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首页> 外文期刊>Physical review letters >Energy Transfer from Large to Small Scales in Turbulence by Multiscale Nonlinear Strain and Vorticity Interactions
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Energy Transfer from Large to Small Scales in Turbulence by Multiscale Nonlinear Strain and Vorticity Interactions

机译:通过多尺度非线性应变和涡度相互作用将能量从大尺度湍流转移到小尺度

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摘要

An intrinsic feature of turbulent flows is an enhanced rate of mixing and kinetic energy dissipation due to the rapid generation of small-scale motions from large-scale excitation. The transfer of kinetic energy from large to small scales is commonly attributed to the stretching of vorticity by the strain rate, but strain self-amplification also plays a role. Previous treatments of this connection are phenomenological or inexact, or cannot distinguish the contribution of vorticity stretching from that of strain self-amplification. In this Letter, an exact relationship is derived which quantitatively establishes how intuitive multiscale mechanisms such as vorticity stretching and strain self-amplification together actuate the interscale transfer of energy in turbulence. Numerical evidence verifies this result and uses it to demonstrate that the contribution of strain self-amplification to energy transfer is higher than that of vorticity stretching, but not overwhelmingly so.
机译:湍流的内在特征是由于大范围激发快速产生小规模运动,从而提高了混合速率和动能耗散。动能从大尺度到小尺度的转移通常归因于应变率对涡度的拉伸,但是应变的自放大作用也起作用。对此的先前处理是现象学的或不精确的,或者不能区分涡度拉伸的贡献与应变自扩增的贡献。在这封信中,得出了一个精确的关系,该关系定量地确定了直观的多尺度机制(例如涡度拉伸和应变自放大)如何共同驱动湍流中能量的尺度间转移。数值证据验证了这一结果,并用其证明应变自放大对能量传递的贡献高于涡旋拉伸,但并非绝对如此。

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  • 来源
    《Physical review letters》 |2020年第10期|104501.1-104501.6|共6页
  • 作者

    Johnson Perry L.;

  • 作者单位

    Stanford Univ Ctr Turbulence Res Stanford CA 94305 USA;

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  • 正文语种 eng
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