Claims
- 1. A process for generating both a substantially pure hydrogen stream at a pressure in the range of 1 to 200 atmospheres and a fuel gas stream, said process comprising;
- (a) introducing into a first molten metal bath at 1200.degree. to 2550.degree. C. (2192.degree.-4532.degree. F.) in a first zone a carbonaceous first feed to maintain 1-5 wt % dissolved carbon in said first molten metal bath;
- (b) transferring at least a portion of said first molten metal bath to a second molten metal bath in a second zone; maintaining the temperature in said second metal bath at least 150.degree. C. (270.degree. F.) higher than said first molten metal bath, and maintaining both the temperature and reducing the carbon content of said second molten metal bath by adding a controlled amount of molecular oxygen to oxidize carbon in said second molten metal bath and to produce said fuel gas stream;
- (c) transferring at least a portion of molten material from said second molten metal bath to a third molten metal bath in a third zone, maintaining said third molten metal bath to have about 1-5 wt % carbon content and a temperature at least 50.degree. C. (90.degree. F.) higher than said first molten metal bath by adding a pure hydrocarbon second feed to said third zone whereby substantially pure hydrogen gas is generated within said third zone; and
- (d) recycling in a closed loop at least a portion of said third molten metal bath back to said first molten metal bath;
- (e) maintaining the total amount of molten material transferred from said first zone to said second zone and back to said first zone at 25 to 5000 kg molten metal per kg of total feed comprising said carbonaceous first feed and said pure hydrocarbon second feed;
- (f) adding about 1-2 mols oxygen to said second zone per mol of carbon in the first feed; and
- (g) maintaining the carbon content above about 1% by weight in all of said molten metal baths.
- 2. The process of claim 1, further comprising:
- adding H.sub.2 O as steam to said second zone to balance the heat generated by reaction of carbon with oxygen in said second zone, so as to maintain the temperature in said second molten metal bath within a desired range.
- 3. The process of claim 1, wherein about 100-2000 kg molten metal is circulated per kg of total feed; total oxygen-to-carbon mol ratio is in the range 1:1 to 1.5:1; and total carbon fed, based on both carbonaceous first feed added to said first zone and pure hydrocarbon second feed added to said third zone, is about 0.1-4 mols per mol of hydrogen fed in said total feed.
- 4. The process of claim 1, wherein said first zone is raised about 1 to 200 meters above said second zone, and said process further comprises; aiding molten metal bath material transfer between zones by effecting density differences between said baths by controlling temperature and carbon content differences of said molten metal baths between respective zones.
- 5. The process of claim 3, wherein said first zone is raised about 1-200 meters above said second zone, and said process further comprises aiding molten metal bath material transfer between zones by effecting density differences between said baths by controlling temperature and carbon content of said baths between respective zones.
- 6. A process for generating a substantially pure hydrogen stream at 1-200 atmospheres and a fuel gas stream, said process comprising:
- a. providing first, second, and third molten metal baths within first, second and third hermetic zones, said baths being interconnected to permit molten metal flow from said first to said second to said third, and recycle back to said first bath;
- b. maintaining said first bath at about 1200.degree.-2550.degree. C., and said second and third baths at least 50.degree. C. higher than said first bath;
- c. feeding a hydrocarbon first feed to said first bath;
- d. feeding about 1-2 mols oxygen to said second bath per mol of carbon in said hydrocarbon first feed fed to said first bath, thereby producing said fuel gas in said second zone;
- e. circulating 25-5000 kg molten metal in a closed loop from said first bath to said second bath and thence to said third bath, and recycling molten metal from said third bath back to said first bath for each kg carbon contained in said first hydrocarbon feed and a pure second hydrocarbon feed supplied to said third metal bath thereby producing substantially pure hydrogen gas in said third zone;
- f. adding about 1-2 mols oxygen to said second zone per mol of carbon in said hydrocarbon first feed; and
- g. aiding circulation by effecting density differences of said molten metal by controlling temperature and carbon content variations of said molten metal between said zones.
Parent Case Info
This is a continuation-in-part application of U.S. patent application Ser. No. 08/051,753, filed Apr. 22, 1993 (attorney docket 6391MUS), which is itself a continuation-in-part application of U.S. patent application Ser. No. 939,533, filed Sep. 1, 1992 (attorney docket 6391BUS), which is itself a continuation of U.S. Ser. No. 763,097, filed Sep. 20, 1991 (attorney docket 6391AUS), which is itself a continuation-in-part application of U.S. patent application ser. No. 542,234, filed Jun. 21, 1990 (attorney docket No. 6333AUS) all abandoned.
US Referenced Citations (3)
Foreign Referenced Citations (1)
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2186524 |
Jan 1979 |
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Continuations (1)
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763097 |
Sep 1991 |
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Continuation in Parts (3)
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51753 |
Apr 1993 |
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939533 |
Sep 1992 |
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542234 |
Jun 1990 |
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