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On Lagrangian time scales and particle dispersion modeling in equilibrium turbulent shear flows

机译:平衡湍流剪切流中的拉格朗日时间尺度和颗粒弥散模型

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As intermediate quantities available from various existing numerical computations, the fluid Lagrangian time scales are of primary importance in the development of probability density function models for turbulent flows. Similarly, the time scales of the fluid seen by discrete particles in two-phase flows are essential for the development of dispersion models based on stochastic differential equations. Such time scales are obviously depending not only on the particle properties but also on the fluid Lagrangian and Eulerian time scales. A model is proposed here to estimate the directional dependence of the fluid Lagrangian time scales and drift coefficients in one-directional equilibrium turbulent shear flows, based on a local homogeneity assumption in the frame of the generalized Langevin model. Through comparison with available direct and large eddy simulation predictions in channel flows and in a homogeneous shear flow, the model is shown to lead to significant improvements in the streamwise and spanwise directions, where the existing empirical laws for the Lagrangian time scales are far from being satisfactory. We examine the way this model can be used to build a suitable stochastic process for the fluid seen by inertial particles in such basic turbulent shear flows. (C) 2004 American Institute of Physics.
机译:作为可从各种现有数值计算获得的中间量,流体拉格朗日时间标度在湍流概率密度函数模型的开发中至关重要。类似地,两相流中离散颗粒所看到的流体的时间尺度对于基于随机微分方程的色散模型的开发至关重要。这样的时标显然不仅取决于粒子的性质,而且还取决于流体的拉格朗日和欧拉时标。本文提出了一个模型,该模型基于广义Langevin模型框架中的局部均匀性假设,估计了单向平衡湍流剪切流中流体拉格朗日时间尺度的方向依赖性和漂移系数。通过与可用的直接和大涡模拟在通道流和均质切变流中的比较,表明该模型可以显着改善流向和展向方向,而拉格朗日时间尺度的现有经验定律远非如此满意的。我们研究了该模型可用于为这种基本湍流剪切流中的惯性粒子所看到的流体建立合适的随机过程的方式。 (C)2004美国物理研究所。

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