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Effect of Void Fraction and Two-Phase Dynamic Viscosity Models on Prediction of Hydrostatic and Frictional Pressure Drop in Vertical Upward Gas-Liquid Two-Phase Flow

机译:空隙率和两相动态黏度模型对垂直向上气液两相流静液压和摩擦压降预测的影响

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摘要

In gas-liquid two-phase flow, the prediction of two-phase density and hence the hydrostatic pressure drop relies on the void fraction and is sensitive to the error in prediction of void fraction. The objectives of this study are to analyze dependence of two-phase density on void fraction and to examine slip ratio and drift flux model-based correlations for their performance in prediction of void fraction and two-phase densities for the two extremes of two-phase flow conditions, that is, bubbly and annular flow or, alternatively, the low and high region of the void fraction. It is shown that the drift flux model-based correlations perform better than the slip ratio model-based correlations in prediction of void fraction and hence the two-phase mixture density. Another objective of this study is to verify performance of different two-phase dynamic viscosity models in prediction of two-phase frictional pressure drop. Fourteen two-phase dynamic viscosity models are assessed for their performance against 616 data points consisting of 10 different pipe diameters in annular flow regime. It is found that none of these two-phase dynamic viscosity models are able to predict the frictional pressure drop in annular flow regime for a range of pipe diameters. The correlations that are successful for small pipe diameters fail for large pipe diameters and vice versa.
机译:在气液两相流中,两相密度的预测以及因此的静水压降取决于空隙率,并且对空隙率的预测误差敏感。这项研究的目的是分析两相密度对空隙率的依赖性,并检查基于滑移率和漂移通量模型的相关性,以预测两相两个极端情况下的空隙率和两相密度。流动条件,即气泡流和环形流,或空隙率的低和高区域。结果表明,基于漂移通量模型的相关性比基于滑移率模型的相关性在预测空隙率和两相混合物密度方面表现更好。这项研究的另一个目标是验证不同的两相动态粘度模型在预测两相摩擦压降方面的性能。针对616个数据点,评估了14个两相动态粘度模型的性能,该数据点由10种不同管径的环形流动状态组成。已经发现,对于管道直径的范围,这些两相动态粘度模型都无法预测环形流动状态下的摩擦压降。对于小直径管道成功的关联对于大直径管道失败,反之亦然。

著录项

  • 来源
    《Heat Transfer Engineering》 |2013年第15期|1044-1059|共16页
  • 作者单位

    School of Mechanical and Aerospace Engineering, Oklahoma State University, Stillwater, Oklahoma, USA;

    School of Mechanical and Aerospace Engineering, Oklahoma State University, Stillwater, Oklahoma, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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