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Investigating the Advantages and Limitations of Modeling Physical Mass Transfer of CO2 on Flat Plate by One Fluid Formulation in OpenFOAM

机译:OpenFoam中的一种流体制剂在平板上对平板物理传质的优点和局限性

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摘要

One fluid formulation is an approach used for modeling and analysis of mass transfer between two immiscible phases. In this study we implement and analyze the advantages and limitations of this approach for CO2 physical mass transfer into MEA. The domain is a flat plate and gas liquid flow is counter current. The analysis was carried for operating parameters like liquid phase Reynolds number, MEA mass fraction and the angle of inclination of flat plate. The results clearly show that the model effectively captures the deviation in liquid side mass transfer coefficient due to the surface instabilities and liquid properties which are generally neglected by standard correlations. Also the model shows that the standard Higbie correlation is preferable at low Reynolds number at any angle of inclination. The grid independent studies show that a size of 6.25 mu m is required in the interface region for effectively using this approach. The computational resource time at this resolution was found as the only limitation for using this approach and we suggest a procedure to overcome this limitation. The present simulation results can help CFD researchers investigating immiscible gas-liquid mass transfer using OpenFOAM.
机译:一种流体制剂是一种用于建模和分析两种不混溶阶段之间的传质的方法。在这项研究中,我们实施并分析了这种方法对CO2物理传单转化为MEA的优点和局限性。域是平板,气体流动是逆流。该分析用于操作参数,如液相雷诺数,MEA质量分数和平板的倾斜角度。结果清楚地表明,由于通常通过标准相关性忽略的表面稳定性和液体性质,该模型有效地捕获液面传质系数的偏差。此外,该模型表明,在任何倾斜角度下,在低雷诺数的标准Higbie相关性是优选的。网格独立研究表明,界面区域中需要6.25μm的尺寸,以有效地使用这种方法。找到此分辨率的计算资源时间作为使用此方法的唯一限制,我们建议克服此限制的过程。目前的仿真结果可以帮助CFD研究人员使用OppFoam调查不混溶的气液传质。

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