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Fluid-particle correlated motion and turbulent energy transfer in a two-dimensional particle-laden shear flow

机译:二维含颗粒剪切流中的流体-颗粒相关运动和湍流能量传递

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摘要

Discrete vortex simulations of a dilute two-dimensional particle-laden shear layer with one-way coupling were performed to study fluid-particle correlated motion and the transfer of turbulent kinetic energy between the phases. The resulting modification of carrier phase turbulence, estimated according to current computational models, was evaluated. Particle Stokes numbers were between 1.0 and 4.5, so that the particles showed considerable temporal concentration fluctuations due to centrifuging by the fluid flow structures, and the mass loading was 12% corresponding to a volume fraction of 6.0×10~(-5).Fluid velocities and particle concentration and velocities and their covariances, which appear in a commonly used model equation for carrier phase turbulence modification, were evaluated. Additionally, the probability density functions of fluid velocity fluctuations viewed by the particles are presented and compared with their Eulerian counterparts. It was found that particles view reduced velocity fluctuations due to preferential clustering. The model for carrier-phase turbulence modification predicted turbulence reduction, depending on the particle Stokes number. The mechanism responsible for turbulence reduction was the correlated velocity fluctuations of fluid and particles and this reduction could reach values up to one third of the fluid flow dissipation. Preferential particle concentration together with a relative velocity between the phases could generate turbulent kinetic energy of the gas phase, however this production was nearly an order of magnitude smaller compared to reduction of turbulence due to the correlated motion. The findings were compared with experiments available in the literature and help to clarify the view when turbulence reduction or augmentation occurs.
机译:进行了带有单向耦合的稀薄二维含颗粒剪切层的离散涡旋模拟,以研究流体-颗粒相关运动以及两相之间湍动能的传递。评估了根据当前计算模型估算出的载波相位湍流变化。颗粒斯托克斯数在1.0到4.5之间,因此由于流体流动结构的离心作用,颗粒表现出相当大的时间浓度波动,质量载荷为12%,相当于6.0×10〜(-5)的体积分数。评估了出现在用于载流子湍流修正的常用模型方程式中的速度和粒子浓度以及速度及其协方差。另外,提出了由颗粒观察到的流体速度波动的概率密度函数,并将其与欧拉对应物进行了比较。已经发现,由于优先聚集,粒子观察到减小的速度波动。载流子湍流修正模型根据颗粒斯托克斯数预测了湍流减少。引起湍流减少的机制是流体和颗粒的相关速度波动,这种减少可能达到流体耗散量的三分之一。优先的颗粒浓度以及各相之间的相对速度可能会产生气相的湍动能,但是与相关运动引起的湍流降低相比,这种产生的能量要小近一个数量级。将这些发现与文献中的实验进行了比较,有助于弄清湍流减少或增大时的观点。

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