Claims
- 1. A process of manufacturing a rigid refractory shape comprising the steps of: (a) mixing refractory particles selected from the group consisting essentially of alumina particles, zircon particles, silica particles, chromium oxide particles, and silicon carbide particles with bond-forming ingredients consisting of aluminum metal powder, water, and a corrosion accelerator in solution with said water to form a uniform mixture; (b) compacting said mixture in a form at least in part defining said refractory shape; and (c) reacting said bond-forming ingredients to form aluminum hydroxide bonds between said refractory particles and thereby form said rigid refractory shape, said aluminum metal powder weighing substantially from 5 to 10% the weight of said refractory particles, said water weighing substantially from 2 to 15% the weight of said refractory particles, and said corrosion accelerator being from the group consisting essentially of aluminum nitrate, aluminum chloride, nitric acid, hydrochloric acid, sulfuric acid, ammonium oxalate, oxalic acid, chromic acid, chromium nitrate, magnesium oxide, calcium oxide, hydroxylacetic acid, gluconic acid, and citric acid and weighing substantially from 2 to 10% the weight of said refractory particles and substantially from 35 to as much as 200% the weight of said aluminum metal powder.
- 2. The process of claim 1 wherein said refractory particles and bond-forming ingredients are further mixed with a reaction control agent that chemically reacts with a gaseous reaction product of said aluminum metal powder, water, and corrosion accelerator when said refractory particles are bonded to form said rigid refractory shape.
- 3. The process defined by claim 2 wherein said reaction control agent is from the group consisting essentially of glucose, aluminum chloride excepting when said corrosion accelerator is aluminum chloride, chromic acid excepting when said corrosion accelerator is chromic acid, ethyl alcohol, methyl alcohol, fructose, and dextrose, and wherein said reaction control agent weighs substantially from 30 to 50% the weight of said aluminum metal powder.
- 4. The chemical reaction product formed at temperatures less than approximately 250.degree. F from a compacted mixture consisting essentially of refractory particles in size between flour and 4 mesh and from the group consisting of alumina particles, zircon particles, silica particles, chromium oxide particles, and silicon carbide particles, aluminum metal powder weighing substantially from 5 to 10% the weight of said refractory particles, water weighing substantially from 2 to 15% the weight of said refractory particles, and corrosion accelerator selected from the group consisting essentially of aluminum nitrate, aluminum chloride, nitric acid, hydrochloric acid, sulfuric acid, ammonium oxalate, oxalic acid, chromic acid, chromium nitrate, magnesium oxide, calcium oxide, hydroxylacetic acid, gluconic acid, and citric acid and weighing substantially from 2 to 10% the weight of said refractory particles and substantially from 35% to as much as 200% the weight of said aluminum metal powder.
- 5. The product defined by claim 4 wherein said refractory particles, aluminum metal powder, water, and corrosion accelerator compacted mixture further consists of a reaction control agent that chemically combines with a gaseous chemical reaction product of said aluminum metal powder, water, and corrosion accelerator when said refractory particles are bonded to form said rigid refractory shape.
- 6. The product defined in claim 5 wherein said reaction control agent is from the group consisting essentially of glucose, aluminum chloride excepting when said corrosion accelerator is aluminum chloride, chromic acid excepting when said corrosion accelerator is chromic acid, ethyl alcohol, methyl alcohol, fructose, and dextrose and wherein said reaction control agent weighs substantially from 30 to 50% the weight of said aluminum metal powder.
- 7. The process defined by claim 1 wherein said mixture is heated by the external application of heat to a temperature in the approximate range of 60.degree. to 200.degree. F prior to forming said aluminum hydroxide bonds.
- 8. The product defined by claim 4 wherein said corrosion accelerator and water ingredients have a pH less than approximately 5 or greater than approximately 8.
- 9. The process defined by claim 1 wherein said corrosion accelerator and water ingredients have a pH less than approximately 5 or greater than approximately 8.
- 10. The process defined by claim 7 wherein said mixture is heated by the external application of heat prior to compacting said mixture.
CROSS-REFERENCES
This is a continuation-in-part of my previous application Ser. No. 370,624 filed June 18, 1973, and also of my previous abandoned application Ser. No. 172,550, filed Aug. 17, 1971, both now abandoned.
US Referenced Citations (8)
Related Publications (1)
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Date |
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172550 |
Aug 1972 |
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Continuation in Parts (1)
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370624 |
Jun 1973 |
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