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首页> 外文期刊>Chemical Engineering Research & Design: Transactions of the Institution of Chemical Engineers >Polysulfone mixed matrix hollow fiber membranes using zeolite templated carbon as a performance enhancement filler for gas separation
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Polysulfone mixed matrix hollow fiber membranes using zeolite templated carbon as a performance enhancement filler for gas separation

机译:聚砜混合基质中空纤维膜使用沸石模板碳作为气体分离的性能增强填料

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Zeolite-templated carbon (ZTC) was used as a new nanoporous filler to prepare mixed-matrix membranes (MMMs) with polysulfone as a continuous phase. The ZTC was prepared using a synthesized zeolite-Y template and sucrose carbon source via the impregnation method. The MMMs were fabricated through a dry-jet wet spinning technique, and the ZTC loadings were varied between 0.4-0.7 wt%. The results showed that the integration of the ZTC did not change the microscopic structure of membranes. Additionally, the addition of filler did not affect the amorphous character of the polymer, while the polymer chain spacing slightly decreased. The thermal stability of MMMs improved with an increase in the glass transition temperature. The MMM at 0.4 wt% loading exhibited the best separation performances as shown from the Robeson curve, with CH4, CO2, N-2, O-2, and H-2 permeances of 5.9, 58.5, 5.0, 14.0, and 169.2 GPU, respectively. In addition, the improvements in CO2/CH4, O-2/N-2, H-2/CH4, and CO2/N-2 ideal selectivities were 290%, 117%, 272%, and 219%, respectively. On the other hand, the enhancement of the permeances and reduction in selectivities observed at 0.7 wt% loading indicated that the existence of voids was a main factor in the permeation behavior of the MMMs. (C) 2019 Institution of Chemical Engineers. Published by Elsevier B.V. All rights reserved.
机译:沸石模板碳(ZTC)用作新的纳米多孔填料,以制备具有聚砜的混合基质膜(MMM)作为连续相。通过浸渍法使用合成的沸石-Y模板和蔗糖碳源制备ZTC。通过干射流湿纺技术制造MMM,ZTC载荷在0.4-0.7wt%之间变化。结果表明,ZTC的整合没有改变膜的微观结构。另外,添加填料不影响聚合物的无定形特征,而聚合物链间距略微降低。 MMM的热稳定性随着玻璃化转变温度的增加而改善。 0.4wt%负荷的MMM表现出最佳的分离性能,如罗伯森曲线所示,CH4,CO 2,N-2,O-2和H-2渗透率为5.9,58.5,5.0,14.0和169.2 GPU,分别。此外,CO 2 / CH4,O-2 / N-2,H-2 / CH 4和CO2 / N-2的改善分别为290%,117%,272%和219%。另一方面,在0.7wt%负载下观察到的渗透性和减少的增强表明,空隙的存在是MMMS渗透行为的主要因素。 (c)2019化学工程师机构。 elsevier b.v出版。保留所有权利。

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