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Phase-space dynamics of near-wall streaks in wall-bounded turbulence with spanwise oscillation

机译:用翼展振荡壁有限湍流近壁条纹的相位空间动态

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This work presents systematical investigations on the skin-friction drag reduction (DR) of turbulent channel flow subjected to spanwise wall oscillation using direct numerical simulation. Altogether 12 different oscillatory cases have been studied with a reference at Re-tau = 200, varying the controlling parameters characterized by maximum wall velocity W-m(+) and oscillation period T+. Some of the previously established facts have been reproduced by our analysis with a new focus on the phase-space dynamics of the near-wall streaks, on the basis of statistical data over entire oscillation periods and over phasewise variations. It is revealed that streamwise vortices are generated in the vicinity of oscillation walls, disrupting the formation of near-wall low-speed streaks. Although the overall turbulence is weakened, the Stokes layer is thicker within wall acceleration phases for larger W-m(+), which causes the turbulence intensity to increase in the upper viscous sublayer. In addition, regarding the effect of T+, a long oscillation period promotes the formation of energetic near-wall structures, while for short T+, the streak-generation time scale preferentially restricts the growth of spanwise streaks. From a new vorticity-transport perspective of the Reynolds shear stress, our results further indicate that high drag-reducing phenomena are connected to the near-wall sweep events, and the shear stress variation is principally driven by the distortion of the spanwise transport of wall-normal vorticity, i.e., vortex tilting/stretching. The DR process is seen to be linked to the increase in enstrophy and turbulence-energy dissipation in the near-wall region.
机译:该工作介绍了使用直接数值模拟对经过翼展壁振荡的湍流通道流量的皮肤摩擦阻力(DR)的系统研究。在Re-Tau = 200的参考中,已经研究了12种不同的振荡案例,改变了通过最大壁速W-M(+)和振荡周期T +的控制参数。我们的分析已经通过在整个振荡周期和相相变化上的统计数据的基础上进行了一些先前成立的事实,以通过新的焦点对近壁条纹的相位空间动态进行了分析。据透露,在振荡壁附近产生流动涡旋,扰乱近壁低速条纹的形成。虽然整体湍流削弱,但斯托克斯层在壁加速相中较厚,用于较大的W-M(+),这导致湍流强度增加上粘性子层的增加。另外,关于T +的影响,长振荡周期促进了能量近壁结构的形成,而对于短的T +,条纹产生的时间尺度优先限制枝条条纹的生长。从雷诺剪切应力的新涡流传输透视中,我们的结果进一步表明,高阻力减少现象连接到近壁扫描事件,并且剪切应力变化主要由墙壁的枝条运输的变形驱动 - 正常涡旋,即涡旋倾斜/拉伸。认为DR过程与近壁区域中的敌意和湍流 - 能量耗散的增加有关。

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    《Physics of fluids》 |2019年第12期|共16页
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  • 正文语种 eng
  • 中图分类 流体力学;
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