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A multi-fluid approach to simulate separation of liquid-liquid systems in a gravity settler

机译:一种模拟重力沉降器中液液系统分离的多流体方法

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Industrial processes employing homogeneous catalysis face the difficulty of an economic recovery of the catalyst.In order to be able to design an optimal process route,a comprehensive understanding of the separation process is essential.In this work,the gravity-driven separation of a multiphase system composed of water,1-dodecene,and a non-ionic surfactant,is investigated.Within the employed ranges of temperature and phase composition,this system exists in a three-phase configuration,consisting of an aqueous,an organic,and a surfactant-rich middle phase.Following the reaction step,a complete separation of the aqueous phase,in which the expensive rhodium catalyst is dissolved,is essential.Extensive experiments have been carried out to determine the drop size distribution(DSD)of the disperse phases using an endoscopic measurement technique.Based on these experimental data,a Computational Fluid Dynamics(CFD)model employing the Euler-Euler multi-fluid framework coupled with the Extended Quadrature Method of Moments(EQMOM)for the solution of the population balance equations(PBEs)for each disperse phase is implemented using OpenFOAM.Within the framework of this CFD-PBE model,a buoyancy-induced coalescence model,which has been previously shown to accurately predict the degree of separation,has been employed.This multi-fluid CFD-PBE model has been used for simulating the separation of the three-phase system in a double-wall glass tank.The time-evolution of observed phase heights is used to fit the model parameters of the coalescence kernel.Subsequently,this numerical model has been used for simulating the gravity-driven separation in a horizontal settler equipped with a coalescer.The predictions of this numerical model are in good agreement with the experimentally observed values.
机译:使用均匀催化的工业过程面临着催化剂的经济复苏的难度。为了能够设计最佳的过程路线,对分离过程的全面了解是必要的。在这项工作中,多相的重力驱动分离研究了由水,1-十二烯和非离子表面活性剂组成的系统。在使用的温度和相组合物的范围内,该系统存在于三相构型中,由水性,有机和表面活性剂组成 - 中间期。沿反应步骤,水相的完全分离,其中昂贵的铑催化剂溶解,是必要的。已经进行了扩张实验以确定使用的分散阶段的滴尺寸分布(DSD)基于这些实验数据的内窥镜测量技术,采用欧拉 - 欧拉多流体框架的计算流体动力学(CFD)模型与扩展曲线耦合使用OpenFoam实现每个分散相位的群体平衡方程(PBE)解决方程(PBE)的常时(EQMOM)的渐近方法。在该CFD-PBE模型的框架,这是一种浮力诱导的聚结模型,其先前已显示为已经采用了准确预测分离程度。本发明的多流体CFD-PBE模型已被用于模拟三相系统在双壁玻璃罐中的分离。使用观察到的相高度的时间演变为了适应聚结核的模型参数。例如,这种数值模型用于模拟配备聚结剂的水平沉降器中的重力驱动的分离。该数值模型的预测与实验观察的值吻合良好。

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