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A combined lossy capacitor population balance model (LCPBM) for calculating the influence of frequency on electric field enhanced coalescence in a static-mixer settler setup

机译:组合式有损电容器总体平衡模型(LCPBM),用于计算频率对静态混合器沉降器中电场增强的聚结的影响

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In this work a combined lossy capacitor population balance model (LCPBM) is developed to predict the effect of a square wave frequency on electric-field coalescence (drop size) in a static-mixer settler setup for the caprolactam-toluene-water system. The static-mixer is used to mix the organic and aqueous phases. The electric field is applied by placing insulated electrodes at the end of the static-mixer. The electrical-circuit model of the system is based on the lossy capacitor model where the insulation and the dispersion are considered as leaky dielectrics. The charge and the electric field are determined from the electrical-circuit model and coupled in the hydrodynamic equation to calculate the velocities of drops. The velocities are in turn used in the population balance model (PBM) to determine the time evolution of the drop size. Three approaches are used to calculate the electrical force and the charge on the drops from the circuit model: (1) the Bailes' charge hypothesis where the drops pick their charge from the free dispersion-insulation interfacial charge, and the electrical force calculated based on electrophoretic contribution, (2) the electrical force determined from the Taylor-Melcher leaky dielectric model considering the electrical force due to the free charge and the force due to the difference in dielectric permittivity's of the dispersion and insulation, and (3) by accounting for the free charge convection by the fluid motion which results in equal redistribution of the polarization charge between the dispersion and the insulation. The (LCPBM) model was validated by measuring drop sizes using a square wave of 0.4 kV/cm and frequencies between 3 and 100 Hz for two flowrates. With all approaches, the mean sauter diameters were calculated within 10% relative error at lower frequencies for both flowrates. At higher frequencies of 50 Hz and 100 Hz, a 20% relative error was obtained for the first approach. A better prediction within 10% was found for the second and third approaches with the later approach giving the best prediction.
机译:在这项工作中,开发了一种组合式有损电容器总体平衡模型(LCPBM),以预测在己内酰胺-甲苯-水系统的静态混合沉降器中方波频率对电场聚结(液滴尺寸)的影响。静态混合器用于混合有机相和水相。通过将绝缘电极放在静态混合器的末端来施加电场。系统的电路模型基于有损电容器模型,其中绝缘和色散被视为泄漏电介质。根据电路模型确定电荷和电场,并将其耦合到流体动力学方程中以计算液滴的速度。速度又被用于人口平衡模型(PBM)中,以确定液滴大小的时间演变。可以使用三种方法从电路模型中计算液滴上的电荷和电荷:(1)贝勒斯电荷假设,其中液滴从自由分散-绝缘界面电荷中选取电荷,然后根据电泳作用;(2)由泰勒-梅尔歇尔泄漏电介质模型确定的电势,其中考虑了由于自由电荷引起的电势以及由于分散体和绝缘体的介电常数不同而产生的电势,以及(3)通过考虑流体运动产生的自由电荷对流会导致分散体和绝缘体之间的极化电荷均等地重新分布。 (LCPBM)模型通过使用0.4 kV / cm的方波和两种流速的3至100 Hz之间的频率测量液滴大小来验证。对于所有方法,两种流速下的平均Sauter直径在较低频率下的相对误差均在10%以内。在50 Hz和100 Hz的较高频率下,第一种方法的相对误差为20%。对于第二种方法和第三种方法,发现10%以内的更好的预测,而后一种方法给出了最佳的预测。

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