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Computational study of radial particle migration and stresslet distributions in particle-laden turbulent pipe flow

机译:径向颗粒迁移和粒子湍流管道流动施加施加的计算研究

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Particle-laden turbulent flows occur in a variety of industrial applications as well as in naturally occurring flows. While the numerical simulation of such flows has seen significant advances in recent years, it still remains a challenging problem. Many studies investigated the rheology of dense suspensions in laminar flows as well as the dynamics of point-particles in turbulence. Here we employ a fully-resolved numerical simulation based on a lattice Boltzmann scheme, to investigate turbulent flow with large neutrally buoyant particles in a pipe flow at low Reynolds number and in dilute regimes. The energy input is kept fixed resulting in a Reynolds number based on the friction velocity around 250. Two different particle radii were used giving a particle-pipe diameter ratio of 0.05 and 0.075. The number of particles is kept constant resulting in a volume fraction of 0.54% and 1.83%, respectively. We investigated Eulerian and Lagrangian statistics along with the stresslet exerted by the fluid on the spherical particles. It was observed that the high particle-to-fluid slip velocity close to the wall corresponds locally to events of high energy dissipation, which are not present in the single-phase flow. The migration of particles from the inner to the outer region of the pipe, the dependence of the stresslet on the particle radial positions and a proxy for the fragmentation rate of the particles computed using the stresslet have been investigated.
机译:粒子升起的湍流流量发生在各种工业应用中以及天然存在的流动中。虽然这种流动的数值模拟近年来已经看出了重大进展,但它仍然是一个具有挑战性的问题。许多研究调查了层流波浪中的致密悬浮液的流变学以及湍流中点粒子的动态。在这里,我们采用基于格子Boltzmann计划的完全解决的数值模拟,以在低雷诺数和稀释方案中调查在管道流动中的大中性浮力颗粒的湍流。能量输入保持固定导致雷诺数基于250左右的摩擦速度。使用两种不同的颗粒半径,其颗粒管直径比为0.05和0.075。颗粒的数量保持恒定,导致体积分别为0.54%和1.83%。我们调查了欧拉和拉格朗日统计,以及球形颗粒上的液体施加的压力。观察到靠近壁的高颗粒流体滑移速度对应于高能量耗散的事件,其不存在于单相流中。研究了颗粒从管的内部到外部区域的迁移,已经研究了应力对颗粒径向位置对颗粒径向位置的依赖性以及使用应力素计算的颗粒的碎片速率的代理。

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    Eindhoven Univ Technol Dept Appl Phys Dolech 2 NL-5600 MB Eindhoven Netherlands;

    Eindhoven Univ Technol Dept Appl Phys Dolech 2 NL-5600 MB Eindhoven Netherlands;

    Eindhoven Univ Technol Dept Appl Phys Dolech 2 NL-5600 MB Eindhoven Netherlands;

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  • 正文语种 eng
  • 中图分类 物理学;
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