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Characterization of liquid-liquid mass transfer performance in a novel pore-array intensified tube-in-tube microchannel

机译:一种新型孔阵液 - 液体传递性能的表征强化管内微通道

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Liquid-liquid mass transfer performance of a novel pore-array intensified tube-in-tube microchannel (PA-TMC) was investigated with the water-benzoic acid-kerosene system. Both mass transfer efficiency (E) and volumetric mass transfer coefficient (K(L)a) are found to increase simultaneously with the flow rate, but decrease with total number of pores and rows. However, E increases but K(L)a decreases with the annular length. In particular, the pore size shows an optimal value at 0.3 mm due to the interplay problem of the radial adjacent pores. Computational fluid dynamics simulations reveal that the high kinetic energy generated by the pore-array section plays a significant role in mass transfer process. The artificial neural network model is established to correlate K(L)a with the investigated parameters of PA-TMC. The comparison of K(L)a with other types of contactors indicates that PA-TMC has superior mass transfer performance and high throughput for a broad industrial application.
机译:用水 - 苯甲酸 - 煤油系统研究了一种新型孔阵的孔阵型管内微通道(PA-TMC)的液体液体传质性能。 发现质量传递效率(E)和体积传质系数(K(1)A)与流速同时增加,但随着孔隙和行的总数而降低。 然而,e增加但k(l)k(l)随环形长度的减小。 特别地,由于径向相邻孔的相互作用问题,孔径显示为0.3mm的最佳值。 计算流体动力学模拟表明,孔阵截面产生的高动能在传质过程中起着重要作用。 建立人工神经网络模型以将K(L)A与PA-TMC的研究相关联。 K(L)A与其他类型的接触器的比较表明PA-TMC具有优异的传质性能和广泛的工业应用的高吞吐量。

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