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Particle-resolved numerical simulations of the gas-solid heat transfer in arrays of random motionless particles

机译:随机动态颗粒阵列中的气固传热的粒子分辨数值模拟

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摘要

Particle-resolved direct numerical simulations of non-isothermal gas-solid flows have been performed and analyzed from microscopic to macroscopic scales. The numerical configuration consists in an assembly of random motionless spherical particles exchanging heat with the surrounding moving fluid throughout the solid surface. Numerical simulations have been carried out using a Lagrangian VOF approach based on fictitious domain framework and penalty methods. The entire numerical approach (numerical solution and post-processing) has first been validated on a single particle through academic test cases of heat transfer by pure diffusion and by forced convection for which analytical solution or empirical correlations are available from the literature. Then, it has been used for simulating gas-solid heat exchanges in dense regimes, fully resolving fluid velocity and temperature evolving within random arrays of fixed particles. Three Reynolds numbers and four solid volume fractions, for unity Prandtl number, have been investigated. Two Nusselt numbers based, respectively, on the fluid temperature and on the bulk (cup-mixing) temperature have been computed and analyzed. Numerical results revealed differences between the two Nusselt numbers for a selected operating point. This outcome shows the inadequacy of the Nusselt number based on the bulk temperature to accurately reproduce the heat transfer rate when an Eulerian-Eulerian approach is used. Finally, a connection between the ratio of the two Nusselt numbers and the fluctuating fluid velocity-temperature correlation in the mean flow direction is pointed out. Based on such a Nusselt number ratio, a model is proposed for it.
机译:已经进行了粒子分辨的非等温气体固体流动的直接数值模拟,并从显微镜分析到宏观尺度。数值构造包括随机动态球形颗粒的组装,随着整个固体表面与周围的移动流体交换热量。使用基于虚构领域框架和罚款方法的拉格朗日VOF方法进行了数值模拟。通过纯扩散的纯化传播和强制对流,首先通过纯化传播的学术检测案例验证整个数值方法(数值解决方案和后处理),并通过强制对流进行分析解决方案或经验相关性。然后,已经用于模拟致密状态下的气体固体热交换器,完全解析在固定颗粒的随机阵列内的流体速度和温度。研究了三个雷诺数和四个固体体积分数,用于Unity Prandtl号。已经计算并分析了两个基于流体温度和体积(杯混合)温度的纽带数量。数值结果显示了所选操作点的两个营销号码之间的差异。该结果表明,当使用欧拉欧拉的方法时,基于批量温度的批量温度的营养数量不足以准确地再现传热速率。最后,指出了两个营地数的比率与平均流动方向上的波动流体速度 - 温度相关之间的连接。基于这种营养数比,提出了一种模型。

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  • 来源
    《Acta Mechanica》 |2019年第2期|共27页
  • 作者单位

    Univ Toulouse CNRS IMFT Toulouse France;

    Univ Toulouse CNRS IMFT Toulouse France;

    Univ Toulouse CNRS IMFT Toulouse France;

    Univ Toulouse CNRS IMFT Toulouse France;

    Univ Paris Est Marne Vallee Lab Modelisat &

    Simulat Multi Echelle MSME UMR 8208 Champs Sur Marne France;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 力学;
  • 关键词

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