Claims
- 1. A catalyst composition for coating the surfaces of cooking devices exposed to cooking residues, said composition containing
- 1. from about 10-94% by weight of a catalytic metal oxide selected from the group consisting of the oxides of cobalt, chromium, iron, nickel, manganese, copper, zinc, the rare earths and mixtures thereof in the form of particles having a size of less than 35 microns and a surface area of about 5-150 square meters per gram with the proviso that when the oxide is manganese oxide, from 0-80% by weight of said oxide can have a surface area in excess of about 150 square meters per gram;
- 2. at least 1% by weight on a dry basis of an alkaline silicate selected from the group consisting of sodium silicate, lithium silicate, potassium silicate, silicates of organic bases having a basic dissociation constant greater than 10.sup..sup.-3 and mixtures thereof, said alkaline silicate being in the form of an aqueous solution; and
- 3. from about 0-20% by weight of a carbonate or hydroxide of one or more metals of said catalytic metal oxides when the catalytic metal oxide of (1) is manganese oxide and from about 1-20% by weight of said carbonate or hydroxide when the catalytic metal oxide of (1) is other than manganese oxide.
- 2. The composition of claim 1 containing in addition up to about 70% by weight of a refractory filler.
- 3. The composition of claim 2 wherein the refractory filler is silica.
- 4. The composition of claim 3 wherein from about 1 to about 50% by weight of the refractory filler is ilmenite.
- 5. The composition of claim 2 containing in addition a thixotropic agent.
- 6. The composition of claim 1 wherein the catalytic metal oxide is manganese oxide.
- 7. The composition of claim 6 wherein the manganese oxide is manganese dioxide.
- 8. The composition of claim 6 wherein the carbonate is manganese carbonate and the alkaline silicate is sodium silicate.
- 9. The composition of claim 6 containing in addition a refractory filler.
- 10. The composition of claim 9 wherein the refractory filler is silica.
- 11. The composition of claim 10 wherein from about 1 to 50% by weight of the refractory filler is ilmenite.
- 12. The composition of claim 9 containing in addition a thixotropic agent.
- 13. The composition of claim 6 wherein the concentration of component (3) is zero.
- 14. The composition of claim 13 wherein the alkaline silicate is sodium silicate.
- 15. The composition of claim 13 containing in addition a refractory filler.
- 16. The composition of claim 15 wherein the refractory filler is silica.
- 17. The composition of claim 16 wherein from about 1 to 50% by weight of the refractory filler is ilmenite.
- 18. The composition of claim 15 containing in addition a thixotropic agent.
- 19. A surface capable of catalyzing the decomposition and oxidation of cooking residues at temperatures below 204.degree. C. comprising a support coated with the composition of claim 1 and thereafter fired at temperatures above about 204.degree. C., said surface having a porosity ranging from about 10 to 30%, a hardness in excess of 3 on moh's scale and losing no more than 15% of its initial porosity at 260.degree. C. when heated to temperatures up to 649.degree. C.
- 20. A surface capable of catalyzing the decomposition and oxidation of cooking residues at temperatures below 204.degree. C. comprising a support coated with the composition of claim 5 and thereafter fired at temperatures above about 204.degree. C., said surface having a porosity ranging from about 10 to 30%, a hardness in excess of 3 on Moh's scale and losing no more than 15% of its initial porosity at 260.degree. C. when heated to temperatures up to 649.degree. C.
- 21. A surface capable of catalyzing the decomposition and oxidation of cooking residues at temperatures below 204.degree. C. comprising a support coated with the composition of claim 6 and thereafter fired at temperatures above about 204.degree. C., said surface having a porosity ranging from about 10 to 30%, a hardness in excess of 3 on Moh's scale and losing no more than 15% of its initial porosity at 260.degree. C. when heated to temperatures up to 649.degree. C.
- 22. A surface capable of catalyzing the decomposition and oxidation of cooking residues at temperatures below 204.degree. C. comprising a support coated with the composition of claim 8 and thereafter fired at temperatures above about 204.degree. C., said surface having a porosity ranging from about 10 to 30%, a hardness in excess of 3 on Moh's scale and losing no more than 15% of its initial porosity at 260.degree. C. when heated to temperatures up to 649.degree. C.
- 23. A surface capable of catalyzing the decomposition and oxidation of cooking residues at temperatures below 204.degree. C. comprising a support coated with the composition of claim 12 and thereafter fired at temperatures above about 204.degree. C., said surface having a porosity ranging from about 10 to 30%, a hardness in excess of 3 on Moh's scale and losing no more than 15% of its initial porosity at 260.degree. C. when heated to temperatures up to 649.degree. C.
- 24. A surface capable of catalyzing the decomposition and oxidation of cooking residues at temperatures below 204.degree. C. comprising a support coated with the composition of claim 13 and thereafter fired at temperatures above about 204.degree. C., said surface having a porosity ranging from about 10 to 30%, a hardness in excess of 3 on Moh's scale and losing no more than 15% of its initial porosity at 260.degree. C. when heated to temperatures up to 649.degree. C.
- 25. A process for making a surface capable of catalyzing the decomposition and oxidation of cooking residues at temperatures below 204.degree. C. comprising the steps of
- 1. pulverizing manganese oxide in the form of particles having a size of greater than 35 microns and at least 20% by weight of which has a surface area of from about 5-150 square meters per gram to reduce the particle size to less than 35 mirons;
- 2. preparing a catalytic coating composition by mixing manganese oxide from step (1) in an amount of about 10-94% by weight with at least 1% by weight on a dry basis of an alkaline silicate selected from the group consisting of sodium silicate, lithium silicate, potassium silicate, the silicates of organic bases having a basic dissociation constant greater than 10.sup..sup.-3, and mixtures thereof, said alkaline silicate being in the form of an aqueous solution and said weight percentages being based on the weight of the total composition;
- 3. coating a support with the catalytic coating composition of step (2); and
- 4. firing the coated support at a temperature above about 204.degree. C.
- 26. The process of claim 25 wherein the manganese oxide is manganese dioxide.
CROSS-REFERENCE TO RELATED APPLICATIONS
This application is a continuation-in-part of my copending application Ser. No. 472,423, filed on May 22, 1974, and now abandoned.
US Referenced Citations (2)
Number |
Name |
Date |
Kind |
3361531 |
Erb et al. |
Jan 1968 |
|
3460523 |
Stiles et al. |
Aug 1969 |
|
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
472423 |
May 1974 |
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