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Near-wall streak modification by spanwise oscillatory wall motion and drag-reduction mechanisms

机译:通过展向振动壁运动和减阻机制来修改近壁条纹

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Direct numerical simulations for fully developed channel flow, subjected to oscillatory spanwise wall motion, have been performed and analysed in an effort to illuminate the fundamental mechanisms responsible for the reduction in turbulent friction drag, observed to result from the spanwise wall motion. A range of statistical data are discussed, including second-moment budgets, joint-probability-density functions, enstrophy and energy-spectra maps. Structural features are also investigated by reference to the response of streak properties to the oscillatory forcing. The unsteady cross-flow straining is shown to cause major spanwise distortions in the streak nearwall structures, leading to a pronounced reduction in the wall-normal momentum exchange in the viscous sublayer, hence disrupting the turbulence contribution to the wall shear stress. The response of the streaks, in terms of their periodic reorientation in wall-parallel planes, the decline and recovery of their intensity during the cyclic actuation, and their wall-normal coherence, is shown to be closely correlated with the temporal variation of the shear-strain vector. Furthermore, a modulating 'top-to-bottom' effect, associated with large-scale outer-layer structures, is highlighted and deemed responsible for the observed reduction in the actuation efficiency as the Reynolds number is increased.
机译:已经进行了完整的通道流动的直接数值模拟,并进行了振荡的展向壁运动,以阐明引起展流壁运动的湍流摩擦阻力减小的基本机理。讨论了一系列统计数据,包括第二时刻的预算,联合概率密度函数,引诱和能量谱图。还参考条纹特性对振动力的响应来研究结构特征。不稳定的横流应变显示出会在条纹近壁结构中引起较大的翼展方向变形,从而导致粘性子层中壁法向动量交换的明显减少,从而扰乱了湍流对壁切应力的贡献。条纹在壁平行平面中的周期性重新定向,周期性驱动过程中强度的下降和恢复以及壁法向连贯性方面的响应与剪切的时间变化密切相关。应变向量。此外,与大规模外层结构相关的调节“自上而下”效应被突出显示,并被认为是随雷诺数增加而引起的致动效率下降的原因。

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