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Droplet size prediction model based on the upper limit log-normal distribution function in venturi scrubber

机译:基于文丘里洗涤塔上限对数正态分布函数的液滴尺寸预测模型

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Droplet size and distribution are important parameters determining venturi scrubber performance. In this paper, we proposed physical models for a maximum stable droplet size prediction and upper limit log-normal (ULLN) distribution parameters. For the proposed maximum stable droplet size prediction model, a Eulerian-Lagrangian framework and a Reitz-Diwakar breakup model are solved simultaneously using CFD calculations to reflect the effect of multistage breakup and droplet acceleration. Then, two ULLN distribution parameters are suggested through best fitting the previously published experimental data. Results show that the proposed approach provides better predictions of maximum stable droplet diameter and Sauter mean diameter compared to existing simple empirical correlations including Boll, Nukiyama and Tanasawa. For more practical purpose, we developed the simple, one dimensional (1-D) calculation of Sauter mean diameter.
机译:液滴的大小和分布是决定文丘里洗涤器性能的重要参数。在本文中,我们提出了用于最大稳定液滴尺寸预测和上限对数正态(ULLN)分布参数的物理模型。对于建议的最大稳定液滴尺寸预测模型,使用CFD计算同时求解了欧拉-拉格朗日框架和Reitz-Diwakar分解模型,以反映多级分解和液滴加速的影响。然后,通过最佳拟合先前发布的实验数据,提出了两个ULLN分布参数。结果表明,与现有的简单经验相关性(包括Boll,Nukiyama和Tanasawa)相比,所提出的方法可以更好地预测最大稳定液滴直径和Sauter平均直径。为了更实际的目的,我们开发了Sauter平均直径的简单一维(1-D)计算方法。

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