solidified ribbon shaped flow stream having two ends, the two ends are opposing surfaces that are parallel to the flow stream, wherein one end of one solidified ribbon shaped flow stream is bonded to one end of another solidified ribbon shaped flow stream and the bonded multiple solidified ribbon shaped flow streams form the micro-layer tubular extrusion product, the ends of the respective ribbon-shaped flow streams which are bonded to another being the opposing surfaces that are parallel to the flow stream which are adjacent to and in direct contact with one another. 2. The micro-layer tubular extrusion product of claim 1 , wherein at least one of the multiple solidified ribbon shaped flow streams forms an inner annular segment and at least one other of the multiple solidified ribbon shaped flow streams forms an outer annular segment. 3. The micro-layer tubular extrusion product of claim 2 , wherein the bonded adjacent ends of the respective ribbon-shaped flow streams which are bonded to another of the inner annular segment and the bonded adjacent ends of the respective ribbon-shaped flow streams which are bonded to another of the outer annular segment are staggered relative to one another. 4. The micro-layer tubular extrusion product of claim 2 , wherein each of the inner and outer annular segments are skewed from a parallel direction of the multiple parallel laminated flow streams at a pre-determined helical pitch angle relative to a central axis of the micro-layer tubular extrusion product. 5. The micro-layer tubular extrusion product of claim 2 , wherein at least one of the multiple solidified ribbon shaped flow streams include at least one micro-layer including micro-sized or nano-sized features. 6. The micro-layer tubular extrusion product of claim 5 , wherein the at least one micro-layer comprises an array of micro-layers, each micro-layer being offset from an adjacent micro-layer by a predetermined angle degree around a central axis of the micro-layer tubular extrusion product. 7. The micro-layer tubular extrusion product of claim 5 , wherein the at least one micro-layer comprises two micro-layers, each micro-layer being offset from another micro-layer by approximately 180 degrees around a central axis of the micro-layer tubular extrusion product. 8. The micro-layer tubular extrusion product of claim 5 , wherein the at least one micro-layer comprises three micro-layers, each micro-layer being offset from another micro-layer by approximately 120 degrees around a central axis of the micro-layer tubular extrusion product. 9. The micro-layer tubular extrusion product of claim 5 , wherein the at least one micro-layer comprises four micro-layers, each micro-layer being offset from another micro-layer by approximately 90 degrees around a central axis of the micro-layer tubular extrusion product. 10. The micro-layer tubular extrusion product of claim 5 , wherein the at least one micro-layer comprises six micro-layers, each micro-layer being offset from another micro-layer by approximately 60 degrees around a central axis of the micro-layer tubular extrusion product. 11. The micro-layer tubular extrusion product of claim 1 , wherein the micro-layer tubular extrusion product is cylindrical. 12. The micro-layer tubular extrusion product of claim 1 , wherein the micro-layer tubular extrusion product contains a core or substrate.
flexible, e.g. blown foils · CPC title
the layers being joined at their edges · CPC title
the layers being joined at their surfaces · CPC title
using a die with concentric parts, e.g. rings, cylinders · CPC title
using a die with concentric parts, e.g. rings, cylinders · CPC title
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