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Modeling of bubble size distribution in isothermal gas-liquid flows: Numerical assessment of population balance approaches

机译:等温气液流动中气泡尺寸分布的模型:人口平衡方法的数值评估

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摘要

Gas-liquid flows are commonly encountered in many industrial flow systems. In many cases, the evolution of bubble size distribution is a crucial factor governing the momentum, heat and mass transfer between phases within the system. Aiming to evaluate the capability of existing models, numerical assessment of three different population balance approaches - direct quadrature method of moments (DQMOM), average bubble number density (ABND) model and homogeneous MUlti-SIze-Group (MUSIG) models - is presented in this paper. Model predictions were validated against experimental measurements from medium and large scale bubble columns where bubble sizes within the system were found to be dominant by coalescence and break-up mechanism, respectively. In result of the bubble size change, transitions of phase distribution from wall peak to core peak profile were also found in both experiments. In general, predictions of the three models were in satisfactory agreement with experiment measurements clearly demonstrating its applicability for large scale practical systems. Encouraging results have also been obtained in capturing the evolution of bubble size distribution. Nevertheless, noticeable errors were also found in predictions of the MUSIG and DQMOM model indicating some potential deficiencies of the model. To evaluate the numerical efficiency of the three models, computational requirements of each model were also compared.
机译:气液流在许多工业流系统中经常遇到。在许多情况下,气泡尺寸分布的演变是控制系统内各相之间动量,热量和质量传递的关键因素。为了评估现有模型的能力,提出了三种不同的人口平衡方法的数值评估方法-直接矩矩法(DQMOM),平均气泡数密度(ABND)模型和均质MUlti-SIze-Group(MUSIG)模型。这篇报告。通过对中型和大型气泡塔的实验测量结果验证了模型预测,其中发现系统中气泡的大小分别由聚结和破裂机制决定。由于气泡大小的变化,在两个实验中也发现了从壁峰到核心峰轮廓的相分布过渡。通常,这三个模型的预测与实验测量结果令人满意,清楚地表明了其在大规模实际系统中的适用性。在捕获气泡尺寸分布的演变过程中也获得了令人鼓舞的结果。尽管如此,在MUSIG和DQMOM模型的预测中也发现了明显的错误,表明该模型存在某些潜在缺陷。为了评估这三个模型的数值效率,还比较了每个模型的计算要求。

著录项

  • 来源
    《Nuclear Engineering and Design》 |2013年第12期|120-136|共17页
  • 作者单位

    School of Aerospace, Mechanical and Manufacturing Engineering, RMIT University, Victoria 3083, Australia;

    School of Aerospace, Mechanical and Manufacturing Engineering, RMIT University, Victoria 3083, Australia;

    Australian Nuclear Science and Technology Organisation, Locked Bag 2001, Kirrawee DC, New South Wales 2232, Australia,School of Mechanical and Manufacturing Engineering, University of New South Wales, New South Wales 2052, Australia;

    School of Aerospace, Mechanical and Manufacturing Engineering, RMIT University, Victoria 3083, Australia;

  • 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
  • 中图分类
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