IP Library › Granted Patent US 10,710,332
Granted Patent B2
US 10,710,332 · App. 16/719,972 · Granted Jul 14, 2020

Heat-insulation sheet, electronic device using same, and method for producing heat-insulation sheet

Inventors: Kazuma Oikawa (Osaka, JP); Kei Toyota (Osaka, JP); Shinji Okada (Osaka, JP); Shigeaki Sakatani (Osaka, JP)
Assignee: Panasonic Intellectual Property Management Co., Ltd.
B32B9/005B32B5/022B32B5/24B32B5/245B32B9/00B32B37/14B32B38/08C01B33/16F16L59/026F16L59/028F16L59/029B32B2255/02B32B2255/20B32B2260/021B32B2262/023B32B2262/0253B32B2262/0284B32B2262/101B32B2262/108B32B2266/128B32B2307/304B32B2457/00B32B2457/04
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Quick Facts
Patent No.
US 10,710,332
App. No.
16/719,972
Granted
Jul 14, 2020
Kind
B2
Abstract

A heat-insulation sheet includes a first silica xerogel layer, a second silica xerogel layer, and a composite layer. The first silica xerogel layer includes a first silica xerogel, and the second silica xerogel layer includes a second silica xerogel. The composite layer is located between the first silica xerogel layer and the second silica xerogel layer, and includes at least one type of unwoven fabric fibers, and a third silica xerogel. The third silica xerogel is located in a spatial volume of the unwoven fabric fibers.

Claims (9)

1. A method for producing a heat-insulation sheet, comprising:

in a state in which unwoven fabric fibers impregnated with a silica aerosol solution are placed between films, converting the silica aerosol solution to a gel to form a composite layer including the unwoven fabric fibers, and a silica xerogel that is located in a spatial volume in the unwoven fabric fibers; and

applying a pressure to the composite layer together with the films to form, on a first surface of the composite layer, a first silica xerogel layer including the silica xerogel, and to form, on a second surface of the composite layer a second silica xerogel layer including the silica xerogel, the second surface being located on the side opposite to the first surface.

2. A method for producing a heat-insulation sheet according to claim 1 , wherein, the first silica xerogel layer does not include fibers.

3. A method for producing a heat-insulation sheet according to claim 1 , wherein, applying a pressure is passing the composite layer through a roll together with the film.

4. A method for producing a heat-insulation sheet according to claim 1 , wherein, applying a pressure reduces the thickness of the composite layer by 5 to 20%.

5. A method for producing a heat-insulation sheet according to claim 1 , wherein, curing the first silica xerogel layer, the composite layer, and the second silica xerogel layer together with the film to grow silica particles.

6. A method for producing a heat-insulation sheet according to claim 5 , wherein, after the curing step, the film is peeled off, and the first silica xerogel layer, the composite layer, and the second silica xerogel layer are hydrophobized.

7. A method for producing a heat-insulation sheet according to claim 6 , wherein hydrophobizing includes immersing the first silica xerogel layer, the composite layer, and the second silica xerogel layer in an acid; and, immersing the first silica xerogel layer, the composite layer, and the second silica xerogel layer in a siloxane liquid.

Priority Claims (1)
JP 2015-067868 · Mar 30, 2015 · national
Continuity (2)
Division 15309796
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