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Physics-based turbulence anisotropy closure including nonlocal and nonequilibrium effects in turbulent flows.

机译:基于物理的湍流各向异性封闭,包括湍流中的非局部和非平衡效应。

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摘要

A new physics-based anisotropy closure including nonlocal and nonequilibrium effects in turbulent flows has been obtained. The new closure is motivated by fundamental studies of the vorticity alignment in turbulent flows, where decomposition of the total strain rate Sij into its local and nonlocal constituents, SRij and SBij , respectively, reveals a substantial nonlocal, quasi-linear aspect to the vorticity dynamics. Through direct calculation of SRij and SBij from their exact integral relations, it is shown that the vorticity preferentially aligns with the most extensional eigenvector of SBij . A similar result is obtained using an expansion formulation for SBij , which allows the nonlocal strain to be calculated as a series of Laplacians of Sij.;The fundamental vorticity alignment studies indicate that the anisotropy dynamics may be understood as a quasi-linear system. Nonlocal effects in this system are accounted for through a new nonlocal formulation for the rapid pressure-strain correlation. Using this formulation, a nonlocal transport equation for the anisotropy is obtained, and solution of a quasi-linear version of this equation gives a new closure for the anisotropy that includes nonlocal and nonequilibrium effects in turbulent flows. The new closure is written in an analogous form to the local equilibrium closure originally proposed by Boussinesq, except that the mean strain rate S¯ij is replaced with the nonlocal, nonequilibrium effective strain rate S˜ij. The effective strain is naturally written as a convolution integral over the entire straining history of the flow, although a time-local formulation for S˜ij that can be implemented in computational fluid dynamics codes is also outlined.;Application of the new closure to a range of nonequilibrium and nonlocal tests provides significantly improved predictions of the anisotropy compared to standard approaches based on the local equilibrium closure. With respect to the nonequilibrium tests, particular focus is placed on periodically-sheared turbulence, where the degree of nonequilibrium is determined by the shearing frequency in the flow. The nonlocal tests include fully-developed turbulent channel flow and the zero pressure gradient turbulent boundary layer. Practical implementation of the new closure in existing computational frameworks is outlined, and computational results are presented for the boundary layer case.
机译:一个新的基于物理学的各向异性封闭已经获得,包括湍流中的非局部和非平衡效应。新的闭合是由湍流中涡度对准的基础研究推动的,总应变率Sij分别分解为其局部和非局部成分SRij和SBij,揭示了涡旋动力学的实质性非局部,准线性方面。通过从它们的精确积分关系直接计算SRij和SBij,可以看出,涡度优先与SBij的最大扩展特征向量对齐。使用SBij的扩展公式可获得相似的结果,该公式允许将非局部应变计算为一系列Sij的拉普拉斯算子。基本涡度对准研究表明,各向异性动力学可以理解为准线性系统。通过快速压力-应变相关性的新的非局部公式解决了该系统中的非局部效应。使用该公式,获得了各向异性的非局部输运方程,并且该方程的拟线性版本的解决方案为各向异性提供了新的闭合,其中包括湍流中的非局部和非平衡效应。新的闭合以类似于Boussinesq最初提出的局部平衡闭合的形式编写,不同之处在于平均应变率S'ij被非局部,非平衡有效应变率S〜ij代替。尽管也概述了可以在计算流体力学代码中实现的S〜ij的时域公式,但有效应变自然地写为整个流动过程中的卷积积分。与基于局部平衡封闭的标准方法相比,非平衡和非局部测试的范围提供了对各向异性的显着改进。关于非平衡测试,特别关注的是周期性剪切的湍流,其中非平衡度由流动中的剪切频率决定。非局部测试包括充分发展的湍流通道和零压力梯度湍流边界层。概述了在现有计算框架中新闭包的实际实现,并给出了边界层情况的计算结果。

著录项

  • 作者

    Hamlington, Peter Edward.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Engineering Aerospace.;Physics Fluid and Plasma.;Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 207 p.
  • 总页数 207
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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