Claims
- 1. A process for the purification of an aqueous stream containing dissolved and/or suspended organic materials therein, which process comprises contacting said aqueous stream with an oxygen-containing gas and a catalyst consisting essentially of zinc titanate under oxidative conditions including a temperature and a ratio of water to oxygen sufficient to convert said organic materials to innocuous materials and said aqueous stream into a potable aqueous product.
- 2. A process according to claim 1 wherein said aqueous stream is produced in an oxidative dehydrogenation process.
- 3. A process according to claim 1 wherein said contacting is effected at a temperature in the range of 350.degree.-1200.degree. F. (177.degree.-649.degree. C.).
- 4. A process according to claim 1 wherein said contacting is effected at a molar ratio of water to oxygen in the range of 10:1 to 200:1.
- 5. A process according to claim 1 wherein said oxygen-containing gas is air.
- 6. A process according to claim 1 wherein said catalyst is zinc orthotitanate.
- 7. A process in accordance with claim 1 wherein said catalyst is promoted with a first promoter at least one member of which is selected from the group consisting of the metals of Group IB of the Periodic Table, the metals of Group VIIB of the Periodic Table, and compounds thereof.
- 8. A process in accordance with claim 7 wherein said first promoter is a mixture of copper manganese.
- 9. A process in accordance with claim 7 wherein said catalyst is promoted with a second promoter at least one member of which is selected from the group consisting of the rare earth metals and compounds thereof.
- 10. A process in accordance with claim 9 wherein said first promoter is a mixture of copper and manganese and said second promoter is lanthanum.
- 11. A process in accordance with claim 9 wherein the concentration of said first pormoter and said second promoter is in the range of 0.05-20 weight percent calculated as the metal and based upon the weight of the zinc titanate.
- 12. A process in accordance with claim 9 wherein the concentration of said first promoter and said second promoter is in the range of 0.1-10 weight percent calculated as the metal and based upon the weight of the zinc titanate.
- 13. A process according to claim 1 wherein the total carbon cntent of the aqueous stream is within the range of about 10 to about 100,000 parts per million and wherein said aqueous stream is contacted with said oxygen-containing gas and the catalyst in the liquid phase, at a temperature within the range of from about 350.degree. F. to about 550.degree. F. (177.degree.-288.degree. C.) at a water to oxygen molar ratio within the range of about 10:1 to about 200:1 and at a liquid hourly space velocity (LHSV) within the range of from about 0.1 to about 10.
- 14. A process according to claim 1 wherein the total carbon content of the aqueous stream is within the range of about 25 to about 10,000 parts per million and wherein said aqueous stream is contacted with said oxygen-containing gas and the catalyst in the liquid phase, at a temperature within the range of from about 400.degree. F. to about 500.degree. F. (204.degree.-260.degree. C.), at a water to oxygen molar ratio within the range of about 10:1 to about 200:1 and at a liquid hourly space velocity (LHSV) within the range of from about 2 to about 5.
- 15. A process according to claim 1 wherein the total carbon content of the aqueous solution is within the range of about 10 to about 100,000 parts per million and wherein said aqueous stream is contacted with said oxygen-containing gas and the catalyst in the vapor phase at a temperature within the range of from about 600.degree. to about 1200.degree. F. (316.degree.-649.degree. C.), at a water-to-oxygen mol ratio within the range of about 10:1 to about 200:1 and at a gas hourly space velocity (GHSV) within the range of from about 0.1 to about 50.
- 16. A process according to claim 1 wherein the total carbon content of the aqueous stream is within the range of about 25 to about 10,000 parts per million and wherein said aqueous stream is contacted with said oxygen-containing gas and the catalyst in the vapor phase at a temperature within the range of from about 900.degree. to about 1000.degree. F. (482.degree.-538.degree. C.), at a water-to-oxygen mol ratio within the range of about 10:1 to about 200:1 and at a gas hourly space velocity (GHSV) within the range of from about 20 to about 40.
- 17. A process for the purification of an aqueous stream containing dissolved and/or suspended organic materials therein, which process comprises contacting said aqueous stream with an oxygen-containing gas and a catalyst consisting essentially of zinc titanate wherein said process is carried out at a temperature within the range of about 350.degree. to about 1200.degree. F. and with a water-to-oxygen mol ratio within the range of 10:1 to 200:1 so that at least a portion of said organic materials are converted to innocuous materials and said aqueous stream is converted into a potable aqueous product.
- 18. A process for improving the purity of an aqueous stream containing dissolved and/or suspended organic materials therein, which process comprises contacting said aqueous stream with an oxygen-containing gas and a catalyst consisting essentially of zinc titanate under oxidative conditions including a temperature and a ratio of water to oxygen sufficient to convert at least a portion of said organic materials to innocuous materials so as to improve the purity of said aqueous stream.
- 19. A process according to claim 18 wherein said aqueous stream is produced in an oxidative dehydrogenation process.
- 20. A process according to claim 18 wherein said contacting is effected at a temperature in the range of 350.degree.-1200.degree. F. (177.degree.-649.degree. C.).
- 21. A process according to claim 18 wherein said contacting is effected at a molar ratio of water to oxygen in the range of 10:1 to 200:1.
- 22. A process according to claim 18 wherein said oxygen-containing gas is air.
- 23. A process according to claim 18 wherein said catalyst is zince orthotitanate.
- 24. A process in accordance with claim 18 wherein said catalyst is promoted with a first promoter at least one member of which is selected from the group consisting of the metals of Group IB, of the Periodic Table, the metals of Group VIIB, of the Periodic Table, and compounds thereof.
- 25. A process in accordance with claim 24 wherein said first promoter is a mixture of copper and manganese.
- 26. A process in accordance with claim 24 wherein said catalyst is promoted with a second promoter at least one member of which is selected from the group consisting of the rare earth metals and compounds thereof.
- 27. A process in accordance with claims 26 wherein said first promoter is a mixture of copper and manganese and said second promoter is lanthanum.
- 28. A process in accordance with claim 26 wherein the concentration of said first promoter and said second promoter is in the range of 0.05-20 weight percent calculated as the metal and based upon the weight of the zinc titante.
- 29. A process in accordance with claim 26 wherein the concentration of said first promoter and said second promoter is in the range of 0.1-10 weight percent calculated as the metal and based upon the weight of the zinc titanate.
- 30. A process according to claim 18 wherein the total carbon content of the aqueous stream is within the range of about 10 to about 100,000 parts per million and wherein said aqueous stream is contacted with said oxygen-containing gas and the catalyst in the liquid phase, at a temperature within the range of from about 350.degree. F. to about 550.degree. F. (177.degree.-288.degree. C.) at a water to oxygen molar ratio within the range of about 10:1 to about 200:1 and at a liquid hourly space velocity (LHSV) within the range of from about 0.1 to about 10.
- 31. A process according to claim 18 wherein the total carbon content of the aqueous stream is within the range of about 25 to about 10,000 parts per million and wherein said aqueous stream is contacted with said oxygen-containing gas and the catalyst in the liquid phase, at a temperature within the range of from about 400.degree. F. to about 500.degree. F. (204.degree.-260.degree. C), at a water to oxygen molar ratio within the range of about 10:1 to about 200:1 and at a liquid hourly space velocity (LHSV) within the range of from about 2 to about 5.
- 32. A process according to claim 18 wherein the total carbon content of the aqueous solution is within the range of about 10 to about 100,000 parts per million and wherein said aqueous stream is contacted with said oxygen-containing gas and the catalyst in the vapor phase at a temperature within the range of from about 600.degree. to about 1200.degree. F. (316.degree.-649.degree. C.), at a water-to-oxygen mol ratio within the range of about 10:1 to about 200:1 and at a gas hourly space velocity (GHSV) within the range of from about 0.1 to about 50.
- 33. A process according to claim 18 wherein the total carbon content of the aqueous stream is within the range of about 25 to about 10,000 parts per million and wherein said aqueous stream is contacted with said oxygen-containing gas and the catalyst in the vapor phase at a temperature within the range of from about 900.degree. to about 1000.degree. F. (482.degree.-538.degree. C), at a water-to-oxygen mol ratio within the range of about 10:1 to about 200:1 and at a gas hourly space velocity (GHSV) within the range of from about 20 to about 40.
- 34. A process for improving the purity of an aqueous stream containing dissolved and/or suspended organic materials therein, which process comprises contacting said aqueous stream with an oxygen-containing gas and a catalyst consisting essentially of zinc titanate, wherein said process is carried out at a temperature within the range of about 350.degree. to about 1200.degree. F. and with a water-to-oxygen mol ratio within the range of 10:1 to 200:1 so that at least a portion of said organic materials are converted to innocuous materials so as to improve the purity of said aqueous stream.
Parent Case Info
This application is a continuation-in-part of application Ser. No. 877,539, filed Feb. 13, 1978, now abandoned.
US Referenced Citations (5)
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
877539 |
Feb 1978 |
|