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Gas absorption studies using microporous hollow fiber membranes.

机译:使用微孔中空纤维膜进行气体吸收研究。

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Gas absorption in contactors using microporous hydrophobic hollow fibers is being increasingly used due to their enormous surface area/equipment volume. Experimental gas absorption studies were performed with such hollow fibers in modules having primarily a shell-and-tube type arrangement for parallel flow. Absorption of pure CO{dollar}sb2{dollar}, pure SO{dollar}sb2{dollar} and their individual mixtures in N{dollar}sb2{dollar} or air were studied systematically. Two modes of operation were adopted: nonwetted (gas in the membrane pores) and wetted (absorbent liquid in the membrane pores). For each mode, absorbent flowed either in the shell side or tube side. Absorbents used were pure water, 19.5 wt% diethanolamine (DEA) in water and 0.5 M sodium sulfite in water. Models utilizing basic partial differential equations of species conservation with or without reaction were developed from first principles. For CO{dollar}sb2{dollar} absorption in aqueous DEA, reactions schemes used include those by Sada et al. (1985), Danckwerts and Sharma (1966) and Laddha and Danckwerts (1981).; Numerical simulations of the models explained the observed gas absorption rates well in most cases when the absorbent flows in the tube side for both wetted and nonwetted modes. When the liquid flows in the shell side, a fitted parameter was used as a liquid phase axial dispersion coefficient for pure gas absorption to explain the experimental behavior; the absorption rates were always considerably lower compared to the tube side liquid flow cases due to shell side channeling. A much better gas absorption performance with shell side liquid flow was achieved using a crossflow module. For the reactive absorption of pure CO{dollar}sb2{dollar} in aqueous DEA in the wetted mode shell side liquid flow, the model, however, describes the experimental behavior well in the shell-and-tube devices. Since the reactions are fast and the membrane pores are filled with the absorbent liquid allowing the reaction to go to completion in the pore itself, shell side flow behavior does not have much influence.; The K{dollar}sb{lcub}rm L{rcub}{dollar}a calculations for the absorption of CO{dollar}sb2{dollar} shows that the performance of the hollow fiber modules are much better than those of conventional packed towers. A much lower HTU is obtained using a hollow fiber module suggesting dramatic reductions in contacting lengths.
机译:由于其巨大的表面积/设备体积,越来越多地使用使用微孔疏水性中空纤维的接触器中的气体吸收。用这种中空纤维在模块中进行了实验性气体吸收研究,该模块主要具有用于平行流的壳管式布置。系统研究了纯CO,纯SOsb2和它们各自的混合物在Nbs或空气中的吸收。采用两种操作模式:未润湿(膜孔中的气体)和润湿(膜孔中的吸收性液体)。对于每种模式,吸收剂都在壳侧或管侧流动。使用的吸收剂是纯水,水中的19.5 wt%二乙醇胺(DEA)和水中的0.5 M亚硫酸钠。从基本原理出发,开发了利用具有或没有反应的物种保护的基本偏微分方程的模型。对于在含水DEA中CO {sb2sb2 {dollar}的吸收,所使用的反应方案包括Sada等人的反应方案。 (1985),Danckwerts和Sharma(1966)以及Laddha和Danckwerts(1981)。在吸湿模式和非湿模式下,当吸收剂在管侧流动时,模型的数值模拟可以很好地说明观察到的气体吸收率。当液体在壳侧流动时,使用拟合参数作为纯气体吸收的液相轴向弥散系数,以解释实验行为。由于壳侧通道,吸收率总是比管侧液体流情况低得多。使用错流模块可实现壳侧液体流更好的气体吸收性能。为了在湿式壳侧液体流中在含水DEA中反应吸收纯CO {sb2sb2 {dollar},该模型很好地描述了在壳管式装置中的实验行为。由于反应快并且膜孔中充满吸收剂液体,使反应在孔本身中完成,因此壳侧流动行为没有太大影响。吸收CO {ssb2 {dollar}的K {dollar} sb {lcub} rm L {rcub} {dollar} a计算表明,中空纤维组件的性能比常规填料塔好得多。使用中空纤维模块可获得更低的HTU,表明接触长度显着减少。

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