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000863477 041__ $$aEnglish
000863477 1001_ $$0P:(DE-Juel1)164278$$aUnije, Unoaku Victoria$$b0$$eCorresponding author$$ufzj
000863477 245__ $$aSimulation of Transport Processes through an Asymmetric Gas Separation Membrane$$f - 2019
000863477 260__ $$aJülich$$bForschungszentrum Jülich GmbH Zetralbibliothek, Verlag$$c2019
000863477 300__ $$axiv, 101
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000863477 4900_ $$aSchriften des Forschungszentrums Jülich Reihe Energie & Umwelt / Energy & Environment$$v463
000863477 502__ $$aDissertation, RWTH Aachen University, 2019$$bDissertation$$cRWTH Aachen University$$d2019
000863477 520__ $$aOxygen gas separation membranes with mixed ionic and electronic conductivity (MIEC) havefound great prospects in membrane technology for oxygen separation from gas mixtures (e.g.air) under a partial pressure gradient as the driving force. The separation of oxygen usingmembranes is more energy efficient than traditional processes such as the cryogenic Lindeprocess or pressure swing adsorption (PSA). The inverse relationship between the membranethickness and flux underscores the need for a very thin membrane. Consequently, the low mechanicalstability of free-standing thin membranes motivated the processing of asymmetricmembranes, where the thin membranes are supported by a porous structure. Asymmetricmembranes provide a low ionic resistance of the functional separation layer together with ahigh mechanical stability. However, the microstructure of the porous support in the membraneassembly affects the overall flux significantly. Therefore, a porous support that provides therequired mechanical stability needed for the dense membrane, with little or no limiting effecton the overall flux is desired [...]
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