نمایش مختصر رکورد

dc.contributor.authorXu, Yilinen_US
dc.contributor.authorMalde, Chandreshen_US
dc.contributor.authorWang, Rongen_US
dc.date.accessioned1399-07-08T18:30:26Zfa_IR
dc.date.accessioned2020-09-29T18:30:26Z
dc.date.available1399-07-08T18:30:26Zfa_IR
dc.date.available2020-09-29T18:30:26Z
dc.date.issued2020-01-01en_US
dc.date.issued1398-10-11fa_IR
dc.date.submitted2019-04-29en_US
dc.date.submitted1398-02-09fa_IR
dc.identifier.citationXu, Yilin, Malde, Chandresh, Wang, Rong. (2020). Correlating Physicochemical Properties of Commercial Membranes with CO2 Absorption Performance in Gas-Liquid Membrane Contactor. Journal of Membrane Science and Research, 6(1), 30-39. doi: 10.22079/jmsr.2019.107096.1262en_US
dc.identifier.issn2476-5406
dc.identifier.urihttps://dx.doi.org/10.22079/jmsr.2019.107096.1262
dc.identifier.urihttp://www.msrjournal.com/article_36110.html
dc.identifier.urihttps://iranjournals.nlai.ir/handle/123456789/45648
dc.description.abstractThe gas-liquid membrane contactor (GLMC) is a promising alternative gas absorption/desorption configuration for effective carbon dioxide (CO2 ) capture. The physicochemical properties of membranes may synergistically affect GLMC performances, especially during the long-term operations. In this work, commercial polypropylene (PP) and polyvinylidene fluoride (PVDF) hollow fiber (HF) membranes were applied to explore the effects of their physicochemical properties on long-term CO2 absorption performances in a bench-scale GLMC rig. PP membranes with pore size of 19 nm, thickness of 0.046 mm, and porosity of 58% achieved high CO2 flux when feeding pure CO2 (5.4 and 24.4×10-3 mol/m2 .s using absorbents of water and 1M monoethanolamine (MEA), respectively) whereas PVDF membranes with pore size of 24 nm, thickness of 0.343 mm, and porosity of 84% presented a good CO2 separation performance from the simulated biogas using 1M MEA (6.8×10-3 mol/m2 .s and 99.9% CH4 recovery). When using water as absorbent, the coupled phenomena of membrane wetting and fouling restricted CO2 transport and resulted in continuous flux loss during the long-term operations. When using MEA as absorbent, both PP and PVDF membranes suffered dramatic flux decline. A series of membrane characterization tests revealed that the morphology, pore size, hydrophobicity, and stability of selected commercial membranes were greatly affected by MEA attack during long-term operations. Therefore, the selection criterion of microporous membranes for high-efficiency and long-term stable CO2 absorption in GLMC processes was proposed. It is envisioned that this study can shed light on improving existing membrane fabrication procedures and the application of novel membrane surface modification techniques to facilitate practical applications of the GLMC technology.en_US
dc.format.extent2553
dc.format.mimetypeapplication/pdf
dc.languageEnglish
dc.language.isoen_US
dc.publisherFIMTEC & MPRLen_US
dc.relation.ispartofJournal of Membrane Science and Researchen_US
dc.relation.isversionofhttps://dx.doi.org/10.22079/jmsr.2019.107096.1262
dc.subjectGas-liquid membrane contactoren_US
dc.subjectCO2 absorptionen_US
dc.subjectphysicochemical propertiesen_US
dc.subjectWettingen_US
dc.subjectFoulingen_US
dc.subjectMembrane contactorsen_US
dc.titleCorrelating Physicochemical Properties of Commercial Membranes with CO2 Absorption Performance in Gas-Liquid Membrane Contactoren_US
dc.typeTexten_US
dc.typeResearch Paperen_US
dc.contributor.departmentSingapore Membrane Technology Centreen_US
dc.contributor.departmentJohnson Matthey Technology Centre, UKen_US
dc.contributor.departmentNanyang Technology University Singaporeen_US
dc.citation.volume6
dc.citation.issue1
dc.citation.spage30
dc.citation.epage39


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