Methods for manufacturing bulked continuous carpet filament
US-2020055213-A1 · Feb 20, 2020 · US
US12109730B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-12109730-B2 |
| Application number | US-202217591447-A |
| Country | US |
| Kind code | B2 |
| Filing date | Feb 2, 2022 |
| Priority date | May 31, 2012 |
| Publication date | Oct 8, 2024 |
| Grant date | Oct 8, 2024 |
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A method for manufacturing pellets from polymer, comprising: (1) melting polymer flakes in a first section of a melt processing unit to create a first single stream of polymer melt; (2) separating the first single stream of polymer melt into multiple streams of polymer melt by means of a separation element; (3) passing the multiple streams through a multiple stream section of said melt processing unit and exposing the multiple streams to a pressure within the multiple stream section of the melt processing unit as the multiple streams pass through the multiple stream section; (4) recombining the multiple streams into at least one combined stream of polymer melt; and (5) cooling the polymer melt and forming said pellets from the at least one combined stream. The intrinsic viscosity of the at least one combined stream may be determined and, in response, the chamber pressure within the multiple stream section adjusted.
Opening claim text (preview).
What is claimed is: 1. A method for manufacturing pellets from polymer, the method comprising: melting a plurality of polymer flakes in a first section of a melt processing unit to create a first single stream of polymer melt; separating the first single stream of polymer melt into multiple streams of polymer melt by means of a separation element; passing the multiple streams of polymer melt through a multiple stream section of said melt processing unit and into a receiving section of the melt processing unit, and exposing the multiple streams of polymer melt to a pressure within the multiple stream section of the melt processing unit as the multiple streams of polymer melt pass through the multiple stream section of the melt processing unit, wherein a chamber pressure is maintained within the multiple stream section of the melt processing unit as the multiple streams of polymer pass through the multiple stream section, wherein the receiving section of the melt processing unit recombines the multiple streams of polymer melt into at least one combined stream of polymer melt; cooling the polymer melt and forming said pellets from the at least one combined stream of polymer melt; and wherein an intrinsic viscosity of the at least one combined stream is determined, and, in response to determining the intrinsic viscosity of the at least one combined stream of polymer melt, the chamber pressure within the multiple stream section of the melt processing unit is adjusted. 2. The method of claim 1 , wherein the method further comprises crystallizing the plurality of polymer flakes, prior to melting the plurality of polymer flakes in the melt processing unit. 3. The method of claim 1 , wherein the multiple streams of polymer melt fall into said receiving section of the melt processing unit under the weight of gravity. 4. The method of claim 1 , wherein the receiving section of the melt processing unit comprises a particular extruder that recombines the multiple streams of polymer melt into the at least one combined stream of polymer melt. 5. The method of claim 4 , wherein the particular extruder is disposed vertically below the separation element. 6. The method of claim 1 , wherein the separation element is adapted to divide the first single stream of polymer melt into at least 8 streams of polymer melt. 7. The method of claim 1 , wherein the separation element is an extrusion die defining a plurality of holes, each of the holes creating a respective one of the multiple streams of polymer melt. 8. The method of claim 1 , wherein the first section of the melt processing unit comprises a single screw extruder; and the receiving section of the melt processing unit comprises a single screw extruder. 9. The method of claim 1 , wherein the plurality of polymer flakes is derived, at least in part, from polyethylene terephthalate (PET) flakes that are derived from recycled PET bottles. 10. A system for manufacturing pellets from polymer, the system comprising: means for melting a plurality of polymer flakes to create a first stream of polymer melt; means for routing the first stream of polymer melt through a separation element to generate multiple streams of polymer melt; means for exposing the multiple streams of polymer melt to a pressure within a multiple stream section of a melt processing unit; means for reducing the pressure of the multiple stream section of the melt processing unit to a chamber pressure; means for, while maintaining the pressure of the multiple stream section of the melt processing unit at the chamber pressure, allowing the multiple streams of polymer melt to pass through the multiple stream section of the melt processing unit into a receiving section of the melt processing unit; means for recombining the multiple streams of polymer melt into at least one stream of polymer melt at the receiving section of the melt processing unit; means for cooling said at least one stream of polymer from the at least one stream of polymer melt; means for forming pellets from said at least one stream of polymer; wherein the system further comprises an intrinsic viscosity management system configured to determine an intrinsic viscosity of the at least one stream of polymer melt, and, in response to determining the intrinsic viscosity of the at least one stream of polymer melt, adjust the pressure within the multiple stream section of the melt processing unit. 11. The system of claim 10 , wherein allowing the multiple streams of polymer melt to pass through the multiple stream section of the melt processing unit into a receiving section of the melt processing unit comprises allowing the multiple streams of polymer melt to fall through the multiple stream section of the melt processing unit under the weight of gravity. 12. A system for manufacturing pellets from polymer, the system comprising: a first section of a melt processing unit, the first section being configured to melt polymer to create a first single stream of polymer melt; a separation element configured to receive the first single stream of polymer melt and divide the first single stream of polymer melt into multiple streams of polymer melt; a multiple stream section of the melt processing unit configured to: receive the multiple streams of polymer melt, allow the multiple streams of polymer melt to pass through the multiple stream section and into a receiving section of the melt processing unit, and expose the multiple streams of polymer melt to a pressure within the multiple stream section of the melt processing-unit as the multiple streams of polymer melt pass through the multiple stream section of the melt processing unit; and a pressure regulation system configured to maintain the pressure within the multiple stream section of the melt processing unit at a chamber pressure as the multiple streams of polymer pass through the multiple stream section, wherein: the receiving section of the melt processing unit is configured to: receive the multiple streams of polymer melt, recombine the multiple streams of polymer melt into at least one combined stream of polymer melt, and convey the at least one combined stream of polymer melt toward means for cooling and forming said at least one combined stream of polymer melt into said pellets, wherein the system further comprises an intrinsic viscosity management system configured to determine an intrinsic viscosity of the at least one combined stream of polymer melt, and, in response to determining the intrinsic viscosity of the at least one combined stream of polymer melt, instructing the pressure regulation system to adjust the chamber pressure within the multiple stream section of the melt processing unit. 13. The system of claim 12 , wherein: the first section is configured to melt a plurality of polymer flakes to create the first single stream of polymer melt; the system further comprises a crystallizer configured to perform a crystallization step on the plurality of polymer flakes prior to melting the plurality of polymer flakes in the first section of the melt processing unit; and the multiple stream section of the melt processing unit is configured to allow the multiple streams of polymer melt to fall into a receiving section of the melt processing unit under the weight of gravity. 14. The system of claim 12 , wherein the receiving section of the melt processing unit comprises a particular extruder that is adapted to recombine the multiple streams of polymer melt into the at least one combined stream of polymer melt. 15. The system of claim 14 , wherein the particular extruder is dispo
Feeding, melting, plasticising or pumping zones, e.g. the melt itself · CPC title
under-water, e.g. underwater pelletizers · CPC title
a shaping technique combined with cutting, e.g. in parts or slices combined with rearranging and joining the cut parts (for reinforced material B29C70/545; B29C49/4278, B29C51/268 take precedence) · CPC title
through a degassing opening of a barrel · CPC title
in the extruder apparatus · CPC title
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