Claims
- 1. An apparatus for producing a high density fiber reinforced composite material for lowering porosity of a porous fiber reinforced composite material by forming matricies in pores of said porous fiber reinforced composite material through chemical vapor infiltration, said apparatus comprising:
- a reaction tube having a gas inlet port and a gas outlet port;
- gas supply means for supplying a reactive gas for serving as a raw material for said matricies and a carrier gas into said reaction tube through said gas inlet port;
- heating means for heating said reaction tube;
- a large number of particles arranged in said reaction tube and pushed up by the pressure of said gases flowing from said gas inlet port toward said gas outlet port; and
- holding means for holding said porous fiber reinforced composite material in a floating region of said particles in said reaction tube,
- wherein said particles are adapted to strike against a surface of the porous fiber reinforced composite material and thereby remove soot from said surface.
- 2. The apparatus in accordance with claim 1, wherein
- said particles are prepared from ceramic fine powder of 100 to 200 .mu.m in particle diameter.
- 3. The apparatus in accordance with claim 1, further comprising:
- a fixed member being fixed in said reaction tube for allowing passage of said gases; and
- a large number of balls arranged on said fixed member for supporting said large number of particles from below.
- 4. The apparatus in accordance with claim 1, wherein
- said porous fiber reinforced composite material contains at least one material selected from a group of whiskers, short fibers, paper, felt, long fibers, nonwoven fabric, two dimensional woven fabric and three dimensional woven fabric, as reinforcing fiber.
- 5. The apparatus in accordance with claim 1, wherein
- said porous fiber reinforced composite material contains at least one material selected from a group of SiC, Si.sub.3 N.sub.4, B, and carbon, as reinforcing fiber.
- 6. The apparatus in accordance with claim 1, wherein
- said porous fiber reinforced composite material contains at least one element selected from a group of SiC, Si.sub.3 N.sub.4, SiO.sub.2, TiC, Al.sub.2 O.sub.3, TiN, BN and carbon, as a matrix.
- 7. A method of producing a high density fiber reinforced composite material for lowering porosity of a porous fiber reinforced composite material by forming matricies in pores of said porous fiber reinforced composite material through chemical vapor infiltration, said method comprising the steps of:
- arranging a porous fiber reinforced composite material in a reaction tube having a gas inlet port and a gas outlet port;
- arranging a large number of particles in said reaction tube;
- introducing a reaction gas for serving as a raw material for said matricies and a carrier gas into said reaction rube through said gas inlet port;
- pushing up said large number of particles by the pressure of said gases flowing from said gas inlet port toward said gas outlet port for bringing the same into floating states; and
- forming matricies in pores of said porous fiber reinforced composite material while removing soot by striking said floating particles against said porous fiber reinforced composite material.
- 8. The method in accordance with claim 7, wherein said particles are prepared from ceramic fine powder of 100 to 200 .mu.m in particle diameter.
- 9. The method in accordance with claim 7, wherein
- said porous fiber reinforced composite material contains at least one material selected from a group of whiskers, short fibers, paper, felt, long fibers, nonwoven fabric, two dimensional woven fabric and three dimensional woven fabric, as reinforcing fiber.
- 10. The method in accordance with claim 7, wherein
- said porous fiber reinforced composite material contains at least one material selected from a group of SiC, Si.sub.3 N.sub.4, B, and carbon, as reinforcing fiber.
- 11. The method in accordance with claim 7, wherein
- said porous fiber reinforced composite material contains at least one element selected from a group of SiC, Si.sub.3 N.sub.4, SiO.sub.2, TiC, Al.sub.2 O.sub.3, B.sub.4 C, TiN, BN and carbon, as a matrix.
Priority Claims (1)
Number |
Date |
Country |
Kind |
1-139846 |
May 1989 |
JPX |
|
CROSS-REFERENCE TO RELATED APPLICATION
The present application is a continuation-in-part Application of our then copending U.S. patent application Ser. No.: 07/530,232; filed on May 30, 1990, now abandoned.
US Referenced Citations (1)
Number |
Name |
Date |
Kind |
4895108 |
Caputo |
Jan 1990 |
|
Foreign Referenced Citations (1)
Number |
Date |
Country |
0188270 |
Jul 1986 |
EPX |
Non-Patent Literature Citations (4)
Entry |
Condit, Am. Ceramic Soc. Bul. vol. 66, No. 2, (1987) pp. 359-362. |
Stinton, Am Ceramic Soc. Bul. vol. 67, No. 2 (1988) pp. 350-355. |
Stinton, Am Ceramic Soc. Bul. vol. 65, No. 2 (1986) pp. 347-350. |
Ceram. Eng. Sci. Proc. vol. 6, pp. 694-706 (1985) by A. J. Caputo et al. |
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
530232 |
May 1990 |
|