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Effects of LES sub-grid flow structure on particle deposition in a plane channel with a ribbed wall

机译:LES亚网格流动结构对带肋壁平面通道内颗粒沉积的影响

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摘要

Transport and deposition of aerosol particles in a plane channel with a ribbed wall are studied in order to investigate the effects of the turbulent flow structure on particle deposition. In this paper, kinematic simulation (KS) has been adapted to be a sub-grid model for particles, in conjunction with large eddy simulation (LES) in real space with boundaries. KS is a Lagrangian model of turbulent dispersion that takes into account the effects of spatio-temporal flow structure on particle dispersion. It is a unified Lagrangian model of one-, two- and indeed multi-particle turbulent dispersion and can easily be used as a Lagrangian sub-grid model for LES codes, thus enabling complex geometry to be taken into account. To study the effect of small-scale flow structures on particle deposition in the ribbed channel flow, we use a validated LES code to simulate the flow field, and KS to model the sub-grid flow structures. Thus, the large scales are resolved by the simulation and the small scales are modelled using various sub-grid models. As none of the existing sub-grid models is known to have taken into account the effects of small-scale turbulent flow structures on particle deposition, it is important to use KS's ability to remodel the sub-grid velocity field and thereby incorporate its effect on particle deposition. The parameters of our simulations for LES are the Reynolds number, width of the channel, height of the rib and sub-gridmodel parameters. For KS, the parameters are the energy dissipation rate obtained from LES, the energy spectra, ratio of the largest and smallest sub-grid scales and the total number of modes for the sub-grid velocity field. The turbulent flow features thus obtained are compared with published experimental data in a ribbed channel. Our results suggest that while the small-scale (sub-grid) turbulent flow structures have negligible effects on particles with large relaxation times (compared with the Kolmogorov dissipation time scale), deposition of the particles with small relaxation times in the ribbed channel can be affected by these sub-grids.
机译:为了研究湍流结构对颗粒沉积的影响,研究了带肋壁平面通道中气溶胶颗粒的运输和沉积。在本文中,运动学仿真(KS)已与具有边界的真实空间中的大涡流仿真(LES)结合,成为粒子的子网格模型。 KS是湍流扩散的拉格朗日模型,考虑了时空流动结构对粒子扩散的影响。它是一,二,甚至多粒子湍流扩散的统一拉格朗日模型,可以轻松用作LES代码的拉格朗日子网格模型,因此可以考虑复杂的几何形状。为了研究小尺度流动结构对带肋通道流动中颗粒沉积的影响,我们使用经过验证的LES代码模拟流场,并使用KS建模子网格流动结构。因此,可以通过仿真解决大规模问题,并使用各种子网格模型对小规模模型进行建模。由于已知的现有子网格模型都没有考虑到小规模湍流结构对颗粒沉积的影响,因此利用KS的能力来重塑子网格速度场,从而将其影响并入颗粒沉积。我们对LES进行仿真的参数是雷诺数,通道宽度,肋骨高度和子网格模型参数。对于KS,参数是从LES获得的能量耗散率,能谱,最大和最小子网格比例的比率以及子网格速度场的模式总数。将由此获得的湍流特征与带肋通道的已发布实验数据进行比较。我们的结果表明,虽然小尺度(亚网格)湍流结构对具有较大弛豫时间的颗粒(与Kolmogorov耗散时间尺度相比)的影响可忽略不计,但具有较小弛豫时间的颗粒在肋状通道中的沉积可以受这些子网格的影响。

著录项

  • 来源
    《Communications in numerical methods in engineering》 |2010年第8期|P.999-1015|共17页
  • 作者单位

    Department of Mathematics, University of Glasgow, University Gardens, Glasgow G12 8QW, U.K. Department of Physics & Astronomy, Room 505, Kelvin Building, University of Glasgow, Glasgow G12 8QQ, U.K.;

    rnDepartment of Mathematics, University of Glasgow, University Gardens, Glasgow G12 8QW, U.K.;

    rnDepartment of Mechanical Engineering, University of Sheffield, Mappin Street, Sheffield S1 3JD, U.K.;

    rnCivil and Computational Engineering Centre, University of Wales, Swansea, Singleton Park, Swansea SA2 8PP, U.K.;

    rnCentre for Mathematical and Computational Biology, Rothamsted Research, Harpenden, Hertfordshire AL5 2JQ, U.K.;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    turbulence; particle deposition; ribbed channel flow;

    机译:湍流颗粒沉积罗纹通道流;

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