IP Library Granted Patent US 12686644
Granted Patent B1
US 12686644 · App. 18/495,511 · Granted Jul 21, 2026

Method of making a carbon-carbon composite with internal microchannels

Inventors: Gray E. Fowler (Allen, TX); James M. Davidson (Miamisburg, OH); Garrett U. Yoder (Springboro, OH)
Assignee: Cornerstone Research Group, Inc.
C04B35/83B29C70/003B29C70/021B29C70/36C04B35/71B29C2791/006B29K2077/00B29K2105/0845B29K2301/00B29L2031/3005Y10T428/30
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Quick Facts
Patent No.
US 12686644
App. No.
18/495,511
Granted
Jul 21, 2026
Kind
B1
Abstract

Methods of making a carbon-carbon composite structure with internal microchannels include (i) assembling a dry carbon fiber composite preform with a sacrificial template woven or placed within to form a primary assembly; (ii) placing the primary assembly under a sealed enclosure; (iii) applying a vacuum to the sealed enclosure to evacuate air from the dry carbon fiber composite preform; (iv) infusing a polymer resin into the dry carbon fiber composite preform to generate a resin infused preform; (v) heating the resin infused preform under vacuum to cure the polymer resin in the resin infused preform to form a cured composite; (vi) demolding the cured composite; and (vii) heating the cured composite to an elevated temperature of at least 800° C. under a flow of an inert gas to decompose the sacrificial template to form the internal microchannels and carbonize the cured composite to form the carbon-carbon composite structure.

Claims (17)

1 . A carbon-carbon composite cooling structure comprising:

a carbon-carbon composite comprising microchannels extending in a continuous manner from a first end of the carbon-carbon composite to a second end of the carbon-carbon composite; and

a cooling fluid,

wherein the carbon-carbon composite cooling structure is integrated into the surface structure of a hypersonic vehicle,

wherein the cooling fluid comprises a fuel utilized for operation of the hypersonic vehicle; and

wherein the cooling fluid is flowed through the microchannels in a convective cooling process.

2 . The carbon-carbon composite cooling structure of claim 1 , wherein the microchannels have a longest cross-sectional dimension of 100 to 2000 microns.

3 . The carbon-carbon composite cooling structure of claim 1 , wherein the microchannels form up to 50% of a total cross section of the carbon-carbon composite structure.

4 . The carbon-carbon composite cooling structure of claim 3 , wherein the microchannels form 10% to 50% of the total cross section of the carbon-carbon composite structure.

5 . The carbon-carbon composite cooling structure of claim 1 , wherein the microchannels are interconnected to form a porous network of pathways through an interior of the carbon-carbon composite cooling structure.

6 . The carbon-carbon composite cooling structure of claim 1 , wherein the cooling fluid comprises a liquid.

7 . The carbon-carbon composite cooling structure of claim 1 , wherein the cooling fluid comprises a gas.

8 . The carbon-carbon composite cooling structure of claim 1 , wherein the cooling fluid comprises JP-10 fuel.

9 . The carbon-carbon composite cooling structure of claim 1 , wherein the carbon-carbon composite has been densified with repeated infusion and carbonization of a polymer resin into the carbon-carbon composite.

10 . The carbon-carbon composite cooling structure of claim 1 , wherein the microchannels comprise a circular profile.

11 . The carbon-carbon composite cooling structure of claim 1 , wherein the microchannels comprise an oval profile.

12 . The carbon-carbon composite cooling structure of claim 1 , wherein the microchannels comprise a polygonal profile.