Modeling Maximum Droplet Size In Gas-Liquid Annular Flow and Liquid–Liquid Dispersed Flow

Kanat Karatayev, Yilin Fan
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Abstract

Hydrocarbon production is commonly associated as the dispersed flow of two and more immiscible phases starting from porous media to surface facilities. In the dispersed flow, one phase is usually dispersed into another dominating phase in terms of droplets. Accurate prediction of the droplet size distribution of a dispersed phase is critical in characterizing complex flow behavior in pipe flows. In the first part of this paper, we provide the analyses of open-source experimental data on the maximum droplet size in gas-liquid annular flow and evaluate the existing theoretical models and suggest an improvement based on the experimental data analyses to predict the maximum droplet size of the entrained liquid droplets in gas-liquid annular flow. In the second part of this paper, we cover the experimental results from the open-source literature data and in-house experimental data to give the general understanding on droplet formation concepts and evaluate the existing predictive models and present a new modeling approach to determine a maximum stable droplet size of the dispersed phase in the liquid-liquid dispersed flow under turbulent flow conditions.
气液环空流动和液液分散流动中最大液滴尺寸的建模
油气生产通常与两种或两种以上不混相从多孔介质到地面设施的分散流动有关。在分散流动中,一个相通常以液滴的形式分散到另一个主导相中。准确预测分散相的液滴尺寸分布对于表征管道流动中的复杂流动行为至关重要。在本文的第一部分中,我们对气液环流中最大液滴尺寸的开源实验数据进行了分析,并对现有的理论模型进行了评价,并在实验数据分析的基础上提出了预测气液环流中夹带液滴最大液滴尺寸的改进建议。在本文的第二部分中,我们结合开源文献数据和内部实验数据的实验结果,对液滴形成的概念有了大致的了解,并对现有的预测模型进行了评估,提出了一种新的建模方法来确定湍流条件下液-液分散流动中分散相的最大稳定液滴尺寸。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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