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首页> 外文期刊>Journal of Fluid Mechanics >Effect of compressibility on the small-scale structures in isotropic turbulence
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Effect of compressibility on the small-scale structures in isotropic turbulence

机译:可压缩性对各向同性湍流中小尺度结构的影响

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Using a simulated highly compressible isotropic turbulence field with turbulent Mach number around 1.0, we studied the effects of local compressibility on the statistical properties and structures of velocity gradients in order to assess salient small-scale features pertaining to highly compressible turbulence against existing theories for incompressible turbulence. A variety of statistics and local flow structures conditioned on the local dilatation-a measure of local flow compressibility-are studied. The overall enstrophy production is found to be enhanced by compression motions and suppressed by expansion motions. It is further revealed that most of the enstrophy production is generated along the directions tangential to the local density isosurface in both compression and expansion regions. The dilatational contribution to enstrophy production is isotropic and dominant in highly compressible regions. The emphasis is then directed to the complicated properties of the enstrophy production by the deviatoric strain rate at various dilatation levels. In the overall flow field, the most probable eigenvalue ratio for the strain rate tensor is found to be 3:1:2.5, quantitatively different from the preferred eigenvalue ratio of 4:1:3 reported in incompressible turbulence. Furthermore, the strain rate eigenvalue ratio tends to be 1:0:0 in high compression regions, implying the dominance of sheet-like structures. The joint probability distribution function of the invariants for the deviatoric velocity gradient tensor is used to characterize local flow structures conditioned on the local dilatation as well as the distribution of enstrophy production within these flow structures. We demonstrate that strong local compression motions enhance the enstrophy production by vortex stretching, while strong local expansion motions suppress enstrophy production by vortex stretching. Despite these complications, most statistical properties associated with the solenoidal component of the velocity field are found to be very similar to those in incompressible turbulence, and are insensitive to the change of local dilatation. Therefore, a good understanding of dynamics of the compressive component of the velocity field is key to an overall accurate description of highly compressible turbulence.
机译:使用湍流马赫数约为1.0的模拟高度可压缩各向同性湍流场,我们研究了局部可压缩性对速度梯度统计特性和结构的影响,以便针对不可压缩的现有理论评估与高度可压缩湍流有关的显着小尺度特征湍流。研究了以局部膨胀为条件的各种统计数据和局部流动结构(一种测量局部流动可压缩性的方法)。发现总的内旋体产生通过压缩运动而被增强,而通过膨胀运动而被抑制。进一步揭示,在压缩和膨胀区域中,大部分的涡旋产生都是沿着与局部密度等值面相切的方向产生的。在高度可压缩的区域中,对熵产生的膨胀贡献是各向同性的,并且占主导。然后,重点是通过在各种膨胀水平下的偏应变率,来着眼于产生涡旋的复杂特性。在整个流场中,发现应变率张量的最可能特征值比为3:1:2.5,在数量上不同于在不可压缩湍流中报告的优选特征值比4:1:3。此外,应变率特征值比在高压缩区域趋于1:0:0,这意味着片状结构占主导地位。偏速度梯度张量的不变量的联合概率分布函数用于表征以局部膨胀为条件的局部流动结构以及这些流动结构内的涡旋产生分布。我们证明了强大的局部压缩运动通过涡旋拉伸增强了涡旋的产生,而强大的局部膨胀运动通过涡旋拉伸抑制了涡旋的产生。尽管存在这些复杂性,但发现与速度场的螺线管分量相关的大多数统计特性与不可压缩湍流中的统计特性非常相似,并且对局部膨胀的变化不敏感。因此,对速度场的压缩分量的动力学的良好理解是高度准确描述高度可压缩湍流的关键。

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