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Statistical simulation of molecular diffusion effect on turbulent tetrad dispersion

机译:分子扩散对湍流四分体扩散作用的统计模拟

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摘要

Molecular diffusion can significantly affect the dispersion and mixing processes at small temporal and spatial scales in turbulent flows, especially when differential diffusion among species is considered. Since species mixing takes place at the molecular level, it is very beneficial to study and model this phenomenon from a kinetic viewpoint. However, most molecular simulation methods, such as the direct simulation Monte Carlo (DSMC) method, are inefficient for high Reynolds or low Knudsen number flows. The diffusive information preservation (D-IP) method, which based on the Fokker-Plank model, can overcome this difficulty. In the current paper, we firstly validate the D-IP method by simulating the decaying homogeneous isotropic turbulence, and then apply it to investigate the effects of molecular diffusion in the turbulent tetrad dispersion. Two typical kinds of particles, i.e., the gas-phase molecules (Schmidt number, Sc = 1) and marked fluid particles (approximately to the soot particle, Sc = ∞), have been considered. The effects of differential diffusion are found to be closely related to the tetrad initial size and weakly dependent on the Taylor-scale Reynolds number. Although the discrepancy of the tetrad size and shape between the gas-phase molecules and marked fluid particles is more significant in the turbulent dissipation scale, this influence can extend to larger scales, i.e., the inertial range, due to the correlated fluctuations and intermittency of the turbulent flows. It indicates that the molecular diffusion as well as the differential diffusion cannot be neglected if interested processes belong to small scales, such as in the combustion.
机译:分子扩散会在湍流中较小的时间和空间尺度上显着影响分散和混合过程,尤其是考虑到物种间的差异扩散时。由于物质的混合发生在分子水平,因此从动力学的角度研究和模拟这种现象非常有益。但是,大多数分子模拟方法,例如直接模拟蒙特卡洛(DSMC)方法,对于高雷诺数或低克努森数流效率低下。基于Fokker-Plank模型的扩散信息保存(D-IP)方法可以克服此难题。在本文中,我们首先通过模拟衰减的均质各向同性湍流来验证D-IP方法,然后将其应用于研究分子扩散在湍流四分体弥散中的影响。已经考虑了两种典型的颗粒,即气相分子(Schmidt数,Sc = 1)和标记的流体颗粒(近似于烟灰颗粒,Sc =∞)。发现微分扩散的影响与四分位数的初始大小密切相关,而与泰勒尺度的雷诺数几乎无关。尽管在湍流耗散尺度上气相分子和标记的流体颗粒之间的四倍体尺寸和形状的差异更为显着,但是由于相关的波动和间歇性,这种影响可以扩展到更大的尺度,即惯性范围。湍流。这表明,如果感兴趣的过程属于小规模的过程(例如在燃烧中),则不能忽略分子扩散以及微分扩散。

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  • 作者单位

    State Key Laboratory of Coal Combustion, School of Energy and Power Engineering, Huazhong University of Science and Technology, 430074 Wuhan, China;

    State Key Laboratory of Coal Combustion, School of Energy and Power Engineering, Huazhong University of Science and Technology, 430074 Wuhan, China;

    State Key Laboratory of Coal Combustion, School of Energy and Power Engineering, Huazhong University of Science and Technology, 430074 Wuhan, China;

  • 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

    Fokker-Planck model; Multi-scale numerical scheme; Turbulent dispersion; Differential diffusion;

    机译:福克-普朗克模型;多尺度数值方案;湍流扩散差异扩散;

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