首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >A high-performance hydroxyl-functionalized polymer of intrinsic microporosity for an environmentally attractive membrane-based approach to decontamination of sour natural gas
【24h】

A high-performance hydroxyl-functionalized polymer of intrinsic microporosity for an environmentally attractive membrane-based approach to decontamination of sour natural gas

机译:具有固有微孔性的高性能羟基官能化聚合物,适用于基于环境的,基于膜的酸性天然气净化方法

获取原文
获取原文并翻译 | 示例
           

摘要

Acid gases carbon dioxide (CO2) and hydrogen sulfide (H2S) are important and highly undesirable contaminants in natural gas, and membrane-based removal of these contaminants is environmentally attractive. Although removal of CO2 from natural gas using membranes is well established in industry, there is limited research on H2S removal, mainly due to its toxic nature. In actual field operations, wellhead pressures can exceed 50 bar with H2S concentrations up to 20%. Membrane plasticization and competitive mixed-gas sorption, which can both lead to a loss of separation efficiency, are likely to occur under these aggressive feed conditions, and this is almost always accompanied by a significant decrease in membrane selectivity. In this paper, permeation and separation properties of a hydroxyl-functionalized polymer with intrinsic microporosity (PIM-6FDA-OH) are reported for mixed-gas feeds containing CO2, H2S or the combined pair with CH4. The pure-gas permeation results show no H2S-induced plasticization of the PIM-6FDA-OH film in a pure H2S feed at 35 degrees C up to 4.5 bar, and revealed only a slight plasticization up to 8 bar of pure H2S. The hydroxyl-functionalized PIM membrane exhibited a significant pure-gas CO2 plasticization resistance up to 28 bar feed pressure. Mixed-gas (15% H2S/15% CO2/70% CH4) permeation results showed that the hydroxyl-functionalized PIM membrane maintained excellent separation performance even under exceedingly challenging feed conditions. The CO2 and H2S permeability isotherms indicated minimal CO2-induced plasticization; however, H2S-induced plasticization effects were evident at the highest mixed gas feed pressure of 48 bar. Under this extremely aggressive mixed gas feed, the binary CO2/CH4 and H2S/CH4 permselectivities, and the combined CO2 and H2S acid gas selectivity were 25, 30 and 55, respectively. Our results indicate that OH-functionalized PIM materials are very promising candidate membrane materials for simultaneous removal of CO2 and H2S from aggressive natural gas feeds, which makes membrane-based gas separation technology an attractive option for clean energy production and reducing greenhouse gas emissions.
机译:酸性气体中的二氧化碳(CO2)和硫化氢(H2S)是重要的天然气中非常不受欢迎的污染物,并且通过膜基去除这些污染物对环境具有吸引力。尽管使用膜从天然气中去除CO2在行业中已经很成熟,但是对H2S去除的研究仍然有限,这主要是由于其毒性。在实际的现场操作中,H2S浓度高达20%时,井口压力可能会超过50 bar。在这些苛刻的进料条件下,很可能会发生膜增塑和竞争性混合气体吸附(都可能导致分离效率下降)的情况,并且几乎总是伴随着膜选择性的显着下降。本文报道了含CO2,H2S或CH4混合气体进料的具有固有微孔性(PIM-6FDA-OH)的羟基官能化聚合物的渗透和分离特性。纯气体渗透的结果表明,在35°C至4.5 bar的纯H2S进料中,没有H2S引起PIM-6FDA-OH膜的H2S诱导的增塑,而在8 bar的纯H2S中仅表现出轻微的增塑作用。羟基官能化的PIM膜在高达28 bar的进料压力下显示出显着的抗纯净气体的CO2增塑性。混合气体(15%H2S / 15%CO2 / 70%CH4)的渗透结果表明,即使在极富挑战性的进料条件下,羟基官能化的PIM膜仍保持出色的分离性能。 CO2和H2S的渗透率等温线表明,CO2引起的增塑作用最小。但是,在最高48 bar的混合气体进料压力下,H2S诱导的增塑作用显而易见。在这种极富侵略性的混合气体进料下,二元CO2 / CH4和H2S / CH4的选择性渗透率以及组合的CO2和H2S酸性气体选择性分别为25、30和55。我们的结果表明,OH-官能化的PIM材料是非常有前途的候选膜材料,可同时从腐蚀性天然气原料中去除CO2和H2S,这使得基于膜的气体分离技术成为清洁能源生产和减少温室气体排放的诱人选择。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号