Aromatization reactors with hydrogen removal and related reactor systems
US-9718042-B2 · Aug 1, 2017 · US
US10052602B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-10052602-B2 |
| Application number | US-201715629967-A |
| Country | US |
| Kind code | B2 |
| Filing date | Jun 22, 2017 |
| Priority date | Dec 23, 2015 |
| Publication date | Aug 21, 2018 |
| Grant date | Aug 21, 2018 |
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The present invention discloses aromatization reactor vessels with hydrogen membrane tubes, and associated aromatization reactor vessel systems. Also disclosed are processes for conducting aromatization reactions utilizing these reactor vessels and systems.
Opening claim text (preview).
We claim: 1. An aromatization process comprising: introducing a feed stream comprising H 2 and a non-aromatic hydrocarbon into an aromatization reactor vessel, the aromatization reactor vessel comprising: (a) a reactor wall; (b) a catalyst bed positioned within the reactor vessel; (c) an outer annulus positioned between the reactor wall and an outer particle barrier, the outer particle barrier and the outer annulus surrounding the catalyst bed; (d) a reactor inlet for the feed stream; (e) a reactor outlet connected to a center pipe, the center pipe positioned in the reactor vessel and surrounded by the catalyst bed; wherein a flow path for the feed stream begins at the reactor inlet, continues to the outer annulus, through the outer particle barrier and the catalyst bed, into the center pipe, and to the reactor outlet; and (f) a membrane tube configured to remove H 2 , the membrane tube positioned in the center pipe or the outer annulus, the membrane tube having an inner permeate side and an outer process side; (ii) contacting the feed stream with the catalyst bed comprising an aromatization catalyst; (iii) catalytically converting at least a portion of the non-aromatic hydrocarbon within the aromatization reactor vessel to produce an aromatic hydrocarbon and H 2 ; (iv) removing a portion of the H 2 from the center pipe or the outer annulus via the membrane tube to reduce a partial pressure of H 2 in the process; and (v) discharging a reactor effluent comprising the aromatic hydrocarbon from the aromatization reactor vessel via the reactor outlet. 2. The process of claim 1 , wherein: the aromatic hydrocarbon comprises benzene, toluene, or a combination thereof; and steps (ii) and (iii) are conducted at a temperature in a range from about 350° C. to about 600° C. 3. The process of claim 2 , wherein the process has a benzene+toluene selectivity that is greater than that of an equivalent aromatization process conducted without the (f) membrane tube and step (iv), under the same reaction conditions. 4. The process of claim 1 , wherein the non-aromatic hydrocarbon comprises hexane, heptane, or a combination thereof. 5. The process of claim 1 , wherein the membrane tube is positioned in the center pipe, and wherein the outer process side faces the center pipe. 6. The process of claim 1 , wherein the membrane tube is positioned in the outer annulus, and wherein the outer process side faces the outer annulus. 7. The process of claim 1 , wherein the process has an aromatization catalyst lifetime that is greater than that of an equivalent aromatization process conducted without the (f) membrane tube and step (iv), under the same reaction conditions. 8. An aromatization process comprising: introducing a feed stream into an aromatization reactor vessel system comprising from 2 to 8 aromatization reactor vessels in series, wherein at least one is an aromatization reactor vessel comprising: (a) a reactor wall; (b) a catalyst bed positioned within the reactor vessel; (c) an outer annulus positioned between the reactor wall and an outer particle barrier, the outer particle barrier and the outer annulus surrounding the catalyst bed; (d) a reactor inlet; (e) a reactor outlet connected to a center pipe, the center pipe positioned in the reactor vessel and surrounded by the catalyst bed; wherein a flow path in the aromatization reactor vessel begins at the reactor inlet, continues to the outer annulus, through the outer particle barrier and the catalyst bed, into the center pipe, and to the reactor outlet; and (f) a membrane tube configured to remove H 2 , the membrane tube positioned in the reactor outlet, the membrane tube having an inner permeate side and an outer process side, the outer process side facing the reactor outlet; (ii) contacting H 2 and a non-aromatic hydrocarbon with the catalyst bed comprising an aromatization catalyst; (iii) catalytically converting at least a portion of the non-aromatic hydrocarbon within the aromatization reactor vessel to produce an aromatic hydrocarbon and H 2 ; (iv) discharging a reactor effluent comprising the aromatic hydrocarbon from the aromatization reactor vessel via the reactor outlet; and (v) removing a portion of the H 2 from the reactor outlet via the membrane tube to reduce a partial pressure of H 2 in the process; wherein a total amount of the aromatization catalyst in the aromatization reactor vessel containing the membrane tube and each preceding reactor vessel in the series is in a range from about 15 to about 50 wt. %, based on the sum of the aromatization catalyst contained in all of the reactor vessels in the system. 9. The process of claim 8 , wherein: the non-aromatic hydrocarbon comprises hexane, heptane, or a combination thereof; the aromatic hydrocarbon comprises benzene, toluene, or a combination thereof; and steps (ii) and (iii) are conducted at a temperature in a range from about 350° C. to about 600° C. 10. The process of claim 9 , wherein the process has a benzene+toluene selectivity that is greater than that of an equivalent aromatization process conducted without the (f) membrane tube and step (v), under the same reaction conditions. 11. The process of claim 8 , wherein the process has an aromatization catalyst lifetime that is greater than that of an equivalent aromatization process conducted without the (f) membrane tube and step (v), under the same reaction conditions. 12. The process of claim 8 , wherein the H 2 :hydrocarbon molar ratio in step (v), after H 2 removal, is in a range from about 1:1 to about 2:1. 13. The process of claim 8 , wherein: the system comprises from 4 to 7 total aromatization reactor vessels in series; and the total amount of the aromatization catalyst in the aromatization reactor vessel containing the membrane tube and each preceding reactor vessel in the series is in a range from about 20 to about 45 wt. %, based on the sum of the aromatization catalyst contained in all of the reactor vessels in the system. 14. The process of claim 8 , wherein the aromatization reactor vessel containing the membrane tube is the second, third, fourth, or fifth vessel in the series. 15. An aromatization process comprising: (i) introducing a feed stream comprising H 2 and a non-aromatic hydrocarbon into an aromatization reactor vessel system comprising: (I) an aromatization reactor vessel comprising: (a) a reactor wall; (b) a catalyst bed positioned within the reactor vessel; (c) an outer annulus positioned between the reactor wall and an outer particle barrier, the outer particle barrier and the outer annulus surrounding the catalyst bed; (d) a reactor inlet for the feed stream; (e) a reactor outlet connected to a center pipe, the center pipe positioned in the reactor vessel and surrounded by the catalyst bed; wherein a flow path for the feed stream begins at the reactor inlet, continues to the outer annulus, through the outer particle barrier and the catalyst bed, into the center pipe, and to the reactor outlet; and (II) a H 2 removal system configured to remove H 2 from a reactor effluent, the H 2 removal system positioned downstream of the reactor outlet, wherein: the H 2 removal system comprises a shell containing a membrane tube, the reactor effluent passes through the shell, and the membrane tube has an inner permeate side and an outer process side, the outer process side facing the shell; (ii) contacting the feed stream with the catalyst bed comprising an aromatization catalyst; (iii) catalytically converting at least a portion of the non-aromatic hydrocarbon within the
Beds · CPC title
Membranes, e.g. feeding or removing reactants or products to or from the catalyst bed through a membrane · CPC title
Feeding reactive fluids (for solid material B01J8/0015) · CPC title
the beds being placed in separate reactors · CPC title
the fluid flow within the beds being predominantly horizontal · CPC title
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