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Thermally moderated hollow fiber sorbent modules in rapidly cycled pressure swing adsorption mode for hydrogen purification

机译:热缓和的中空纤维吸附剂模块,以快速循环的变压吸附模式进行氢纯化

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摘要

We describe thermally moderated multi-layered pseudo-monolithic hollow fiber sorbents entities, which can be packed into compact modules to provide small-footprint, efficient H_2 purification/CO_2 removal systems for use in on-site steam methane reformer product gas separations. Dual-layer hollow fibers are created via dry-jet, wet-quench spinning with an inner "active" core of cellulose acetate (porous binder) and zeolite NaY (69 wt% zeolite NaY) and an external sheath layer of pure cellulose acetate. The co-spun sheath layer reduces the surface porosity of the fiber and was used as a smooth coating surface for a poly(vinyl-alcohol) post-treatment, which reduced the gas permeance through the fiber sorbent by at least 7 orders of magnitude, essentially creating an impermeable sheath layer. The interstitial volume between the individual fibers was filled with a thermally-moderating paraffin wax. CO_2 breakthrough experiments on the hollow fiber sorbent modules with and without paraffin wax revealed that the "passively" cooled paraffin wax module had 12.5% longer breakthrough times than the "non-isothermal" module. The latent heat of fusion/melting of the wax offsets the released latent heat of sorption/desorption of the zeolites. One-hundred rapidly cycled pressure swing adsorption cycles were performed on the "passively" cooled hollow fiber sorbents using 25 vol% CO_2/75 vol% He (H_2 surrogate) at 60 ℃ and 113 psia, resulting in a product purity of 99.2% and a product recovery of 88.1% thus achieving process conditions and product quality comparable to conventional pellet processes. Isothermal and non-isothermal dynamic modeling of the hollow fiber sorbent module and a traditional packed bed using gPROMS~® indicated that the fiber sorbents have sharper fronts (232% sharper) and longer adsorbate breakthrough times (66% longer), further confirming the applicability of the new fiber sorbent approach for H_2 purification.
机译:我们描述了热缓和的多层伪整体空心纤维吸附剂实体,可以将其包装到紧凑的模块中,以提供占地面积小,有效的H_2净化/ CO_2去除系统,用于现场蒸汽甲烷重整器产品气体分离。双层中空纤维是通过干式喷射,湿式骤冷纺丝而制成的,其内部具有醋酸纤维素(多孔粘合剂)和NaY沸石(69 wt%沸石NaY)的“活性”内芯以及纯醋酸纤维素的外皮层。共纺皮层降低了纤维的表面孔隙率,并用作聚乙烯醇后处理的光滑涂层表面,从而使通过纤维吸附剂的气体渗透率降低了至少7个数量级,实质上形成了不可渗透的护套层。各个纤维之间的间隙体积填充有热调节石蜡。在有和没有石蜡的情况下,中空纤维吸附剂模块的CO_2穿透实验表明,“被动”冷却的石蜡模块比“非等温”模块的穿透时间长12.5%。蜡的熔化/熔化潜热抵消了沸石吸附/解吸释放的潜热。在60℃和113 psia下,使用25%(体积)CO_2 / 75%(体积)He(H_2替代物)对“被动”冷却的中空纤维吸附剂进行一百次快速循环的变压吸附循环。产品回收率达88.1%,从而达到了与常规颗粒工艺相当的工艺条件和产品质量。中空纤维吸附剂模块和使用gPROMS〜®的传统填充床的等温和非等温动态模型表明,纤维吸附剂具有更锋利的前沿(锐利232%)和更长的吸附物穿透时间(更长66%),进一步证实了其适用性。 H_2纯化的新型纤维吸附剂方法的概述。

著录项

  • 来源
    《International journal of hydrogen energy》 |2012年第20期|p.15227-15240|共14页
  • 作者单位

    School of Chemical and Biomolecular Engineering, Georgia Institute of Technology, 778 Atlantic Driue, Atlanta, GA 30332-0100, United States;

    School of Chemical and Biomolecular Engineering, Georgia Institute of Technology, 778 Atlantic Driue, Atlanta, GA 30332-0100, United States;

    School of Chemical and Biomolecular Engineering, Georgia Institute of Technology, 778 Atlantic Driue, Atlanta, GA 30332-0100, United States;

    School of Chemical and Biomolecular Engineering, Georgia Institute of Technology, 778 Atlantic Driue, Atlanta, GA 30332-0100, United States;

    School of Chemical and Biomolecular Engineering, Georgia Institute of Technology, 778 Atlantic Driue, Atlanta, GA 30332-0100, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    pressure swing adsorption; hydrogen recovery; hydrogen purification; CO_2 removal; gas separations; hollow fiber sorbents;

    机译:变压吸附氢回收氢纯化去除CO_2;气体分离中空纤维吸附剂;
  • 入库时间 2022-08-18 00:28:31

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