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Simultaneously tuning dense skin and porous substrate of asymmetric hollow fiber membranes for efficient purification of aggressive natural gas
Authors:Gongping Liu  Ying Labreche  Nanwen Li  Yang Liu  Chen Zhang  Stephen J Miller  Vinod P Babu  Nitesh Bhuwania  William J Koros
Affiliation:1. School of Chemical & Biomolecular Engineering, Georgia Institute of Technology, Atlanta, GA 30332;2. School of Chemical & Biomolecular Engineering, Georgia Institute of Technology, Atlanta, GA 30332

State Key Laboratory of Coal Conversion, Institute of Coal Chemistry, Chinese Academy of Sciences, Taiyuan, 030001, P.R. China;3. Chevron Energy Technology Company, Richmond, CA 94802

Abstract:Highly permeable, selective, and stable asymmetric membranes are required to replace the traditional separation approaches for natural gas purification with higher energy efficiency and smaller footprints. Herein, we report on the design and engineering of defect-free asymmetric hollow fiber membranes with a thin dense skin and highly porous substrate to effectively deal with aggressive natural gas. A crosslinkable polymer with rigid molecular structure and high molecular weight was synthesized for developing spinning dope with desirable solution properties. Phase separation behavior of the polymer was carefully controlled by systematic formulation of the dope composition and optimizing spinning conditions, thereby realizing simultaneously tuning dense skins and porous substrates of the spun asymmetric hollow fiber membranes. The crosslinked hollow fiber membrane, with well-preserved delicate asymmetric nanostructures, exhibited unprecedentedly high and stable separation performance for long-term processing extremely aggressive CO2/CH4 mixtures (with pressure up to 820 psi containing C6+ hydrocarbons), thereby showing great potential for practical application of natural gas purification. This work offers a new platform to create hollow fiber membranes with both high permeance and plasticization resistance in natural gas service. © 2019 American Institute of Chemical Engineers AIChE J, 65: 1269–1280, 2019
Keywords:hollow fiber membrane  natural gas purification  CO2/CH4 separation  crosslink  spinning
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