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Effect of dispersed holdup on drop size distribution in oil-water dispersions: Experimental observations and population balance modeling

机译:分散的滞留量对油水分散体中液滴尺寸分布的影响:实验观察和种群平衡模型

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The drop diameter distribution (DSD) of dispersed Exxsol D80 oil-in-water in a lab scale stirred tank was predicted numerically using population balance equations (PBEs) modeling. It was assumed that the flow area was split into two zones, around the impeller with high energy dissipation rate and further away from the impeller with low energy dissipation rate. The dispersed phase chord length (CLD) distribution was experimentally measured with a focused beam reflectance method (FBRM) probe, and was then converted to the drop diameter distribution (DSD) numerically using a backward transform. Comparisons between the PBEs model results against experimental data from the current work and from previous literature showed that the PBEs predicted well the data at low dispersed phase fractions but over-predicted them at high ones. The predictions were slightly better when an increased power number was used. In addition, it was found that improved predictions could be obtained when the region of high energy dissipation rate around the impeller was enhanced.
机译:使用种群平衡方程(PBEs)建模方法,对实验室规模搅拌罐中分散的Exxsol D80水包油的液滴直径分布(DSD)进行了数值预测。假设将流动区域分为两个区域,即能量消耗率高的叶轮周围和能量消耗率低的叶轮更远。使用聚焦光束反射法(FBRM)探针对分散相弦长度(CLD)分布进行了实验测量,然后使用反向变换将其数字转换为墨滴直径分布(DSD)。 PBEs模型结果与当前工作和以前文献的实验数据之间的比较表明,PBEs在低分散相分数下能很好地预测数据,而在高分散相分数下会过分预测。当使用增加的功率数时,预测会稍微好一些。另外,发现当叶轮周围的高能量耗散率的区域增加时,可以获得更好的预测。

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