IP Library Granted Patent US 12,414,204
Granted Patent B2
US 12,414,204 · App. 17/630,530 · Granted Sep 9, 2025

Attachable self-resistance heating/super-hydrophobic integrated gradient film material

Inventors: Yizhou Shen (Jiangsu, CN); Jie Tao (Jiangsu, CN); Zhen Wang (Jiangsu, CN); Zhengwei Wu (Jiangsu, CN); Zhaoru He (Jiangsu, CN)
Assignee: NANJING UNIVERSITY OF AERONAUTICS AND ASTRONAUTICS
H05B3/146B64D15/12C09J7/29C09J7/30C09J9/02C09J11/04C09J2203/326C09J2301/41C09J2427/006C09J2463/00C09J2475/00C09J2483/006
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Quick Facts
Patent No.
US 12,414,204
App. No.
17/630,530
Granted
Sep 9, 2025
Kind
B2
Abstract

An attachable self-resistance heating/super-hydrophobic integrated gradient film material. The film material is made of an adhesive resin, an electrically and thermally insulative resin, a thermally and electrically conductive filler, and a thermally conductive insulating filler. The adhesive resin and the electrically and thermally insulative resin respectively form an adhesive layer and a base body, and the two are bonded together. The thermally and electrically conductive filler and the thermally conductive insulating filler are respectively added to an intermediate layer and an upper layer of the base body, to divide the base body into three gradient regions from top to bottom, wherein a super-hydrophobic structure is constructed on the surface of the uppermost area.

Claims (12)

1. An attachable self-resistance heating/super-hydrophobic integrated gradient film material, wherein the film material is prepared from an adhesive resin, an electrically and thermally insulative resin, a thermally and electrically conductive filler ( 3 ) and a thermally conductive insulating filler ( 4 ), wherein:

the adhesive resin and the electrically and thermally insulative resin form an adhesive layer ( 1 ) and a base body ( 2 ) bonded together, respectively, with the base body ( 2 ) on the adhesive layer ( 1 );

the thermally and electrically conductive filler ( 3 ) and the thermally conductive insulating filler ( 4 ) are added into an intermediate layer and an upper layer of the base body ( 2 ), respectively; the base body ( 2 ) is divided into three gradient regions from top to bottom: a thermally conductive insulating region ( 21 ), an electrically and thermally conductive region ( 22 ) and an electrically and thermally insulative region ( 23 ), wherein a super-hydrophobic structure is constructed on a surface of the thermally conductive insulating region ( 21 ),

wherein the thermally conductive insulating filler ( 4 ) is selected from graphene oxide, aluminum nitride ceramic and boron nitride ceramic.

2. The attachable self-resistance heating/super-hydrophobic integrated gradient film material according to claim 1 , wherein the electrically and thermally insulative resin is selected from an electrically and thermally insulative resin with a surface energy lower than 50 mN/m.

3. The attachable self-resistance heating/super-hydrophobic integrated gradient film material according to claim 2 , wherein the electrically and thermally insulative resin with the surface energy lower than 50 mN/m is selected from a silicone-based resin and a series of fluorine-modified resins.

4. The attachable self-resistance heating/super-hydrophobic integrated gradient film material according to claim 3 , wherein the silicone-based resin is selected from polydimethylsiloxane resin, methylphenyl silicone resin and amino silicone resin.

5. The attachable self-resistance heating/super-hydrophobic integrated gradient film material according to claim 3 , wherein the series of fluorine-modified resins are selected from fluorine-modified silicone resin, fluorine-modified acrylate resin and fluorine-modified polyurethane resin.

6. The attachable self-resistance heating/super-hydrophobic integrated gradient film material according to claim 1 , wherein the super-hydrophobic structure on the surface of the thermally conductive insulating region ( 21 ) is constructed by a micro-nano hot embossing.

7. The attachable self-resistance heating/super-hydrophobic integrated gradient film material according to claim 1 , wherein the thermally and electrically conductive filler ( 3 ) is selected from silver powder particles, copper powder particles, graphite and carbon nanotubes.

8. The attachable self-resistance heating/super-hydrophobic integrated gradient film material according to claim 1 , wherein the adhesive resin is selected from epoxy AB glue and polyurethane adhesive.

9. The attachable self-resistance heating/super-hydrophobic integrated gradient film material according to claim 1 , wherein the thermally conductive insulating region ( 21 ), the electrically and thermally conductive region ( 22 ) and the electrically and thermally insulative region ( 23 ) are separately prepared, and then subjected to a semi-curing, followed by a joining and a full-curing, to form the three gradient regions.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 8, 2022
From: SHEN, YIZHOU; TAO, JIE; WANG, ZHEN; WU, ZHENGWEI; HE, ZHAORU
To: NANJING UNIVERSITY OF AERONAUTICS AND ASTRONAUTICS
Reel/Frame 058932/0984 →
Priority Claims (1)
CN 201910760711.1 · Aug 16, 2019 · national
Continuity (1)
Related Publication 20220248501A1 · Aug 4, 2022
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