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Numerical solution of the bivariate population balance equation for the interacting hydrodynamics and mass transfer in liquid-liquid extraction columns

机译:液液萃取塔中相互作用的水动力与质量传递的双变量总体平衡方程的数值解

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A comprehensive model for predicting the interacting hydrodynamics and mass transfer is formulated on the basis of a spatially distributed population balance equation in terms of the bivariate number density function with respect to droplet diameter and solute concentration. The two macro- (droplet breakage and coalescence) and micro- (interphase mass transfer) droplet phenomena are allowed to interact through the dispersion interfacial tension. The resulting model equations are composed of a system of partial and algebraic equations that are dominated by convection, and hence it calls for a specialized discretization approach. The model equations are applied to a laboratory segment of an RDC column using an experimentally validated droplet transport and interaction functions. Aside from the model spatial discretization, two methods for the discretization of the droplet diameter are extended to include the droplet solute concentration. These methods are the generalized fixed-pivot technique (GFP) and the quadrature method of moments (QMOM). The numerical results obtained from the two extended methods are almost identical, and the CPU time of both methods is found acceptable so that the two methods are being extended to simulate a full-scale liquid-liquid extraction column. (c) 2005 Elsevier Ltd. All rights reserved.
机译:根据空间分布的种群平衡方程,根据关于液滴直径和溶质浓度的双变量数密度函数,建立了一个预测相互作用的水动力和传质的综合模型。通过分散界面张力,可以使两个宏观(液滴破裂和聚结)和微观(相间传质)液滴现象相互作用。生成的模型方程由对流主导的部分方程和代数方程组组成,因此需要一种专门的离散化方法。使用经过实验验证的液滴传输和相互作用函数,将模型方程式应用于RDC柱的实验室段。除了模型空间离散化以外,液滴直径离散化的两种方法扩展到包括液滴溶质浓度。这些方法是广义固定轴技术(GFP)和矩量正交方法(QMOM)。从这两种扩展方法获得的数值结果几乎相同,并且发现这两种方法的CPU时间都是可以接受的,因此可以扩展这两种方法以模拟全尺寸液-液萃取塔。 (c)2005 Elsevier Ltd.保留所有权利。

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