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Direct numerical simulation of turbulent pipe flow at moderately high reynolds numbers (Conference Paper)

机译:雷诺数适中时湍流管道流动的直接数值模拟(会议论文)

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Fully resolved direct numerical simulations (DNSs) have been performed with a high-order spectral element method to study the flow of an incompressible viscous fluid in a smooth circular pipe of radius R and axial length 25R in the turbulent flow regime at four different friction Reynolds numbers Re _τ = 180, 360, 550 and 1,000. The new set of data is put into perspective with other simulation data sets, obtained in pipe, channel and boundary layer geometry. In particular, differences between different pipe DNS are highlighted. It turns out that the pressure is the variable which differs the most between pipes, channels and boundary layers, leading to significantly different mean and pressure fluctuations, potentially linked to a stronger wake region. In the buffer layer, the variation with Reynolds number of the inner peak of axial velocity fluctuation intensity is similar between channel and boundary layer flows, but lower for the pipe, while the inner peak of the pressure fluctuations show negligible differences between pipe and channel flows but is clearly lower than that for the boundary layer, which is the same behaviour as for the fluctuating wall shear stress. Finally, turbulent kinetic energy budgets are almost indistinguishable between the canonical flows close to the wall (up to y ~+ ≈ 100), while substantial differences are observed in production and dissipation in the outer layer. A clear Reynolds number dependency is documented for the three flow configurations.
机译:已经用高阶谱元素方法进行了完全解析的直接数值模拟(DNS),以研究在四个不同的摩擦雷诺条件下,在湍流状态下,半径为R和轴向长度为25R的光滑圆形管道中不可压缩粘性流体的流动Re_τ= 180、360、550和1,000。新的数据集与在管道,通道和边界层几何图形中获得的其他模拟数据集相互关联。特别是,突出显示了不同管道DNS之间的差异。事实证明,压力是变量,在管道,通道和边界层之间差异最大,从而导致均值和压力波动明显不同,可能与更强的尾流区域有关。在缓冲层中,通道和边界层流之间的轴向速度波动强度内峰随雷诺数的变化相似,但对于管道则较低,而压力波动的内峰表明管与通道间流的差异可忽略不计但明显低于边界层的边界,这与壁面剪应力的波动相同。最后,湍流的动能收支在靠近壁的规范流之间(高达y〜+≈100)几乎是无法区分的,而在外层的生产和消散中却观察到了很大的差异。记录了三种流量配置的明确雷诺数依赖性。

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