IP Library › Granted Patent US 12,649,261
Granted Patent B2
US 12,649,261 · App. 18/417,457 · Granted Jun 9, 2026

Methods for manufacturing bulked continuous filament from recycled pet

Inventor: Thomas R. Clark (Hixson, TN)
Assignee: Aladdin Manufacturing Corporation
B29B17/02B01D29/0095B01F27/951B01F35/189B01F35/2213B01J3/006B29B7/485B29B7/845B29B13/065B29B17/00B29C37/006B29C48/05B29C48/255B29C48/2552B29C48/38B29C48/385B29C48/425B29C48/43B29C48/44B29C48/70B29C48/767B29C48/92B29D99/0078C08J11/04C08J11/06D01D1/103D01D1/106D01D5/00D01D5/08D01F6/62D02G3/445B01J2208/00539B29B2013/002B29B2013/005B29B2017/0015B29B2017/0224B29C48/144B29C48/435B29C48/766B29C2791/006B29C2948/922B29C2948/92257B29C2948/924B29C2948/92514B29C2948/92752B29C2948/92876B29K2067/003B29K2105/0067B29K2105/26C08J2367/02D10B2331/04D10B2503/04Y02P20/143Y02W30/62
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Quick Facts
Patent No.
US 12,649,261
App. No.
18/417,457
Granted
Jun 9, 2026
Kind
B2
Abstract

A method of manufacturing bulked continuous carpet filament that includes providing a polymer melt and separating the polymer melt from the extruder into at least eight streams. The multiple streams are exposed to a chamber pressure within a chamber that is below approximately 25 millibars, or another predetermined pressure. The streams are recombined into a single polymer stream. Polymer from the polymer stream is then formed into bulked continuous carpet filament.

Claims (68)

1 . An apparatus comprising:

a polymer crystallizer configured to at least partially surface dry at least a portion of a plurality of polymer flakes;

an extruder comprising:

a first extrusion section configured to receive the plurality of polymer flakes from the polymer crystallizer and form a polymer melt from the plurality of polymer flakes;

a melt processing section configured to receive the polymer melt from the first extrusion section, the melt processing section comprising:

a polymer melt divider configured to increase a surface area of the polymer melt by dividing the polymer melt into a plurality of streams;

a chamber configured to receive the plurality of streams; and

a pressure regulation system configured to maintain a chamber pressure within the chamber below atmospheric pressure;

a second extrusion section configured to receive the plurality of streams from the chamber and recombine the plurality of streams into a single polymer stream; and

a spinning machine configured to receive at least a portion of the single polymer stream and form the at least the portion of the single polymer stream into bulked continuous carpet filament.

2 . The apparatus of claim 1 , wherein:

the second extrusion section defines an outlet;

the spinning machine defines an inlet; and

the outlet is directly coupled to the inlet such that the at least the portion of the single polymer stream is fed directly from the extruder into the spinning machine.

3 . The apparatus of claim 1 , further comprising a color sorter configured to remove at least a portion of colored polymer flakes from the plurality of polymer flakes such that the plurality of polymer flakes comprises no more than a particular amount of the colored polymer flakes by volume or mass at the point where the first extrusion section forms the polymer melt from the plurality of polymer flakes.

4 . The apparatus of claim 3 , wherein the particular amount of the colored polymer flakes comprises up to about 20% colored polymer flakes by volume or mass.

5 . The apparatus of claim 3 , further comprising:

a metering system in communication with the extruder configured to add a colorant to the polymer melt or the plurality of polymer flakes;

a color sensor configured to determine a color of the single polymer stream; and

a first computer controller configured for:

using the color sensor to determine the color of the single polymer stream; and

causing the metering system to adjust an amount of the colorant to add to the polymer melt or the plurality of polymer flakes based on the determined color of the single polymer stream.

6 . The apparatus of claim 1 , further comprising:

a viscosity sensor; and

a second computer controller configured for:

using the viscosity sensor to measure a viscosity of the single polymer stream; and

causing the pressure regulation system to adjust the chamber pressure based on the measured viscosity of the single polymer stream.

7 . The apparatus of claim 1 , wherein the pressure regulation system is configured to maintain the chamber pressure within the chamber between about 0.5 millibars and about 25 millibars.

8 . An apparatus comprising:

an extruder comprising:

a first extrusion section configured to form a polymer melt from a plurality of polymer flakes;

a multi-stream section configured to receive the polymer melt and increase a surface area of the polymer melt by dividing the polymer melt into a plurality of streams;

a pressure regulation system in communication with the multi-stream section and configured to maintain a pressure within the multi-stream section below atmospheric pressure; and

a second extrusion section configured to receive the plurality of streams from the multi-stream section and recombine the plurality of streams into a single polymer stream; and

at least one computer-controller configured to operate the pressure regulation system to maintain the pressure below atmospheric pressure such that the surface area of the polymer melt is exposed to the pressure to remove at least one of interstitial water or volatile organic impurities from the polymer melt, wherein:

the apparatus further comprises a polymer crystallizer configured to at least partially surface dry at least a portion of the plurality of polymer flakes; and

the first extrusion section is configured to receive the plurality of polymer flakes from the polymer crystallizer.

9 . The apparatus of claim 8 , further comprising:

a color sorter configured to remove at least a portion of colored polymer flakes from the plurality of polymer flakes such that the plurality of polymer flakes comprise no more than a particular amount of the colored polymer flakes by volume or mass.

10 . The apparatus of claim 8 , further comprising a spinning machine configured to receive at least a portion of the single polymer stream and form the at least the portion of the single polymer stream into bulked continuous carpet filament.

11 . The apparatus of claim 10 , wherein:

the second extrusion section defines an outlet;

the spinning machine defines an inlet; and

the outlet is directly coupled to the inlet such that the at least the portion of the single polymer stream is fed directly from the extruder into the spinning machine.

12 . The apparatus of claim 8 , wherein the at least one computer-controller is configured to operate the pressure regulation system to maintain the pressure within the multi-stream section such that the pressure corresponds to a required moisture level or a required intrinsic viscosity associated with the single polymer stream.

13 . An apparatus comprising:

a polymer crystallizer configured to at least partially surface dry at least a portion of a plurality of polymer flakes; and

an extruder comprising:

a melt processing section configured to receive a polymer melt derived from the plurality of polymer flakes and remove at least one of interstitial water or volatile organic impurities from the polymer melt, the melt processing section comprising:

a polymer melt divider configured to increase a surface area of the polymer melt by dividing the polymer melt into a plurality of streams;

a chamber configured to receive the plurality of streams; and

a pressure regulation system configured to maintain a chamber pressure within the chamber below atmospheric pressure; and

a second extrusion section configured to receive the plurality of streams from the chamber and recombine the plurality of streams into a single polymer stream.

14 . The apparatus of claim 13 , further comprising a spinning machine configured to receive at least a portion of the single polymer stream and form the at least the portion of the single polymer stream into bulked continuous carpet filament.

15 . The apparatus of claim 14 , wherein:

the second extrusion section defines an outlet;

the spinning machine defines an inlet; and

the outlet is directly coupled to the inlet such that the at least the portion of the single polymer stream is fed directly from the extruder into the spinning machine.

16 . The apparatus of claim 15 , wherein:

the plurality of polymer flakes comprise up to about 20% colored polymer by volume or mass;

the apparatus further comprises a metering system in communication with the extruder configured to add a colorant to the polymer melt or the plurality of polymer flakes.

17 . The apparatus of claim 16 , further comprising:

a color sensor configured to determine a color of the single polymer stream; and

a computer controller configured for:

using the color sensor to determine the color of the single polymer stream; and;

causing the metering system to adjust an amount of the colorant to add to the polymer melt or the plurality of polymer flakes based on the determined color of the single polymer stream.

18 . The apparatus of claim 13 , wherein the polymer melt divider comprises at least eight extruder barrels.

19 . The apparatus of claim 13 , wherein the pressure regulation system is configured to maintain the chamber pressure within the chamber between about 0 millibars and about 25 millibars.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 19, 2024
From: CLARK, THOMAS
To: MOHAWK INDUSTRIES, INC.
Reel/Frame 066185/0448 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 19, 2024
From: MOHAWK INDUSTRIES, INC.
To: ALADDIN MANUFACTURING CORPORATION
Reel/Frame 066185/0531 →
Continuity (14)
Continuation 17342047 · Jun 8, 2021
Continuation In Part 16664724 · Oct 25, 2019
Continuation In Part 16220733 · Dec 14, 2018
Continuation In Part 16213694 · Dec 7, 2018
Continuation 15473385 · Mar 29, 2017
Continuation In Part 15419955 · Jan 30, 2017
Continuation In Part 15396143 · Dec 30, 2016
Continuation 14546796 · Nov 18, 2014
Continuation 13892713 · May 13, 2013
Continuation In Part 13892740 · May 13, 2013
Division 13721955 · Dec 20, 2012
Division 13721955 · Dec 20, 2012
Provisional Application 61654016 · May 31, 2012
Related Publication 20240157605A1 · May 16, 2024
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