Claims
- 1. A self-supporting ceramic composite body comprising a plurality of axially aligned, spaced apart cylindrical walls having a bounded cross-section forming a central bore and at least one longitudinal channel between said cylindrical walls, and connecting means for supporting said cylindrical walls in a spaced relationship, said connecting means being located between said cylindrical walls and said cylindrical walls and said connecting means comprising a polycrystalline ceramic matrix incorporating at least one filler material, said cylindrical walls and said connecting means inversely replicating in opposed directions the geometry of a shaped parent metal ingot disposed in at least one bedding of filler material upon evacuation of said parent metal from its initial location to form said cylindrical walls and said connecting means concurrently with the oxidation reaction of molten parent metal by migration of said molten parent metal from said initial location to form said polycrystalline ceramic matrix within said at least one bedding of filler material, said ceramic matrix comprising the oxidation reaction product of said parent metal and an oxidant.
- 2. The self-supporting ceramic composite body of claim 1, wherein said parent metal comprises aluminum and said oxidation reaction product comprises alumina.
- 3. The self-supporting ceramic composite body of claim 1, wherein said axially aligned spaced apart cylindrical walls are substantially concentric.
- 4. The self-supporting ceramic composite body of claim 1, further comprising a dopant utilized in conjunction with said parent metal.
- 5. The self-supporting ceramic composite body of claim 1, wherein said parent metal comprises aluminum.
- 6. The self-supporting ceramic composite body of claim 5, further comprising a dopant utilized in conjunction with said parent metal.
- 7. The self-supporting ceramic composite body of claim 1, wherein said oxidant comprises a vapor-phase oxidant.
- 8. The self-supporting ceramic composite body of claim 7, wherein said oxidant comprises an oxygen-containing gas.
- 9. The self-supporting ceramic composite body of claim 7, wherein said oxidant comprises a nitrogen-containing gas.
- 10. The self-supporting ceramic composite body of claim 1, wherein said oxidant comprises an oxidant which is solid when reacting with the molten parent metal to form said oxidation reaction product.
- 11. The self-supporting ceramic composite body of claim 10, wherein said oxidant comprises a reducible compound.
- 12. The self-supporting ceramic composite body of claim 10, wherein said oxidant comprises a material selected from the group consisting of silica, boron, carbon, and cordierite.
- 13. The self-supporting ceramic composite body of claim 1, wherein said parent metal comprises at least one material selected from the group consisting of silicon, titanium, tin, zirconium, and hafnium.
- 14. The self-supporting ceramic composite body of claim 1, wherein said at least one bedding of filler material comprises a material selected from the group consisting of at least one metal oxide of a metal selected from the group consisting of aluminum, cerium, hafnium, titanium, silicon, magnesium, boron, lanthanum, neodymium, praseodymium, samarium, scandium, thorium, uranium, yttrium and zirconium.
- 15. The self-supporting ceramic composite body of claim 1, wherein said ceramic matrix comprises at least one material selected from the group consisting of an oxide, a nitride, a carbide, and a boride.
- 16. The self-supporting ceramic composite body of claim 1, wherein said geometry of said parent metal comprises at least two spaced apart open-ended cylinders.
CROSS-REFERENCE TO RELATED APPLICATION
This application is a continuation of U.S. patent application Ser. No. 07/084,550, which was filed on Aug. 10, 1987, and which issued as U.S. Pat. No. 4,886,766 on Dec. 12, 1989.
US Referenced Citations (13)
Foreign Referenced Citations (5)
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0116809 |
Aug 1984 |
EPX |
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Non-Patent Literature Citations (2)
Entry |
"Oxidation of Molten Aluminum Alloys, Reaction with Refractories"-M. Drouzy and M. Richard-Mar. 1974, Fonderie, France No. 332, pp. 121-128. |
"Refractories for Aluminum Alloy Melting Furnaces"-B. Clavaud and V. Jost-Sep. 1980-Lillian Brassinga (from French), Jan. 1985. |
Continuations (1)
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Number |
Date |
Country |
Parent |
84550 |
Aug 1987 |
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