首页> 外文期刊>International journal of hydrogen energy >Thin carbon hollow fiber membrane with Knudsen diffusion for hydrogen/alkane separation: Effects of hollow fiber module design and gas flow mode
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Thin carbon hollow fiber membrane with Knudsen diffusion for hydrogen/alkane separation: Effects of hollow fiber module design and gas flow mode

机译:具有克努德森扩散的碳中空纤维薄膜,用于氢/烷分离:中空纤维组件设计和气流模式的影响

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Recovery of heavier hydrocarbons, C-2-C-4 olefins and paraffins, from gas streams is of great importance economically. In this study, asymmetric carbon hollow fiber membranes (CHFMs) were prepared by a one-step vacuum-assisted dip coating and pyrolysis, and investigated for H-2/CO2 , H-2/C2H6, and H-2/C3H8 separations. To increase the mechanical strength of the CHFMs, a porous alumina hollow fiber with ID/OD = 2 mm/4 mm was used as the supporting material. A solution of polyetherimide in N-methyl-2-pyrrolidone was used as the casting solution. The effects of (1) membrane preparation parameters, (2) fiber packing densities, (3) fiber packing arrangement, and (4) gas flow configuration (inside-out or outside-in) on the gas-separation performance were also investigated. The results showed that decreasing the concentration of the casting dope and the number of coating cycles was found to be the most effective approach to increase the H-2 permeance, while maintaining the H-2/CO2 selectivity. Further, as the fiber packing density was increased from 5.54% to 38.78% for the hexagonal packing configuration, the H-2 permeance increased from 362.04 GPU to 711.61 GPU, without any decrease in the gas selectivity. The as-prepared CHFM exhibited the maximum gas permeance of 711.61 GPU for H-2 and the following gas selectivity: 2.79, 4.65, and 5.34 towards H-2/CO2, H-2/C2H6, and H-2/C3H8, respectively. The successful preparation and modularization of the CHFM is advantageous and industrially relevant for several gas-separation applications, such as H-2 energy production from CO2, C2H6, and C3H8 and olefins/paraffins recovery. (C) 2019 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:从气流中回收较重的烃,C-2-C-4烯烃和链烷烃在经济上非常重要。在这项研究中,通过一步真空辅助浸涂和热解制备不对称碳中空纤维膜(CHFM),并研究了H-2 / CO2,H-2 / C2H6和H-2 / C3H8的分离。为了提高CHFM的机械强度,将ID / OD = 2 mm / 4 mm的多孔氧化铝空心纤维用作支撑材料。流延溶液使用聚醚酰亚胺在N-甲基-2-吡咯烷酮中的溶液。还研究了(1)膜制备参数,(2)纤维堆积密度,(3)纤维堆积排列和(4)气流配置(由内而外或由内而外)对气体分离性能的影响。结果表明,降低流延涂料的浓度和涂覆周期数是增加H-2渗透率同时保持H-2 / CO2选择性的最有效方法。此外,随着六边形堆积结构的纤维堆积密度从5.54%增加到38.78%,H-2渗透率从362.04 GPU增加到711.61 GPU,而气体选择性没有任何降低。所制备的CHFM对H-2的最大气体透过率达到711.61 GPU,并具有以下气体选择性:分别对H-2 / CO2,H-2 / C2H6和H-2 / C3H8的2.79、4.65和5.34 。 CHFM的成功制备和模块化对于多种气体分离应用(例如由CO2,C2H6和C3H8产生H-2能量以及烯烃/链烷烃回收)的应用是有利的,并且在工业上具有重要意义。 (C)2019氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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