Claims
- 1. An internal combustion engine combustion chamber component comprising a plurality of substantially titanium-free ceramic layers selected from the group consisting of (a) aluminosilicate, (b) lithium aluminosilicate, (c) magnesium aluminosilicate, and (d) mixtures thereof, each layer reinforced with a plurality of unidirectional, continuous length silicon carbide fibers, each layer having an axial flexural strength greater than 70,000 psi, a high fracture toughness exemplified by a critical stress intensity factor greater than 10.times.10.sup.3 psi (inch).sup.1/2, high temperature strength, high temperature oxidation stability, and good insulating properties.
- 2. An internal combustion engine combustion chamber component comprising a silicon carbide fiber reinforced glass composite consisting essentially of about 30% to about 70% by volume silicon carbide fibers in a glass matrix selected from the group consisting of borosilicate glass, high silica content glass, aluminosilicate glass and mixtures thereof, the composite having a fracture toughness exemplified by a critical stress intensity factor above about 15,000 psi (inch).sup.1/2, high temperature strength, high temperature oxidation stability and insulating properties.
- 3. The component of claims 1 or 2 wherein the silicon carbide fiber containing layers are uniaxially oriented.
- 4. The component of claims 1 or 2 wherein the silicon carbide fiber containing layers are multiaxially oriented.
- 5. The component of claims 1 or 2 wherein the silicon carbide fibers comprise a multifilament silicon carbide yarn with an average filament diameter of up to 50 microns.
- 6. The component of claim 5 wherein the yarn has an average filament diameter of 5-15 microns.
- 7. The component of claims 1 or 2 wherein the silicon carbide fibers are present in an amount of at least about 40% by volume.
- 8. The component of claim 4 wherein the fibers are oriented to 0.degree./90.degree., 0.degree./.+-.45.degree./90.degree., or 0.degree./30.degree./60.degree./90.degree. orientation.
- 9. The component of claim 1 wherein the composite is formed by starting with the ceramic in the glassy state and converting it from the glassy state to the ceramic state after densification of the composite.
- 10. The composite of claim 2 having a flexural strength above about 60,000 psi up to a temperature of about 600.degree. C.
- 11. The composite of claim 2 wherein the fibers have a substantially 0.degree./90.degree. orientation within the composite.
- 12. The composite of claim 11 wherein the silicon carbide fiber is present in an amount about 50% by volume.
- 13. The component of claim 2 having a flexural strength above about 150,000 psi at temperatures up to about 700.degree. C.
- 14. The component of claim 2 having a fracture toughness above about 25,000 psi (inch).sup.1/2.
- 15. The component of claims 1 or 2 wherein the component is a cylinder head hot plate.
- 16. The component of claims 1 or 2 wherein the component is a piston, piston cap, cylinder wall sleeve, or valve.
- 17. An internal combustion engine containing at least one combustion chamber component comprising a plurality of substantially titanium-free ceramic layers selected from the group consisting of (a) aluminosilicate, (b) lithium aluminosilicate, (c) magnesium aluminosilicate, and (d) mixtures thereof, each layer reinforced with a plurality of unidirectional, continuous length silicon carbide fibers, each layer having an axial flexural strength greater than 70,000 psi, a high fracture toughness exemplified by a critical stress intensity factor greater than 10.times.10.sup.3 psi (inch).sup.1/2, high temperature strength, high temperature oxidation stability, and good insulating properties.
- 18. An internal combustion engine containing at least one combustion chamber component comprising a silicon carbide fiber reinforced glass composite consisting essentially of about 30% to about 70% by volume silicon carbide fibers in a glass matrix selected from the group consisting of borosilicate glass, high silica content glass, aluminosilicate glass and mixtures thereof, the composite having a fracture toughness exemplified by a critical stress intensity factor above about 15,000 psi (inch).sup.1/2, high temperature strength, high temperature oxidation stability and insulating properties.
- 19. The engine of claims 17 or 18 wherein the component is a cylinder head hot plate.
- 20. The engine of claims 17 or 18 wherein the component is a piston, piston cap, cylinder wall sleeve, or valve.
Parent Case Info
This application is a continuation-in-part of copending U.S. patent applications Ser. Nos. 121,081, filed Feb. 13, 1980 and 147,672, filed May 7, 1980, now U.S. Pat. No. 4,314,852.
US Referenced Citations (1)
Number |
Name |
Date |
Kind |
3892583 |
Winter et al. |
Jul 1975 |
|
Non-Patent Literature Citations (1)
Entry |
Kamo et al., "Ceramics for Adiabatic Diesel Engine", Proceedings of the Workshop on High Temperature Materials for Advanced Military Engines, vol. II, pp. 367-390, Institute of Defense Analysis, Wash., D.C., Paper No. P-1421, published Sep. 1979. |
Related Publications (1)
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Number |
Date |
Country |
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147672 |
May 1980 |
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Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
121081 |
Feb 1980 |
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