IP Library Granted Patent US 12,036,782
Granted Patent B2
US 12,036,782 · App. 17/242,725 · Granted Jul 16, 2024

Composites and methods of forming composites having an increased volume of ceramic particles

Inventor: Christopher T. Kirkpatrick (Pueblo West, CO)
Assignee: GOODRICH CORPORATION
B32B5/24B29C70/025B32B5/02B32B5/16B32B5/30B32B37/24C04B35/6286C04B35/62878C04B35/62892C04B35/62894C04B35/83B29K2307/04B29K2509/04B32B2260/023B32B2260/025B32B2260/04B32B2262/106B32B2264/107B32B2313/04B32B2315/02B32B2605/18C04B2235/3821C04B2235/422C04B2235/428C04B2235/5248C04B2235/5256C04B2235/616
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Quick Facts
Patent No.
US 12,036,782
App. No.
17/242,725
Granted
Jul 16, 2024
Kind
B2
Abstract

A fiber reinforced composite component may include interleaved textile layers and ceramic particle layers coated with matrix material. The fiber reinforced composite component may be fabricated by forming a fibrous preform and densifying the fibrous preform. The fibrous preform may be fabricated by forming a first ceramic particle layer over a first textile layer, disposing a second textile layer over the first ceramic particle layer, forming a second ceramic particle layer over the second textile layer, and disposing a third textile layer over the second ceramic particle layer.

Claims (39)

1. A method of fabricating a fiber-reinforced composite component, comprising:

forming a fibrous preform by:

disposing a first stretch-broken carbon fiber textile layer on a plate;

forming a first ceramic particle layer over the first stretch-broken carbon fiber textile layer, wherein forming the first ceramic particle layer comprises depositing a first volume of boron carbide powder over the first stretch-broken carbon fiber textile layer;

disposing a second stretch-broken carbon fiber textile layer over the first ceramic particle layer;

forming a second ceramic particle layer over the second stretch-broken carbon fiber textile layer, wherein forming the second ceramic particle layer comprises depositing a second volume of boron carbide powder over the second stretch-broken carbon fiber textile layer; and

disposing a third stretch-broken carbon fiber textile layer over the second ceramic particle layer;

densifying the fibrous preform, and

performing a silicon melt infiltration after the densifying the fibrous preform, wherein the silicon melt infiltration substantially fills a porosity between carbon fibers of the first stretch-broken carbon fiber textile layer, the second stretch-broken carbon fiber textile layer, the third stretch-broken carbon fiber textile layer, and boron carbide particles of the first and second volumes of boron carbide powder with silicon and silicon carbide to form the fiber-reinforced composite component.

2. The method of claim 1 , wherein forming the fibrous preform further comprises:

locating a first shim around an outer perimeter of the first stretch-broken carbon fiber textile layer; and

locating a second shim around an outer perimeter of the second stretch-broken carbon fiber textile layer.

3. The method claim 2 , wherein forming the fibrous preform further comprises:

removing a portion of the first volume of boron carbide powder extending beyond an upper surface of the first shim; and

removing a portion of the second volume of boron carbide powder extending beyond an upper surface of the second shim.

4. The method of claim 1 , wherein the plate is a first plate and wherein forming the fibrous preform further comprises:

disposing a second plate over the third stretch-broken carbon fiber textile layer.

5. The method of claim 4 , wherein at least one of the first plate or the second plate includes at least one of a groove or an orifice.

6. The method of claim 5 , further comprising applying a compressive load to the fibrous preform.

7. A method of forming a fibrous preform for fabricating a composite component, comprising:

disposing a first stretch-broken carbon fiber textile layer on a plate;

forming a first ceramic particle layer over a first stretch-broken carbon fiber textile layer, wherein forming the first ceramic particle layer comprises depositing a first volume of boron carbide powder over the first stretch-broken carbon fiber textile layer;

disposing a second stretch-broken carbon fiber textile layer over the first ceramic particle layer;

forming a second ceramic particle layer over the second stretch-broken carbon fiber textile layer;

disposing a third stretch-broken carbon fiber textile layer over the second ceramic particle layer;

densifying the fibrous preform, and

performing a silicon melt infiltration after the densifying the fibrous preform, wherein the silicon melt infiltration substantially fills a porosity between carbon fibers of the first stretch-broken carbon fiber textile layer, the second stretch-broken carbon fiber textile layer, the third stretch-broken carbon fiber textile layer, and boron carbide particles of the first and second volumes of boron carbide powder with silicon and silicon carbide to form the fiber-reinforced composite component.

8. The method of claim 7 , wherein the plate is a first plate and wherein the method further comprises:

disposing a second plate over the third textile layer, wherein at least one of the first plate or the second plate includes at least one of a groove or an orifice.

9. The method of claim 7 , further comprising:

locating a first shim around an outer perimeter of the first stretch-broken carbon fiber textile layer; and

locating a second shim around an outer perimeter of the second stretch-broken carbon fiber textile layer.

10. The method of claim 9 , further comprising:

selecting the first volume of boron carbide powder such that the first volume of boron carbide powder extends at least to an upper surface of the first shim; and

removing any portion of the first volume of boron carbide powder extending beyond the upper surface of the first shim, the upper surface of the first shim being oriented away from the first plate.

11. The method of claim 7 , further comprising:

disposing the first stretch-broken carbon fiber textile layer on a mold surface;

forming the first ceramic particle layer by depositing a mixture of boron carbide powder and phenolic resin powder over the first stretch-broken carbon fiber textile layer; and

curing the phenolic resin powder.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 28, 2021
From: KIRKPATRICK, CHRISTOPHER T.
To: GOODRICH CORPORATION
Reel/Frame 056069/0456 →
Continuity (2)
Provisional Application 63039092 · Jun 15, 2020
Related Publication 20210387441A1 · Dec 16, 2021
Cited By (3)
US 12,447,715 US 12,528,745 US 12,565,452