Claims
- 1. A methanation process wherein:
- 1. a stream of contaminated feed gas comprising hydrogen and carbon monoxide and/or carbon dioxide is contacted with a nickel-alumina catalyst at temperatures between about 600.degree. and 1500.degree. F to produce methane;
- 2. said catalyst has a total nickel content between about 15 and 60% by weight, calculated as Ni, one portion of said nickel content being in an active metallic state, and another portion thereof being nickel aluminate, the nickel specific surface area of said catalyst in its freshly reduced state being between about 5 and 50 m.sup.2 /gm of Ni;
- 3. said feed gas is contaminated with H.sub.2 S or a sulfur compound which yields H.sub.2 S upon hydrogenation, whereby said catalyst becomes at least partially deactivated;
- 4. said deactivated catalyst is reactivated with essentially no removal of sulfur therefrom by contacting the same with a substantially sulfur-free stream of reactivating gas consisting essentially of hydrogen, said reactivation contacting being carried out at between about 800.degree. and 1500.degree. F and continued for at least about 5 hours; and
- 5. the resulting reactivated catalyst is again placed on-stream for methanation as defined in (1) above.
- 2. A process as defined in claim 1 wherein said reactivation contacting is continued for at least about 12 hours.
- 3. A process as defined in claim 1 wherein said stream of reactivating gas contacts said catalyst in an opposite flow direction from the flow direction of said feed gas stream.
- 4. A process as defined in claim 1 wherein said catalyst is prepared by the steps of:
- 1. forming at a relatively low temperature a homogeneous aqueous solution of an aluminum salt, a nickel salt and urea;
- 2. heating said aqueous solution to a sufficiently high temperature to bring about hydrolysis of said urea with resultant gradual increase in pH of said solution and formation of a coprecipitate of basic compounds of nickel and aluminum;
- 3. separating said coprecipitate from said solution before the latter reaches a pH above about 8; and
- 4. drying and calcining said coprecipitate.
- 5. A process as defined in claim 4 wherein said catalyst contains between about 25 and 50% by weight of nickel, calculated as Ni.
- 6. A process as defined in claim 4 wherein the nickel specific surface area of said catalyst is between about 10 and 35 m.sup.2 /g of Ni.
- 7. A methanation process wherein:
- 1. a stream of contaminated feed gas comprising hydrogen and carbon monoxide and/or carbon dioxide is contacted with a nickel-alumina catalyst at temperatures between about 600.degree. and 1500.degree. F to produce methane;
- 2. said catalyst has a total nickel content between about 25 and 50% by weight, calculated as Ni, one portion of said nickel content being in an active metallic state, and another portion thereof being nickel aluminate, the nickel specific surface area of said catalyst in its freshly reduced state being between about 10 and 35 m.sup.2 /gm of Ni;
- 3. said feed gas is contaminated with H.sub.2 S or a sulfur compound which yields H.sub.2 S upon hydrogenation, whereby said catalyst becomes at least partially deactivated;
- 4. said deactivated catalyst is reactivated with essentially no removal of sulfur therefrom by contacting the same with a substantially sulfur-free stream of reactivating gas consisting essentially of hydrogen, said reactivation contacting being carried out at between about 800.degree. and 1500.degree. F and continued for at least about 5 hours; and
- 5. the resulting catalyst is again placed on-stream for methanation as defined in (1) above.
- 8. A process as defined in claim 7 wherein said reactivation contacting is continued for at least about 50 hours.
- 9. A process as defined in claim 7 wherein said stream of reactivating gas contacts said catalyst in an opposite flow direction from the flow direction of said feed gas stream.
- 10. A process as defined in claim 7 wherein said catalyst is prepared by the steps of:
- 1. forming at a relatively low temperature a homogeneous aqueous solution of an aluminum salt, a nickel salt and urea;
- 2. heating said aqueous solution to a sufficiently high temperature to bring about hydrolysis of said urea with resultant gradual increase in pH of said solution and formation of a coprecipitate of basic compounds of nickel and aluminum;
- 3. separating said coprecipitate from said solution before the latter reaches a pH above about 8; and
- 4. drying and calcining said coprecipitate.
RELATED APPLICATIONS
This application is a continuation-in-part of Ser. No. 630,977, filed Nov. 12, 1975 and now abandoned.
US Referenced Citations (16)
Continuation in Parts (1)
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Number |
Date |
Country |
Parent |
630977 |
Nov 1975 |
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