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首页> 外文期刊>Journal of Chemical Engineering of Japan >Gas–Liquid Interfacial Area and Liquid-Phase Mass Transfer Coefficient in Sieve Plate Columns without Downcomer Operating at High Gas Velocities
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Gas–Liquid Interfacial Area and Liquid-Phase Mass Transfer Coefficient in Sieve Plate Columns without Downcomer Operating at High Gas Velocities

机译:筛板塔中的气体-液体界面面积和液相传质系数

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References(23) Cited-By(9) Experiments were performed to investigate the gas–liquid interfacial area and the liquid-phase mass transfer coefficient of a two-phase dispersion on sieve plates with hole diameters of 4–12 mm and with free areas of 5.5–50.4% without downcomer. Operation was carried out at high gas velocities using cobalt-catalyzed oxidation of aqueous sodium sulfite solution with air.The two-phase dispersion showed froth regime and transition regime, which is called partially developed spray regimes/mixed froth regimes, depending on the gas velocities. The gas–liquid interfacial area of the two-phase dispersion in the froth regime is influenced by the free area of the plate, whereas no effect of free area is found in the transition regime. The correlations of interfacial area for each regime are given on the basis of the correlation obtained by Zuiderweg under a gas–liquid cross-current condition. Empirical equations for the Sherwood number based on liquid depth are obtained. Using the results of the interfacial area and the mass transfer coefficient, the mass transfer volumetric coefficient can be predicted.
机译:参考文献(23)By-By(9)进行了实验,研究了孔径为4-12 mm且有自由区域的筛板上两相分散体的气液界面面积和液相传质系数5.5%至50.4%,无降液管。使用钴催化的亚硫酸钠水溶液用空气氧化在高气体速度下进行操作。两相分散液显示出泡沫状态和过渡状态,根据气体速度,这称为部分展开的喷雾状态/混合泡沫状态。在泡沫状态下两相分散体的气液界面面积受板的自由面积影响,而在过渡状态下未发现自由区的影响。根据Zuiderweg在气液交叉流条件下获得的相关性,给出了每种体系的界面面积的相关性。获得了基于液体深度的舍伍德数的经验方程。使用界面面积和传质系数的结果,可以预测传质体积系数。

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