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On the structure and dynamics of sheared and rotating turbulence: Direct numerical simulation and wavelet-based coherent vortex extraction

机译:剪切和旋转湍流的结构和动力学:直接数值模拟和基于小波的相干涡提取

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摘要

The influence of rotation on the structure and dynamics of sheared turbulence is investigated using a series of direct numerical simulations. Five cases are considered: turbulent shear flow without rotation, with moderate rotation, and with strong rotation, where the rotation configuration is either parallel or antiparallel. For moderate rotation rates an antiparallel configuration increases the growth of the turbulent kinetic energy, while the parallel case reduces the growth as compared to the nonrotating case. For strong rotation rates decay of the energy is observed, linear effects dominate the flow, and the vorticity probability density functions tend to become Gaussian. Visualizations of vorticity show that the inclination angle of the vortical structures depends on the rotation rate and orientation. Coherent vortex extraction, based on the orthogonal wavelet decomposition of vorticity, is applied to split the flow into coherent and incoherent parts. It was found that the coherent part preserves the vortical structures using only a few percent of the degrees of freedom. The incoherent part was found to be structureless and of mainly dissipative nature. With increasing rotation rates, the number of wavelet modes representing the coherent vortices decreases, indicating an increased coherency of the flow. Restarting the direct numerical simulation with the filtered fields confirms that the coherent component preserves the temporal dynamics of the total flow, while the incoherent component is of dissipative nature. (C) 2008 American Institute of Physics.
机译:使用一系列直接数值模拟研究了旋转对剪切湍流的结构和动力学的影响。考虑了五种情况:不旋转的湍流剪切流,中等旋转度和强旋转度,其中旋转配置为平行或反平行。对于适中的旋转速度,反平行结构增加了湍动能的增长,而平行壳体与非旋转情况相比减小了动能的增长。对于高旋转速率,观察到能量衰减,线性效应主导流动,涡旋概率密度函数趋于变为高斯分布。旋涡的可视化表明旋涡结构的倾斜角度取决于旋转速度和方向。基于涡度的正交小波分解,相干涡提取被用于将流分成相干和不相干部分。发现相干部分仅使用百分之几的自由度来保留涡旋结构。发现不相干的部分是无结构的,并且主要是耗散的。随着旋转速度的增加,代表相干涡的小波模数减少,表明流的相干性增加。用滤波后的字段重新开始直接数值模拟,可以确认相干分量保留了总流量的时间动态,而不相干分量则具有耗散性。 (C)2008美国物理研究所。

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