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Extensive investigation of the influence of wall permeability on turbulence

机译:广泛研究壁渗透性对湍流的影响

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A series of direct numerical simulations of turbulent porous-walled channel flows is performed to extensively investigate the influence of wall permeability on turbulence modification. The bulk mean Reynolds number is fixed at 3000, and porous media consisting of perforated plates are considered in the lower side of the channel. The mean-permeability Reynolds number is varied from 14 - 118 by varying the hole size of the perforated plates. A spectral analysis reveals the presence of two characteristic perturbation modes, namely, the streamwise perturbation mode originating from the Kelvin-Helmholtz (K-H) type of instability and the spanwise perturbation mode. When the mean permeability Reynolds number is relatively low, the streamwise perturbation model by the K-H instability is dominant, and this increases the coherence of the wall-ward turbulence motion, thus resulting in considerable turbulence enhancement. However, as the mean permeability Reynolds number increases further, the streamwise perturbations tend to decrease in strength, and the streamwise elongated high and low-speed streaky structure, the mean spacing of which is much longer than that over a smooth wall, is developed owing to the spanwise perturbation mode. In this regime, the turbulence enhancement effect is weakened because of an increased slippage velocity at the porous interface.
机译:进行了一系列湍流多孔壁通道流动的直接数值模拟,以广泛研究壁渗透性对湍流改性的影响。总体平均雷诺数固定为3000,在通道的下侧考虑了由多孔板组成的多孔介质。通过改变多孔板的孔尺寸,平均渗透雷诺数在14-118之间变化。频谱分析揭示了两种特征性摄动模式的存在,即源自凯尔文-亥姆霍兹(K-H)型不稳定性的流态摄动模式和翼展方向摄动模式。当平均渗透率雷诺数相对较低时,由K-H不稳定性引起的沿流扰动模型占主导地位,这会增加壁向湍流运动的相干性,从而导致湍流增强。然而,随着平均磁导率雷诺数的进一步增加,沿流的扰动强度趋于降低,并且由于沿流的方向延伸的高,低速条纹结构的平均间距比光滑壁上的平均间隔长得多,因此形成了沿流的细长高,低速条纹结构。到翼展方向摄动模式。在这种情况下,湍流增强作用由于多孔界面处的滑动速度增加而减弱。

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