IP Library › Granted Patent US 10,414,878
Granted Patent B2
US 10,414,878 · App. 15/877,102 · Granted Sep 17, 2019

Enhancing the physical properties of semi-crystalline polymers via solid state shear pulverization

Inventors: John M. Torkelson (Skokie, IL); Cynthia Pierre (Chicago, IL); Amanda Flores Walker (Mt. Vernon, IN); Philip J. Brunner (South Milwaukee, WI)
Assignee: Northwestern University
C08J3/12C08G63/88C08J2323/06C08J2323/12C08J2367/02C08J2367/04
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Quick Facts
Patent No.
US 10,414,878
App. No.
15/877,102
Granted
Sep 17, 2019
Kind
B2
Abstract

Solid-state shear pulverization of semi-crystalline polymers and copolymers thereof and related methods for enhanced crystallization kinetics and physical/mechanical properties.

Claims (35)

1. A method of processing a semi-crystalline homopolymer, said method comprising:

providing a solid semi-crystalline homopolymer component, said homopolymer a single homopolymer comprising less than about 50% crystallinity; and

applying a mechanical energy to said single homopolymer through solid-state shear pulverization in the presence of cooling at least partially sufficient to maintain said homopolymer in a solid state during said pulverization, said pulverization at least partially sufficient to induce at least one of polymer scission and indigenous nucleation sites within said homopolymer, wherein said single homopolymer is selected from polyesters, polyolefins and polyamides.

2. The method of claim 1 wherein said single homopolymer is a polyethylene.

3. A method of processing a semi-crystalline homopolymer, said method comprising:

providing a solid semi-crystalline homopolymer component, said homopolymer a single homopolymer comprising less than about 50% crystallinity; and

applying a mechanical energy to said single homopolymer through solid-state shear pulverization in the presence of cooling at least partially sufficient to maintain said homopolymer in a solid state during said pulverization, said pulverization at least partially sufficient to induce at least one of polymer scission and indigenous nucleation sites within said homopolymer, wherein said pulverized homopolymer is melt-processed.

4. A method of processing a semi-crystalline homopolymer, said method comprising:

providing a solid semi-crystalline homopolymer component, said homopolymer a single homopolymer comprising less than about 50% crystallinity; and

applying a mechanical energy to said single homopolymer through solid-state shear pulverization in the presence of cooling at least partially sufficient to maintain said homopolymer in a solid state during said pulverization, said pulverization at least partially sufficient to induce at least one of polymer scission and indigenous nucleation sites within said homopolymer, wherein said pulverized homopolymer is molded into a film, said film having decreased gas permeability as compared to a molded film of said single homopolymer component absent shear pulverization and further wherein said pulverized homopolymer is incorporated into an article of manufacture.

5. A method of affecting crystallization kinetics of a semi-crystalline homopolymer, said method comprising:

providing a solid semi-crystalline homopolymer component, said homopolymer a single homopolymer comprising less than about 50% crystallinity; and

applying a mechanical energy to said single homopolymer through solid-state shear pulverization in the presence of cooling at least partially sufficient to maintain said homopolymer in a solid state during said pulverization, said pulverization at least partially sufficient to induce at least one of an increased crystallization temperature and reduced isothermal crystallization half-time of said single homopolymer as compared to said single homopolymer absent shear pulverization, wherein said single homopolymer is a polyethylene.

6. A method of affecting crystallization kinetics of a semi-crystalline homopolymer, said method comprising:

providing a solid semi-crystalline homopolymer component, said homopolymer a single homopolymer comprising less than about 50% crystallinity; and

applying a mechanical energy to said single homopolymer through solid-state shear pulverization in the presence of cooling at least partially sufficient to maintain said homopolymer in a solid state during said pulverization, said pulverization at least partially sufficient to induce at least one of an increased crystallization temperature and reduced isothermal crystallization half-time of said single homopolymer as compared to said single homopolymer absent shear pulverization, wherein said pulverized homopolymer is melt-processed.

7. A method of affecting crystallization kinetics of a semi-crystalline homopolymer, said method comprising:

providing a solid semi-crystalline homopolymer component, said homopolymer a single homopolymer comprising less than about 50% crystallinity; and

applying a mechanical energy to said single homopolymer through solid-state shear pulverization in the presence of cooling at least partially sufficient to maintain said homopolymer in a solid state during said pulverization, said pulverization at least partially sufficient to induce at least one of an increased crystallization temperature and reduced isothermal crystallization half-time of said single homopolymer as compared to said single homopolymer absent shear pulverization, wherein said pulverized homopolymer is incorporated into an article of manufacture.

8. A method of using solid-state shear pulverization to affect crystallization kinetics of a semi-crystalline homopolymer, said method comprising:

providing a solid semi-crystalline homopolymer component, said homopolymer component a single homopolymer, comprising less than about 50% crystallinity;

introducing said single homopolymer into a solid-state shear pulverization apparatus, said apparatus comprising a cooling component at least partially sufficient to maintain said homopolymer in a solid state;

shear pulverizing said single homopolymer, said pulverization at least partially efficient to affect at least one of a crystallization temperature and isothermal crystallization half-time of said single homopolymer, and said pulverization substantially absent at least one of a nucleating agent and a filler component; and

discharging said shear pulverized single homopolymer from said apparatus, wherein said single homopolymer is a polyethylene.

9. A method of using solid-state shear pulverization to affect crystallization kinetics of a semi-crystalline homopolymer, said method comprising:

providing a solid semi-crystalline homopolymer component, said homopolymer component a single homopolymer, comprising less than about 50% crystallinity;

introducing said single homopolymer into a solid-state shear pulverization apparatus, said apparatus comprising a cooling component at least partially sufficient to maintain said homopolymer in a solid state;

shear pulverizing said single homopolymer, said pulverization at least partially efficient to affect at least one of a crystallization temperature and isothermal crystallization half-time of said single homopolymer, and said pulverization substantially absent at least one of a nucleating agent and a filler component; and

discharging said shear pulverized single homopolymer from said apparatus, wherein said pulverized homopolymer is melt-processed.

10. A method of using solid-state shear pulverization to affect crystallization kinetics of a semi-crystalline homopolymer, said method comprising:

providing a solid semi-crystalline homopolymer component, said homopolymer component a single homopolymer, comprising less than about 50% crystallinity;

introducing said single homopolymer into a solid-state shear pulverization apparatus, said apparatus comprising a cooling component at least partially sufficient to maintain said homopolymer in a solid state;

shear pulverizing said single homopolymer, said pulverization at least partially efficient to affect at least one of a crystallization temperature and isothermal crystallization half-time of said single homopolymer, and said pulverization substantially absent at least one of a nucleating agent and a filler component; and

discharging said shear pulverized single homopolymer from said apparatus, wherein said pulverized homopolymer is incorporated into an article of manufacture.

11. The method of claim 10 wherein said pulverized homopolymer is molded into a film, said film having decreased gas permeability as compared to a molded film of said single homopolymer component absent shear pulverization.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 18, 2018
From: TORKELSON, JOHN M.; BRUNNER, PHILIP
To: NORTHWESTERN UNIVERSITY
Reel/Frame 045579/0521 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 18, 2018
From: PIERRE, CYNTHIA; FLORES WALKER, AMANDA
To: NORTHWESTERN UNIVERSITY
Reel/Frame 045579/0536 →
Continuity (7)
Continuation 14434692
Continuation In Part 14279521 · May 16, 2014
Division 13854558 · Apr 1, 2013
Division 12322396 · Feb 2, 2009
Provisional Application 61712982 · Oct 12, 2012
Provisional Application 61063036 · Jan 31, 2008
Related Publication 20180244861A1 · Aug 30, 2018