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Relative dispersion of particle pairs in turbulent channel flow

机译:湍流通道中颗粒对的相对分散

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摘要

Lagrangian tracking of particle pairs is of fundamental interest in a large number of environmental applications dealing with contaminant dispersion and passive scalar mixing. The aim of the present study is to extend the observations available in the literature on relative dispersion of fluid particle pairs to wall-bounded turbulent flows, by means of particle pair tracking in direct numerical simulations (DNS) of a turbulent channel flow. The mean-square change of separation between particle pairs follows a clear ballistic regime at short times for all wall distances. The Eulerian structure functions governing this short-time separation are characterised in the channel, and allow to define a characteristic time scale for the ballistic regime, as well as a suitable normalisation of the mean-square separation leading to an overall collapse for different wall distances. Through fluid particle pair tracking backwards and forwards in time, the temporal asymmetry of relative dispersion is illustrated. At short times, this asymmetry is linked to the irreversibility of turbulence, as in previous studies on homogeneous isotropic flows. The influence of the initial separation (distance and orientation) as well as the influence of mean shear are addressed. By decomposing the mean-square separation into the dispersion by the fluctuating velocity field and by the average velocity, it is shown that the influence of mean shear becomes important at early stages of dispersion close to the wall but also near the channel centre. The relative dispersion tensor Delta(ij) is also presented and particularly the sign and time evolution of the cross-term Delta(xy) are discussed. Finally, a ballistic cascade model previously proposed for homogeneous isotropic turbulence is adapted here to turbulent channel flows. Preliminary results are given and compared to the DNS. Future developments and assumptions in two particle stochastic models can be gauged against the issues and results discussed in the present study.
机译:在处理污染物扩散和被动标量混合的大量环境应用中,对粒子对进行拉格朗日跟踪非常重要。本研究的目的是通过湍流通道流的直接数值模拟(DNS)中的颗粒对跟踪,将关于流体颗粒对相对扩散到壁边界湍流的文献中可获得的观察结果扩展。对于所有壁距离,粒子对之间的间距的均方变化在短时间内遵循清晰的弹道状态。通道中表征了控制这种短时分离的欧拉结构函数,并允许定义弹道状态的特征时间尺度,以及对均方间隔的适当归一化,从而导致不同壁距的整体塌陷。通过流体粒子对在时间上的前后跟踪,可以说明相对分散的时间不对称性。在短时间内,这种不对称性与湍流的不可逆性有关,就像先前关于均质各向同性流的研究一样。解决了初始分离的影响(距离和方向)以及平均剪切力的影响。通过利用波动速度场和平均速度将均方差分解为色散,可以看出,在靠近壁但在通道中心附近的色散早期,平均剪切力的影响变得很重要。还介绍了相对色散张量Delta(ij),特别是讨论了交叉项Delta(xy)的符号和时间演化。最后,先前提出的用于均质各向同性湍流的弹道级联模型在这里适用于湍流通道。给出了初步结果并将其与DNS进行比较。可以根据本研究中讨论的问题和结果来评估两个粒子随机模型的未来发展和假设。

著录项

  • 来源
    《International Journal of Heat and Fluid Flow》 |2018年第6期|231-245|共15页
  • 作者单位

    Univ Claude Bernard Lyon 1, INSA Lyon, CNRS, Ecole Cent Lyon,UMR 5509,Lab Mecan Fluides & Acou, 36 Av Guy Collongue, F-69134 Ecully, France;

    Univ Claude Bernard Lyon 1, INSA Lyon, CNRS, Ecole Cent Lyon,UMR 5509,Lab Mecan Fluides & Acou, 36 Av Guy Collongue, F-69134 Ecully, France;

    Univ Grenoble Alpes, Lab Ecoulements Geophys & Ind, Domaine Univ,CS 40700, F-38058 Grenoble, France;

    Univ Grenoble Alpes, Lab Ecoulements Geophys & Ind, Domaine Univ,CS 40700, F-38058 Grenoble, France;

    Univ Lyon, CNRS, Ecole Normale Super Lyon, Lab Phys, 46 Allee Italie, F-69364 Lyon, France;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Pair dispersion; Inhomogeneous turbulence; Channel flow; Lagrangian turbulence; Direct numerical simulation;

    机译:对扩散;不均匀湍流;通道流;拉格朗日湍流;直接数值模拟;
  • 入库时间 2022-08-18 02:59:41

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