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Taylor flow in intermediate diameter channels: Simulation and hydrodynamic models

机译:中等直径通道中的泰勒流量:模拟和流体动力学模型

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摘要

The two-phase Taylor flow pattern has been studied extensively. However, limited information is available for flows in intermediate diameter channels (5 approx< Bo approx< 40, or 6 mm approx< D approx< 27 mm for ambient gas-water flows), as found in air-lift and bubble pumps. Previous investigations have primarily evaluated Taylor flow models in terms of overall pressure drop, which incorporates hydrostatic and multiple hydro-dynamic components. Thus, individual sub-models and sources of error could not be directly assessed. In this investigation, volume-of-fluid (VOF) based Taylor flow simulations are performed over a wide range of laminar and turbulent conditions in the intermediate Bond number regime (5 < Bo < 20, 250<N_f<1000, and 20<Re_f<8100). Results are applied to individually evaluate hydrodynamic submodels for bubble-region factional pressure drop gradient (▽p_(f,b)), slug frictional pressure drop gradient (▽p_(f,s)), and flow transition pressure loss (Δp_(trans)). Based on these results, recommendations are provided for selection of hydrodynamic sub-models. These hydrodynamic closure models are integrated with kinematic flow models to yield a complete intermediate Bond number Taylor flow formulation for which all submodels were independently validated. The resulting model achieves improved accuracy for predicting experimental liquid flow rates compared with previous Taylor flow models (81% of cases within 50% of measured flows rates).
机译:已经广泛研究了两相泰勒流动模式。但是,对于中径通道中的流量(如气举泵和气泡泵中的流量(对于周围的气-水流量而言,约为5 Bos <40左右,对于D≤27 mm,D小于大约27 mm)),只能获得有限的信息。先前的研究主要根据总压降评估了泰勒流量模型,该总压降包含了静水力和多个水动力分量。因此,无法直接评估各个子模型和错误来源。在这项研究中,基于流体体积(VOF)的泰勒流动模拟在中间键数范围(5 <Bo <20,250 <N_f <1000和20 <Re_f)的层流和湍流条件下进行<8100)。将结果应用于分别评估气泡区域派生压降梯度(▽p_(f,b)),段塞摩擦压降梯度(▽p_(f,s))和流变压力损失(Δp_(trans ))。基于这些结果,为选择水动力子模型提供了建议。这些流体动力闭合模型与运动学流动模型集成在一起,以产生一个完整的中间键数泰勒流动公式,并对其所有子模型进行了独立验证。与先前的泰勒流量模型相比(在81%的情况下,所测流量的50%内),所得模型可提高预测实验液体流量的准确性。

著录项

  • 来源
    《International Journal of Heat and Mass Transfer》 |2016年第12期|1108-1124|共17页
  • 作者单位

    Sustainable Thermal Systems Laboratory, GWW School of Mechanical Engineering, Georgia Institute of Technology, Atlanta, GA 30332, United States;

    Sustainable Thermal Systems Laboratory, GWW School of Mechanical Engineering, Georgia Institute of Technology, Atlanta, GA 30332, United States,Georgia Institute of Technology, GWW School of Mechanical Engineering, Love Building, Room 340, 801 Ferst Drive, Atlanta, GA 30332, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Taylor flow; Volume-of-fluid; Two-phase flow; Bubble pump;

    机译:泰勒流流体体积两相流;气泡泵;

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