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非整数维中的分形傅里叶抽取均匀湍流剪切流

Fractally Fourier decimated homogeneous turbulent shear flow in noninteger dimensions.

作者信息

Fathali Mani, Khoei Saber

机构信息

Department of Aerospace Engineering, K.N. Toosi University of Technology, Tehran, Iran.

出版信息

Phys Rev E. 2017 Feb;95(2-1):023115. doi: 10.1103/PhysRevE.95.023115. Epub 2017 Feb 24.

DOI:10.1103/PhysRevE.95.023115
PMID:28297948
Abstract

Time evolution of the fully resolved incompressible homogeneous turbulent shear flow in noninteger Fourier dimensions is numerically investigated. The Fourier dimension of the flow field is extended from the integer value 3 to the noninteger values by projecting the Navier-Stokes equation on the fractal set of the active Fourier modes with dimensions 2.7≤d≤3.0. The results of this study revealed that the dynamics of both large and small scale structures are nontrivially influenced by changing the Fourier dimension d. While both turbulent production and dissipation are significantly hampered as d decreases, the evolution of their ratio is almost independent of the Fourier dimension. The mechanism of the energy distribution among different spatial directions is also impeded by decreasing d. Due to this deficient energy distribution, turbulent field shows a higher level of the large-scale anisotropy in lower Fourier dimensions. In addition, the persistence of the vortex stretching mechanism and the forward spectral energy transfer, which are three-dimensional turbulence characteristics, are examined at changing d, from the standard case d=3.0 to the strongly decimated flow field for d=2.7. As the Fourier dimension decreases, these forward energy transfer mechanisms are strongly suppressed, which in turn reduces both the small-scale intermittency and the deviation from Gaussianity. Besides the energy exchange intensity, the variations of d considerably modify the relative weights of local to nonlocal triadic interactions. It is found that the contribution of the nonlocal triads to the total turbulent kinetic energy exchange increases as the Fourier dimension increases.

摘要

对非整数傅里叶维数下完全解析的不可压缩均匀湍流剪切流的时间演化进行了数值研究。通过将纳维 - 斯托克斯方程投影到维度为2.7≤d≤3.0的活跃傅里叶模式的分形集上,将流场的傅里叶维数从整数值3扩展到非整数值。该研究结果表明,改变傅里叶维数d会对大尺度和小尺度结构的动力学产生非平凡的影响。随着d减小,湍流的生成和耗散都受到显著阻碍,但其比值的演化几乎与傅里叶维数无关。d减小也会阻碍能量在不同空间方向上的分布机制。由于这种能量分布不足,在较低傅里叶维数下,湍流场表现出更高水平的大尺度各向异性。此外,在d从标准情况d = 3.0变化到d = 2.7的强抽取流场时,研究了涡旋拉伸机制和正向谱能量传递(这是三维湍流特征)的持续性。随着傅里叶维数减小,这些正向能量传递机制受到强烈抑制,这反过来又降低了小尺度间歇性和与高斯性的偏差。除了能量交换强度外,d的变化还会显著改变局部与非局部三元相互作用的相对权重。研究发现,随着傅里叶维数增加,非局部三元组对总湍流动能交换的贡献增加。

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