IP Library Granted Patent US 12,728,620
Granted Patent B2
US 12,728,620 · App. 18/406,846 · Granted Sep 8, 2026

Protective composite fabrics and methods of manufacture and use

Inventors: Seckin Ozol (South Bend, IN); Gregory L. Todt (Union, MI); Na Qi (Granger, IN)
Assignee: Transhield, Inc.
B32B5/26B32B3/16B32B7/12B32B27/12B32B27/38B32B2307/71B32B2307/752
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Quick Facts
Patent No.
US 12,728,620
App. No.
18/406,846
Granted
Sep 8, 2026
Kind
B2
Abstract

A composite fabric includes a film having a first side and a second sides, a first fibrous layer having a first side facing the second side of the film and a second side, a fabric layer having a first side facing the second side of the first fibrous layer and a second side, a second fibrous layer having a first side facing the second side of the fabric layer and a second side, and a plurality of retaining members connected to and extending away from the second side of the second fibrous layer, the plurality of retaining members configured to contact a surface on which the composite fabric is placed to resist movement of the composite fabric relative to the surface and such that the second side of the fibrous layer is entirely spaced from the surface.

Claims (53)

1 . A composite fabric, comprising:

a film having a first side and a second side;

a first fibrous layer having a first side facing the second side of the film and a second side;

a fabric layer having a first side facing the second side of the first fibrous layer and a second side;

a second fibrous layer having a first side facing the second side of the fabric layer and a second side; and

a plurality of retaining members connected to and extending away from the second side of the second fibrous layer, the plurality of retaining members configured to contact a surface on which the composite fabric is placed to resist movement of the composite fabric relative to the surface and such that the second side of the fibrous layer is entirely spaced from the surface wherein the plurality of retaining members and the second side of the second fibrous layer cooperate with the surface to form at least one pocket.

2 . The composite fabric of claim 1 , wherein the retaining members include a first vapor corrosion inhibitor configured to vaporize and collect between the surface and the second side of the second fibrous layer.

3 . The composite film of claim 1 , wherein the film is a non-heat shrinking film.

4 . The composite fabric of claim 1 , wherein the retaining members comprise epoxy.

5 . The composite fabric of claim 1 , wherein the retaining members comprise polyurethane.

6 . The composite fabric of claim 1 , further comprising:

a pH modifier.

7 . The composite fabric of claim 1 , further comprising:

an adhesive positioned between and configured to connect the film and the first fibrous layer.

8 . The composite fabric of claim 7 , further comprising:

a second vapor corrosion inhibitor in the adhesive.

9 . The composite fabric of claim 1 , further comprising:

an electromagnetic interference shielding layer.

10 . The composite fabric of claim 9 , wherein the electromagnetic interference shielding layer is positioned between the film layer and the first fibrous layer.

11 . A composite fabric, comprising:

a film having a first side and a second side;

a first fibrous layer having a first side facing the second side of the film and a second side;

a fabric layer having a first side facing the second side of the first fibrous layer and a second side;

a second fibrous layer having a first side facing the second side of the fabric layer and a second side; and

a plurality of retaining members connected to and extending from the second side of the second fibrous layer and configured to contact a surface on which the composite fabric is placed and resist movement of the composite fabric relative to the surface, wherein the plurality of retaining members are configured such that a majority of the second side of the second fibrous layer is spaced from the surface, and wherein the plurality of retaining members form at least one pocket between one or more of the plurality of retaining members, the second side of the second fibrous layer and the surface.

12 . The composite fabric of claim 11 , wherein the second side of the second fibrous layer is entirely spaced from the surface.

13 . The composite fabric of claim 11 , wherein the plurality of retaining members include a corrosion inhibitor configured to collect between the second fibrous layer and the surface.

14 . The composite fabric of claim 13 , wherein the corrosion inhibitor comprises a first vapor corrosion inhibitor.

15 . The composite fabric of claim 14 , wherein the first corrosion inhibitor vaporizes and collects in one or more of the pockets.

16 . The composite fabric of claim 11 , further comprising:

a pH modifier.

17 . The composite fabric of claim 11 , further comprising:

an adhesive between and connecting the film and the first fibrous layer, wherein the adhesive includes a second vapor corrosion inhibitor.

18 . The composite fabric of claim 11 , further comprising:

an electromagnetic interference shielding layer positioned between the film layer and the first fibrous layer.

19 . A composite fabric, comprising:

a film having a first side and a second side;

a fabric layer having a first side and a second side;

at least one fibrous layer having a first side and a second side, wherein the at least one fabric layer is positioned between the film layer and the at least one fibrous layer; and

a plurality of retaining members configured to contact a surface on which the composite fabric is placed and for resisting movement of the composite fabric relative to the surface, the retaining members connected to and extending from the second side of the at least one fibrous layer such that the second side of the at least one fibrous layer is entirely spaced from the surface, wherein the retaining members include a first vapor corrosion inhibitor, and wherein the plurality of retaining members form at least one pocket between one or more of the plurality of retaining members, the second side of the at least one fibrous layer, and the surface, and wherein at least a portion of the first vapor corrosion inhibitor collects in one or more of the pockets.

20 . The composite fabric of claim 19 , wherein the at least one fibrous layer includes a first fibrous layer that includes the first side of the at least one fibrous layer and a second fibrous layer that includes the second side of the at least one fibrous layer, wherein the first side of the at least one fibrous layer is connected to the second side of the film, and wherein the fabric layer is sandwiched between the first and second fibrous layers.

21 . The composite fabric of claim 19 , wherein the film is a non-heat shrinking film.

22 . The composite fabric of claim 19 , wherein the retaining members comprise epoxy.

23 . The composite fabric of claim 19 , wherein the retaining members comprise polyurethane.

24 . The composite fabric of claim 19 , further comprising:

a pH modifier.

25 . The composite fabric of claim 19 , further comprising:

an adhesive positioned between and configured to connect the film and the at least one fibrous layer.

26 . The composite fabric of claim 25 , further comprising:

a second vapor corrosion inhibitor in the adhesive.

27 . The composite fabric of claim 19 , further comprising:

electromagnetic interference shielding.

28 . The composite fabric of claim 27 , wherein the electromagnetic interference shielding is positioned between the film layer and the at least one fibrous layer.

Continuity (4)
Continuation 18333022 · Jun 12, 2023
Continuation 17324450 · May 19, 2021
Provisional Application 63028814 · May 22, 2020
Related Publication 20240399705A1 · Dec 5, 2024
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