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Hairpin vortices in the largest scale of turbulent boundary layers

机译:发夹涡流在最大的湍流边界层

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We have conducted direct numerical simulations of a turbulent boundary layer for the momentum-thickness-based Reynolds number Re-theta = 180-4600. To extract the largest-scale vortices, we coarse-grain the fluctuating velocity fields by using a Gaussian filter with the filter width comparable to the boundary layer thickness. Most of the largest-scale vortices identified by isosurfaces of the second invariant of the coarse-grained velocity gradient tensor are similar to coherent vortices observed in low-Reynolds-number regions, that is, hairpin vortices or quasi-streamwise vortices inclined to the wall. We also develop a percolation analysis to investigate the threshold-dependence of the isosurfaces and objectively identify the largest-scale hairpin vortices in terms of the coarse-grained vorticity, which leads to the quantitative evidence that they never disappear even in fully developed turbulent regions. Hence, we conclude that hairpin vortices exist in the largest-scale structures irrespective of the Reynolds number.
机译:我们对动量厚度的雷诺数RE-THETA = 180-4600进行了湍流边界层的直接数值模拟。为了提取最大尺度涡流,我们通过使用具有与边界层厚度相当的滤波器宽度的高斯滤波器粗糙粒度。大多数由粗粒速度梯度张量的第二不变的异形素识别的大多数最大涡流与在低曲回的数字区域中观察到的相干涡流,即发夹涡流或倾向于墙壁的准流动涡流。我们还开发了渗透分析,以研究异形覆盖的阈值依赖性,并客观地确定粗粒血管涡度的最大尺度发夹涡流,这导致它们从未在完全发育的湍流区域中从未消失的定量证据。因此,我们得出结论,无论雷诺数如何,都存在发夹涡流。

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