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CO2 Capture by Cold Membrane Operation

Air Liquide is developing a cost effective hybrid CO2 capture process based on sub-ambient temperature operation of a hollow fiber membrane in combination with cryogenic separation. These membranes, when operated at temperatures below -20˚C, show two to four times increase in CO2/N2 selectivity with...

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Bibliographic Details
Published in:Energy procedia 2014, Vol.63 (C), p.186-193
Main Authors: Hasse, David, Ma, Jiefu, Kulkarni, Sudhir, Terrien, Paul, Tranier, Jean-Pierre, Sanders, Ed, Chaubey, Trapti, Brumback, Jacob
Format: Article
Language:English
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Summary:Air Liquide is developing a cost effective hybrid CO2 capture process based on sub-ambient temperature operation of a hollow fiber membrane in combination with cryogenic separation. These membranes, when operated at temperatures below -20˚C, show two to four times increase in CO2/N2 selectivity with minimal CO2 permeance loss compared to ambient temperature values. Long term (6 month) bench-scale testing with CO2/N2 mixtures at sub-ambient conditions has verified the enhanced separation performance seen at lab scale translated to commercial membrane modules [1,2]. A relatively high CO2 capture rate is required to drive down the cost per tonne of captured CO2 as it valorizes the cost of the flue gas pre-treatment and compression prior to the membrane unit. However, as the CO2 recovery increases, the productivity of the membrane module decreases, thereby driving up the membrane system capital cost. The main reason for this is a “pinch effect”: the CO2 driving partial pressure differential across the membrane decreases as CO2 recovery proceeds. Computational fluid dynamics modelling shows that this effect can be partially off-set by a sweep operation where a small fraction (
ISSN:1876-6102
1876-6102
DOI:10.1016/j.egypro.2014.11.019