The Use of Computational Fluid Dynamics in the Analysis of Gas-Liquid-Liquid Reactors

G. Gakingo, T. Louw
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Abstract

Gas–liquid–liquid reactors are typically found in bioprocess setups such as those used in alkane biocatalysis and biological gas stripping. The departure of such reactors from traditional gas–liquid setups is by the introduction of a secondary (dispersed) liquid phase. The introduction of the latter results in complicated hydrodynamics as observed through measurements of velocity fields, turbulence levels and mixing times. Similarly, changes in mass transfer occur as observed through measurements of gas hold up, bubble diameters and the volumetric mass transfer coefficients. The design and analysis of such reactors thus requires the adoption of an approach that can comprehensively account for the various observed changes. This chapter proposes Computational Fluid Dynamics as an approach fit for this purpose. Key considerations, successes and challenges of this approach are highlighted and discussed based on a review of previously published case studies.
计算流体动力学在气液液反应器分析中的应用
气-液-液反应器通常用于生物工艺装置,例如用于烷烃生物催化和生物气提的反应器。这种反应器与传统气液装置的不同之处在于引入了二次(分散)液相。后者的引入导致了通过测量速度场、湍流水平和混合时间所观察到的复杂的流体动力学。同样地,通过测量气体持有率、气泡直径和体积传质系数,可以观察到传质过程的变化。因此,这类反应堆的设计和分析需要采用一种能够全面解释所观察到的各种变化的方法。本章提出计算流体动力学作为适合这一目的的方法。在回顾以前发表的案例研究的基础上,强调并讨论了该方法的关键考虑因素、成功和挑战。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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