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Polyvinyl acetate/poly(amide-12-b-ethylene oxide) blend membranes for carbon dioxide separation 被引量:1
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作者 Shichao Feng Jizhong Ren +3 位作者 Hui Li Kaisheng Hua Xinxue Li Maicun Deng 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2013年第6期837-844,共8页
In this paper,blend membranes from polyvinyl acetate(PVAc)and block copolymer poly(amide-12-b-ethylene oxide)(Pebax1074)are prepared by solution casting and solvent evaporation method.Although they are homogeneous on ... In this paper,blend membranes from polyvinyl acetate(PVAc)and block copolymer poly(amide-12-b-ethylene oxide)(Pebax1074)are prepared by solution casting and solvent evaporation method.Although they are homogeneous on a macro-scale,the observations from DSC and SEM indicate micro-phase separation for PVAc/Pebax1074 blend membranes.With the increase of Pebax1074 content,gas permeabilities of CO2,H2,N2and CH4all increase greatly.PVAc/Pebax1074 blend membranes with high PVAc content are appropriate for CO2/CH4separation.The temperature dependence of gas permeability is divided into rubbery region and glassy region.The activation energies of permeation in rubbery region are smaller than those in glassy region,and they all decrease with increasing Pebax1074 content.For N2,H2and CH4,their gas permeation properties are mainly influenced by the dual-mode sorption and hydrostatic pressure effect.But for CO2,its permeability increases with the increase of pressure due to CO2-induced plasticization effect,which is more obvious for PVAc/Pebax1074 blend membranes with high PVAc content. 展开更多
关键词 polyvinyl acetate poly(amide-12-b-ethylene oxide) blend membrane carbon dioxide separation
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Effect of poly(ethylene glycol) molecular weight on CO_2/N_2 separation performance of poly(amide-12-b-ethylene oxide)/poly(ethylene glycol) blend membranes
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作者 Shichao Feng Jizhong Ren +4 位作者 Dan Zhao Hui Li Kaisheng Hua Xinxue Li Maicun Deng 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2019年第1期39-45,共7页
Membranes from block copolymer poly(amide-12-b-ethylene oxide)(Pebax1074) and its blends with different molecular weight poly(ethylene glycol)(PEG)(200, 400, 600, 1500, 4600 and 8000) were prepared. The thermal proper... Membranes from block copolymer poly(amide-12-b-ethylene oxide)(Pebax1074) and its blends with different molecular weight poly(ethylene glycol)(PEG)(200, 400, 600, 1500, 4600 and 8000) were prepared. The thermal properties and structures of Pebax1074/PEG blend membranes were characterized by DSC and SEM, and the gas permeation properties of CO_2 and N_2 were also investigated at different temperatures. For Pebax1074/PEG blend membranes with low molecular weight PEG(MW≤ 600), higher gas permeabilities than Pebax1074 were achieved. The permeability increased with the increase of PEG molecular weight. The addition of low molecular weight PEG resulted in decrease in activation energy of permeation. For Pebax1074/PEG blend membranes with high molecular weight PEG(MW≥ 1500), due to the melt of PEO phase crystals, the gas permeation properties of blend membranes were temperaturedependent, which could be divided into crystalline region, transition region and amorphous region according to two different transition temperatures. PEG molecular weight and operation temperature determined different gas permeation properties of Pebax1074/PEG blend membranes in three regions. The activation energies of permeation in crystalline region were larger than those in amorphous region. 展开更多
关键词 poly(amide-12-b-ethylene oxide) polyethylene glycol Blend membrane Carbon dioxide separation
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聚醚共聚酰胺多层复合气体分离膜的制备及其分离性能 被引量:4
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作者 任晓灵 任吉中 邓麦村 《膜科学与技术》 CAS CSCD 北大核心 2012年第2期30-35,共6页
采用浸渍涂覆法,以聚醚共聚酰胺PEBA1074嵌段高分子为选择层膜材料制备具有超薄分离层的PEI/PDMS/PEBA1074/PDMS多层复合气体分离膜,探讨了操作条件对H2、N2、CH4和CO2等在多层复合膜中的渗透性能的影响.多层复合膜对极性气体具有较高... 采用浸渍涂覆法,以聚醚共聚酰胺PEBA1074嵌段高分子为选择层膜材料制备具有超薄分离层的PEI/PDMS/PEBA1074/PDMS多层复合气体分离膜,探讨了操作条件对H2、N2、CH4和CO2等在多层复合膜中的渗透性能的影响.多层复合膜对极性气体具有较高的渗透通量,并且对极性/非极性气体分离体系具有较高的选择性.CO2对多层复合膜存在增塑作用,其渗透通量随操作压力的增加而增加;随着操作温度的升高,H2、N2、CH4和CO2在复合膜中的渗透通量显著增大,而CO2/非极性气体(H2、N2和CH4)的分离系数减小.气体渗透通量与温度的关系在PEO链段熔点的上下分别满足不同的Arrhenius方程.当操作温度大于PEO链段熔点温度时,气体的渗透活化能减小. 展开更多
关键词 二氧化碳分离 多层复合膜 聚醚共聚酰胺
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