US2012291482A1PendingUtilityA1

Process For Recovering Hydrogen And Carbon Dioxide

Assignee: TERRIEN PAULPriority: May 18, 2011Filed: Jun 27, 2011Published: Nov 22, 2012
Est. expiryMay 18, 2031(~4.8 yrs left)· nominal 20-yr term from priority
C01B 2203/0475C01B 3/38F25J 3/0252C01B 3/48C01B 2203/0233C01B 3/501C01B 2203/046C01B 2203/146C01B 3/56C01B 2203/86C01B 3/384F25J 2205/80F25J 3/0266C01B 2203/025C01B 2203/0827F25J 2205/04C01B 3/36C01B 2203/148F25J 2200/02F25J 3/0223C01B 2203/0244C01B 2203/147F25J 2210/04F25J 2230/30C01B 2203/0288C01B 2203/0405C01B 2203/0283C01B 2203/043C01B 2203/0294C01B 2203/0822F25J 2245/02F25J 2220/82F25J 2205/40C01B 3/506C01B 2203/0811Y02P20/151Y02P20/10Y02P30/00Y02C20/40
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Claims

Abstract

The present invention provides a process for recovering hydrogen and carbon dioxide from a process stream utilizing a carbon dioxide separation unit and two membrane separation units. The present invention further provides a process within a hydrogen generation plant to increase recovery of hydrogen and capture equal to or greater than 80% of the carbon dioxide in the syngas stream. By using the process of the present invention, especially in terms of a hydrogen generation plant, it is possible to increase recovery of hydrogen and capture of the carbon dioxide in the syngas stream by balancing the recycle of the hydrogen rich permeate from the hydrogen membrane separation unit to the process unit and/or the water gas shift as capacity allows when a carbon dioxide separation unit, a carbon dioxide membrane separation unit and a hydrogen membrane separation unit are utilized.

Claims

exact text as granted — not AI-modified
1 . A process for producing hydrogen and capturing carbon dioxide from a hydrocarbon containing feed stream ( 16 ) in a hydrogen generation plant, the process comprising the steps of:
 a) treating a hydrocarbon containing feed stream ( 16 ) in a feed gas producing unit ( 31 ) to obtain a feed gas ( 15 );   b) subjecting the feed gas ( 15 ) to hydrogen purification in a process unit ( 0 ) to obtain a hydrogen product stream ( 23 ) and a hydrogen depleted process stream ( 1 );   c) withdrawing the hydrogen product stream ( 23 ) and using a portion of this hydrogen product stream ( 23 ) as a fuel for the feed gas producing unit ( 31 ) or as fuel for steam generation;   d) optionally compressing at least a portion of the process stream ( 1 ) in a first compressor ( 2 );   e) cooling the optionally compressed portion of the process stream ( 1 ) in a heat exchanger ( 3 ) to a temperature equal to or less than −10° C.;   f) separating and purifying the cooled process stream ( 1 ) in a carbon dioxide separation unit ( 4 ) to produce a carbon dioxide rich liquid stream ( 6 ) and a carbon dioxide lean non-condensable stream ( 5 );   g) withdrawing the carbon dioxide rich liquid stream ( 6 ) as a carbon dioxide product for further use;   h) withdrawing the carbon dioxide lean non-condensable stream ( 5 ) from the carbon dioxide separation unit ( 4 ) and passing the carbon dioxide lean non-condensable stream ( 5 ) through a hydrogen selective membrane separation unit ( 7 ) to form a hydrogen rich permeate stream ( 8 ) with the remaining components in the carbon dioxide lean non-condensable stream ( 5 ) forming a hydrogen lean residue stream ( 9 );   i) passing the hydrogen lean residue stream ( 9 ) through a carbon dioxide selective membrane separation unit ( 10 ) to form a carbon dioxide enriched permeate stream ( 11 ) with the remaining components in the hydrogen lean residue stream ( 9 ) forming a carbon dioxide depleted residue stream ( 12 );   j) optionally compressing the hydrogen rich permeate stream ( 8 ) in a second compressor ( 13 ) and recycling the hydrogen rich permeate stream ( 8 ) for use as a supplemental feed stream in feed gas producing unit ( 31 ), the process unit ( 0 ) or in both; and   k) recycling the carbon dioxide enriched permeate stream ( 11 ) to the process stream ( 1 ) prior to the compressor ( 2 ) or within the compressor ( 2 ) between stages of compression or optionally compressing the carbon dioxide enriched permeate stream ( 11 ) and recycling the carbon dioxide enriched permeate stream ( 11 ) to be used in the carbon dioxide separation unit ( 4 ) and recycling the carbon dioxide depleted residue stream ( 12 ) to be used as a supplemental feed stream for the feed gas producing unit ( 31 ) or as both a fuel and a feed stream in the present process or in other processes.   
     
     
         2 . The process of  claim 1 , wherein the overall capture rate of carbon dioxide from the hydrogen production process is equal to or greater than 80%. 
     
     
         3 . The process of  claim 1 , wherein the process unit ( 0 ) is a pressure swing adsorption unit and the process stream ( 1 ) is a tail gas from the pressure swing adsorption unit. 
     
     
         4 . The process of  claim 1 , wherein the first hydrogen rich permeate fraction ( 8 . 1 ) is optionally heated prior to being added to the syngas stream ( 20 ). 
     
     
         5 . The process of  claim 1 , wherein the hydrogen selective membrane separation unit ( 7 ) includes one or more hydrogen selective membranes, each membrane having a permeate side ( 7 . 1 ) and a residue side ( 7 . 2 ) and allowing for the passing of hydrogen to the permeate side ( 7 . 1 ) of the membrane to form the hydrogen rich permeate stream ( 8 ) with the remaining components in the carbon dioxide lean non-condensable stream ( 5 ) forming the hydrogen lean residue stream ( 9 ) on the residue side ( 7 . 2 ) of the membrane. 
     
     
         6 . The process of  claim 5 , wherein the carbon dioxide selective membrane separation unit ( 10 ) includes one or more carbon dioxide selective membranes, each membrane having a permeate side ( 10 . 1 ) and a residue side ( 10 . 2 ) and allowing for the passing of carbon dioxide to the permeate side ( 10 . 1 ) of the membrane to form a carbon dioxide enriched permeate stream ( 11 ) with the remaining components in the hydrogen lean residue stream ( 9 ) forming a carbon dioxide depleted residue stream ( 12 ) on the residue side ( 10 . 2 ) of the membrane. 
     
     
         7 . The process of  claim 6 , wherein the one or more hydrogen selective membranes and the one or more carbon dioxide selective membranes are each membranes of the fiber type. 
     
     
         8 . The process of  claim 6 , wherein the one or more hydrogen selective membranes are different in type from the one or more carbon dioxide selective membranes. 
     
     
         9 . The process of  claim 1 , wherein prior to compression in step d), the process stream is passed through a filter. 
     
     
         10 . The process of  claim 1 , wherein the feed gas producing unit ( 31 ) is a coal gasification unit. 
     
     
         11 . The process of  claim 1 , wherein the feed gas producing unit ( 31 ) is a partial oxidation unit. 
     
     
         12 . The process of  claim 1 , wherein the feed gas producing unit ( 31 ) is a autothermal reformer unit. 
     
     
         13 . The process of  claim 1 , wherein the hydrogen rich permeate stream ( 8 ) is subjected to a shift reaction in an optional second water gas shift reactor ( 32 ) prior to being recycled to the water gas shift reactor ( 21 ), the process unit ( 0 ) or both the water gas shift unit ( 21 ) and the process unit ( 0 ). 
     
     
         14 . The process of  claim 13 , wherein the water gas shift reactor ( 32 ) is a low temperature water gas shift reactor. 
     
     
         15 . The process of  claim 1 , wherein the carbon dioxide lean non-condensable stream ( 5 ) is subjected to a shift reaction in an optional third water gas shift reactor ( 33 ) prior to being passed thorough the hydrogen and carbon dioxide membrane separation units ( 7 ,  10 ). 
     
     
         16 . The process of  claim 15 , wherein the water gas shift reactor ( 33 ) is a low temperature water gas shift reactor.

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