IP Library › Granted Patent US 10,790,492
Granted Patent B2
US 10,790,492 · App. 16/096,860 · Granted Sep 29, 2020

Microporous polyolefin membrane, separator for battery, and production processes therefor

Inventors: Naoki Mizuno (Nasushiobara, JP); Masami Sugata (Nasushiobara, JP)
Assignee: Toray Industries, Inc.
H01M2/1653B29C55/14B29C55/143B29D7/01C08J5/2231C08J7/0427C08J9/28H01G11/52H01M2/145H01M2/16H01M2/1686B29K2105/041B29L2007/002B29L2031/3468C08J2323/06Y02E60/13
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Quick Facts
Patent No.
US 10,790,492
App. No.
16/096,860
Granted
Sep 29, 2020
Kind
B2
Abstract

A polyolefin microporous membrane has a variation range of F25 value in a longitudinal direction of 1 MPa or less; a thickness of 3 μm or more and less than 7 μm; and a length of 1,000 m or more (wherein the F25 value is a value obtained by measuring a load value applied to a test specimen when the test specimen is stretched by 25% using a tensile tester; and dividing the load value by a value of a cross-sectional area of a test specimen).

Claims (23)

1. A polyolefin microporous membrane having: a variation range of F25 value in a longitudinal direction of 1 MPa or less; a thickness of 3 μm or more and less than 7 μm; and a length of 1,000 m or more (wherein the F25 value is a value obtained by measuring a load value applied to a test specimen when the test specimen is stretched by 25% using a tensile tester; and dividing the load value by a value of a cross-sectional area of a test specimen).

2. A battery separator comprising:

the polyolefin microporous membrane according to claim 1 ; and

a porous layer formed on at least one surface of the polyolefin microporous membrane, which contains at least one resin selected from the group consisting of fluorine resins, acrylic resins, polyvinyl alcohol resins and carboxymethyl cellulose resins, and particles, and which has an average thickness T (ave) of 1 to 5 μm.

3. The battery separator according to claim 2 , wherein the porous layer has a thickness variation range (R) in a longitudinal direction of 1.0 μm or less.

4. The battery separator according to claim 2 , wherein the polyolefin microporous membrane has a length of 2,000 m or more.

5. The battery separator according to claim 2 , wherein the polyolefin microporous membrane has a length of 3,000 m or more.

6. A method of producing the polyolefin microporous membrane according to claim 1 , the method comprising:

(a) melt blending a polyolefin resin and a forming solvent to prepare a polyolefin resin solution;

(b) extruding the polyolefin resin solution in the form of a sheet, by an extruder, and cooling the resultant to form an unstretched gel-like sheet;

(c) allowing the unstretched gel-like sheet to pass through at least three sets of longitudinal stretching rolls to be stretched in the longitudinal direction based on the peripheral speeds of the stretching rolls, which peripheral speeds are set at progressively higher rates in a direction in which the sheet passes, to obtain a longitudinally stretched gel-like sheet, wherein one longitudinal stretching roll, and one or more nip rolls coated with a heat resistant rubber and in contact with the longitudinal stretching roll in parallel, are defined as one set of longitudinal stretching rolls, wherein the nip roll(s) come(s) into contact with the longitudinal stretching roll at a pressure of 0.05 MPa or more and 0.5 MPa or less;

(d) stretching the longitudinally stretched gel-like sheet in a transverse direction, with the sheet held such that a clip-to-clip distance at a tenter exit is 50 mm or less, to obtain a biaxially stretched gel-like sheet;

(e) extracting the forming solvent from the biaxially stretched gel-like sheet, followed by drying; and

(f) subjecting the dried sheet to a heat treatment, to obtain the polyolefin microporous membrane.

7. The method according to claim 6 , wherein in step (c), the peripheral speed ratios between respective adjacent longitudinal stretching rolls are set at progressively higher rates in the direction in which the sheet passes.

8. A method of producing a roll of a polyolefin microporous membrane, the method comprising winding the polyolefin microporous membrane obtained by the method according to claim 6 , at a transport rate of 50 m/min or more.

9. A method of producing a battery separator, the method comprising coating a coating liquid containing at least one resin selected from the group consisting of fluorine resins, acrylic resins, polyvinyl alcohol resins and cellulose ether resins, and particles, on at least one surface of the polyolefin microporous membrane obtained by the method according to claim 6 , by a roll coating method using a coating roll having a deflection accuracy of equal to or less than 10 μm/Φ100 mm, followed by drying.

10. The method of producing a battery separator according to claim 9 , wherein the coating roll is a gravure roll.

11. The battery separator according to claim 3 , wherein the polyolefin microporous membrane has a length of 2,000 m or more.

12. The battery separator according to claim 3 , wherein the polyolefin microporous membrane has a length of 3,000 m or more.

13. The battery separator according to claim 4 , wherein the polyolefin microporous membrane has a length of 3,000 m or more.

14. A method of producing a roll of a polyolefin microporous membrane, the method comprising winding the polyolefin microporous membrane obtained by the method according to claim 7 , at a transport rate of 50 m/min or more.

15. A method of producing a battery separator, the method comprising coating a coating liquid containing at least one resin selected from the group consisting of fluorine resins, acrylic resins, polyvinyl alcohol resins and cellulose ether resins, and particles, on at least one surface of the polyolefin microporous membrane obtained by the method according to claim 7 , by a roll coating method using a coating roll having a deflection accuracy of equal to or less than 10 μm/Φ100 mm, followed by drying.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 26, 2018
From: MIZUNO, NAOKI; SUGATA, MASAMI
To: TORAY INDUSTRIES, INC.
Reel/Frame 047326/0949 →
Priority Claims (1)
JP 2016-089551 · Apr 27, 2016 · national
Continuity (1)
Related Publication 20190140239A1 · May 9, 2019