Claims
- 1. In a cyclic, essentially two-step process for the production of methane from carbon-monoxide-containing gas streams by (a) disproportionation of the carbon monoxide at a temperature of about 100.degree.-350.degree. C. in a catalyst-containing reactor to form carbon monoxide and an active surface carbon that is deposited on the surface of the disproportionation catalyst essentially without the formation of inactive coke thereon, (b) reaction of said active surface carbon with steam at about 100.degree.-400.degree. C. to form methane and carbon dioxide, and (c) passing additional carbon monoxide-containing gas over said catalyst from step (b) and repeating said steps (a) and (b) a cyclic basis, the improvement comprising removing the exothermic heat of reaction generated during each of said steps (a) and (b) from the catalyst bed, or a portion thereof essentially prior to the exposure of the catalyst bed, or said portion thereof, to the exothermic heat of reaction of the next succeeding step of the cyclic process such that said steps (a) and (b) are carried out between an initation temperature as low as on the order of about 230.degree. C. and an upper temperature not exceeding on the order of about 310.degree. C. with the essentially complete removal of all of the heat generated during each complete cycle, with said steps (a) and (b) being carried out in a catalyst-packed tubular reactor containing a cooling medium, and including passing the carbon monoxide-containing feed gas stream to said tubular reactor at an initiation temperature as low as on the order of about 230.degree. C. and at a CO concentration of at least about 2.1 percent by volume, the temperature rise during the disproportionation step thereby being limited to less than about 80.degree. C. and the reaction/heating front resulting from the exothermic heat of reaction traveling through the reactor tubes at a faster rate than the slower moving cooling front, with the disproportionation reaction heat front thereby being temporarily stored in the catalyst-containing tubular reactor, with the resulting higher temperature of the catalyst providing the driving force to dissipate heat through the walls of the tubes to said cooling medium provided in sufficient quantity to remove said heat, so that, at the end of disproportionation step (a), the inlet end of the catalyst bed has been cooled as low as the initiation temperature range prior to the commencement of step (b), the middle portion of the bed has been cooled to an intermediate temperature, and the effluent end of the catalyst bed is at the highest temperature but not exceeding said upper temperature of about 310.degree. C., the catalyst just in front of the reaction/heating front of steaming step (b) having just been cooled down so that said steaming reaction/heating front continually approaches cooled catalyst, with the steaming reaction heat being temporarily stored in the catalyst-containing bed, with the resulting higher temperature of the catalyst providing the driving force to dissipate heat through the walls of the tubes to the cooling medium, the next succeeding disproportionation reaction/heating front thus approaching catalyst that has just cooled down so that said front approaches cooled catalyst, thereby avoiding the accumulation of heat over the course of consecutive processing cycles by the rippling of disproportionation and steaming fronts down the length of said reactor.
- 2. The process of claim 1 in which said feed gas stream has a CO concentration of at least about 25 percent by volume.
- 3. The process in claim 1 in which said disproportionation catalyst comprises nickel present in its metal state.
- 4. The process of claim 1 in which said feed gas stream has a CO concentration of at least about 4.3 percent by volume.
- 5. The process of claim 1 and including recycling by-product carbon dioxide to the tubular reactor upon completion of the disproportionation step, said carbon dioxide serving to purge the bed, thus displacing residual feed gas remaining in the void spaces of the catalyst and ensuring a high purity methane product.
Parent Case Info
This application is a division of our prior U.S. Ser. No. 158,802, filed June 12, 1980, now U.S. Pat. No. 4,351,646.
STATEMENT
The Government of the United States of America has rights pursuant to Contract No. ET-78-C-03-2153 awarded by the Department of Energy.
US Referenced Citations (2)
Number |
Name |
Date |
Kind |
4242103 |
Rabo et al. |
Dec 1980 |
|
4351646 |
Frost et al. |
Sep 1982 |
|
Non-Patent Literature Citations (1)
Entry |
Hougen et al., "Chemical Process Principles", Part three, pp. 1031-1034, John Wiley & Sons, 1947. |
Divisions (1)
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Number |
Date |
Country |
Parent |
158802 |
Jun 1980 |
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