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Direct Numerical Simulation of Gas-Liquid Drag-Reducing Cavity Flow by the VOSET Method

机译:VOSET方法直接数值模拟气液阻力腔流量

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摘要

Drag reduction by polymer is an important energy-saving technology, which can reduce pumping pressure or promote the flow rate of the pipelines transporting fluid. It has been widely applied to single-phase pipelines, such as oil pipelining, district heating systems, and firefighting. However, the engineering application of the drag reduction technology in two-phase flow systems has not been reported. The reason is an unrevealed complex mechanism of two-phase drag reduction and lack of numerical tools for mechanism study. Therefore, we aim to propose governing equations and numerical methods of direct numerical simulation (DNS) for two-phase gas-liquid drag-reducing flow and try to explain the reason for the two-phase drag reduction. Efficient interface tracking method—coupled volume-of-fluid and level set (VOSET) and typical polymer constitutive model Giesekus are combined in the momentum equation of the two-phase turbulent flow. Interface smoothing for conformation tensor induced by polymer is used to ensure numerical stability of the DNS. Special features and corresponding explanations of the two-phase gas-liquid drag-reducing flow are found based on DNS results. High shear in a high Reynolds number flow depresses the efficiency of the gas-liquid drag reduction, while a high concentration of polymer promotes the efficiency. To guarantee efficient drag reduction, it is better to use a high concentration of polymer drag-reducing agents (DRAs) for high shear flow.
机译:通过聚合物阻力减少是一种重要的节能技术,可以减少泵送压力或促进运输流体的流水线的流速。它已被广泛应用于单相管道,如石油管制,区供暖系统和消防。然而,尚未报告两相流系统中减阻技术的工程应用。原因是一种缺乏两相阻力减少的复杂机制,缺乏机制研究缺乏数值工具。因此,我们的目标是提出用于两相气液阻力减少流量的直接数值模拟(DNS)的控制方程和数值方法,并尝试解释两相减阻的原因。高效的接口跟踪方法耦合的流体体积和水平集(VOSET)和典型的聚合物本构模型Giesekus在两相湍流流动的动量方程中组合。用聚合物诱导的构象张量的界面平滑用于确保DNS的数值稳定性。基于DNS结果,发现了两相气体阻力减小流量的特殊特征和相应的解释。高雷诺数的高剪切数流动压低了气液阻力减少的效率,而高浓度的聚合物促进了效率。为了保证有效的减阻,最好使用高浓度的聚合物阻力剂(DRA)以进行高剪切流。

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  • 作者

    Yi Wang; Yan Wang; Zhe Cheng;

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  • 年度 2019
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  • 原文格式 PDF
  • 正文语种 eng
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