Commingled fiber preform architecture for high temperature composites

US12485645B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-12485645-B2
Application numberUS-202318321699-A
CountryUS
Kind codeB2
Filing dateMay 22, 2023
Priority dateMay 22, 2023
Publication dateDec 2, 2025
Grant dateDec 2, 2025

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  5. First independent claim

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Abstract

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A commingled fiber preform is provided. The commingled fiber preform includes at least one first fabric layer and a second fabric layer. The second fabric layer is positioned on top of the at least one first fabric layer. The second fabric layer is joined to the at least one first fabric layer via through thickness reinforcement (TTR) using a commingled thread. A transport depth of the TTR penetrates completely through a thickness of the second fabric layer and an entirety of the at least one first fabric layer. The commingled thread comprises carbon fibers commingled with fugitive fibers. The fugitive fibers are pyrolyzed from the commingled fiber preform to create a path through the thickness for infiltration of fluids.

First claim

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What is claimed is: 1 . A porous fiber preform comprising: a first fabric layer, wherein the first fabric layer comprises first fugitive fibers, first carbon fibers, and first fusible fibers and wherein a percentage of the first carbon fibers together with a percentage of the first fusible fibers in the first fabric layer is larger than a percentage of the first fugitive fibers in the first fabric layer; a second fabric layer, wherein the second fabric layer comprises second fugitive fibers, second carbon fibers, second first fusible fibers, wherein a percentage of the second carbon fibers together with a percentage of the second fusible fibers in the second fabric layer is larger than a percentage of the second fugitive fibers in the second fabric layer, and wherein the percentage of the second carbon fibers, the percentage of the second fusible fibers, and the percentage of the second fugitive fibers in the second fabric layer is different from the percentage of the first carbon fibers, the percentage of the first fusible fibers, and the percentage of the first fugitive fibers in the first fabric layer; a third fabric layer, wherein the third fabric layer comprises third fugitive fibers, third carbon fibers, third first fusible fibers, wherein a percentage of the third carbon fibers together with a percentage of the third fusible fibers in the third fabric layer is larger than a percentage of the third fugitive fibers in the third fabric layer, and wherein the percentage of the third carbon fibers, the percentage of the third fusible fibers, and the percentage of the third fugitive fibers in the third fabric layer is different from the percentage of the first carbon fibers, the percentage of the first fusible fibers, and the percentage of the first fugitive fibers in the first fabric layer; and a fourth fabric layer, wherein the fourth fabric layer comprises fourth fugitive fibers, fourth carbon fibers, and fourth fusible fibers, wherein a percentage of the fourth carbon fibers together with a percentage of the fourth fusible fibers in the fourth fabric layer is larger than a percentage of the fourth fugitive fibers in the fourth fabric layer, and wherein the percentage of the fourth carbon fibers, the percentage of the fourth fusible fibers, and the percentage of the fourth fugitive fibers in the fourth fabric layer are different from the percentage of the second carbon fibers, the percentage of the second fusible fibers, and the percentage of the second fugitive fibers in the second fabric layer and the percentage of the third carbon fibers, the percentage of the third fusible fibers, and the percentage of the third fugitive fibers in the third fabric layer, wherein the second fabric layer and the third fabric layer are positioned between the first fabric layer and the fourth fabric layer, wherein the second fabric layer, the third fabric layer, and the fourth fabric layer are joined to the first fabric layer via through thickness reinforcement (TTR) using a commingled thread thereby forming a fiber preform, wherein a transport depth of the TTR penetrates completely through a thickness of an entirety of the first fabric layer, the second fabric layer, the third fabric layer, and the fourth fabric layer, wherein, prior to pyrolysis, the commingled thread comprises fifth carbon fibers commingled with fifth fugitive fibers and fifth fusible fibers, wherein a ratio of the fifth fugitive fibers to the fifth carbon fibers to the fifth fusible fibers in the commingled thread is 1: to at least 2: to at least 2, wherein, during the pyrolysis, the first fugitive fibers, the second fugitive fibers, the third fugitive fibers, the fourth fugitive fibers, and the fifth fugitive fibers are pyrolyzed from the fiber preform to create a path through the thickness for infiltration of fluids thereby forming the porous fiber preform, and wherein, during the pyrolysis, the first fusible fibers, the second fusible fibers, the third fusible fibers, the fourth fusible fibers, and the fifth fusible fibers decompose leaving behind a carbon char that forms a carbon matrix of the porous fiber preform. 2 . The porous fiber preform of claim 1 , wherein, in the first fabric layer, the first carbon fibers are commingled with the first fusible fibers and the first fugitive fibers, wherein, in the second fabric layer, the second carbon fibers are commingled with the second fusible fibers and the second fugitive fibers, wherein, in the third fabric layer, the third carbon fibers are commingled with the third fusible fibers and the third fugitive fibers, and wherein, in the fourth fabric layer, the fourth carbon fibers are commingled with the fourth fusible fibers and the fourth fugitive fibers. 3 . The porous fiber preform of claim 1 , wherein a percentage of the fifth carbon fibers and a percentage of the fifth fugitive fibers in the commingled thread is each at least 10% by volume. 4 . The porous fiber preform of claim 1 , wherein the TTR is uniform throughout a length of the first fabric layer, the second fabric layer, the third fabric layer, and the fourth fabric layer. 5 . The porous fiber preform of claim 1 , wherein the TTR is random throughout a length of the first fabric layer, the second fabric layer, the third fabric layer, and the fourth fabric layer. 6 . The porous fiber preform of claim 1 , wherein the first fabric layer, the second fabric layer, the third fabric layer, and the fourth fabric layer have directionality indicated by a tow in each of the first fabric layer, the second fabric layer, the third fabric layer, and the fourth fabric layer and wherein, in positioning the second fabric layer and the third fabric layer between the first fabric layer and the fourth fabric layer, the directionality is the same. 7 . The porous fiber preform of claim 1 , wherein the first fabric layer, the second fabric layer, the third fabric layer, and the fourth fabric layer have directionality indicated by a tow in each of the fabric layer, the second fabric layer, the third fabric layer, and the fourth fabric layer and wherein, in positioning the second fabric layer and the third fabric layer between the first fabric layer and the fourth fabric layer, the directionality differs. 8 . A manufacturing method, comprising: forming a porous fiber preform by: arranging a second fabric layer and a third fabric layer between a first fabric layer and a fourth fabric layer, wherein the first fabric layer comprises first fugitive fibers, first carbon fibers, and first fusible fibers, a percentage of the first carbon fibers together with a percentage of the first fusible fibers in the first fabric layer is larger than a percentage of the first fugitive fibers in the first fabric layer, wherein the second fabric layer comprises second fugitive fibers, second carbon fibers, second first fusible fibers, wherein a percentage of the second carbon fibers together with a percentage of the second fusible fibers in the second fabric layer is larger than a percentage of the second fugitive fibers in the second fabric layer, wherein the percentage of the second carbon fibers, the percentage of the second fusible fibers, and the percentage of the second fugitive fibers in the second fabric layer is different from the percentage of the first carbon fibers, the percentage of the first fusible fibers, and the percentage of the first fugitive fibers in the first fabric layer, wherein the third fabric layer comprises third fugitive fibers, third carbon fibers, third first fusible fibers, wherein a percentage of the third carbon fibers together with a percentage of the third fusible fibers in the third fabric layer is larger than a percentage of the third fugitive fibers in the third fabric layer, wherein the p

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What does patent US12485645B2 cover?
A commingled fiber preform is provided. The commingled fiber preform includes at least one first fabric layer and a second fabric layer. The second fabric layer is positioned on top of the at least one first fabric layer. The second fabric layer is joined to the at least one first fabric layer via through thickness reinforcement (TTR) using a commingled thread. A transport depth of the TTR pene…
Who is the assignee on this patent?
Rohr Inc, Goodrich Corp
What technology area does this patent fall under?
Primary CPC classification B32B7/08. Mapped technology areas include Operations & Transport.
When was this patent published?
Publication date Tue Dec 02 2025 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).