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首页> 外文期刊>International Journal of Heat and Fluid Flow >Turbulent Couette-Poiseuille flow with zero wall shear
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Turbulent Couette-Poiseuille flow with zero wall shear

机译:零壁面剪切的湍流Couette-Poiseuille流

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A particular pressure-driven flow in a plane channel is considered, in which one of the walls moves with a constant speed that makes the mean shear rate and the friction at the moving wall vanish. The Reynolds number considered based on the friction velocity at the stationary wall (U-tau,U-S) and half the channel height (h) is Re-tau,Re-S, = 180. The resulting mean velocity increases monotonically from the stationary to the moving wall and exhibits a substantial logarithmic region. Conventional near-wall streaks are observed only near the stationary wall, whereas the turbulence in the vicinity of the shear-free moving wall is qualitatively different from typical near-wall turbulence. Large-scale-structures (LSS) dominate in the center region and their spanwise spacing increases almost linearly from about 2.3 to 4.2 channel half-heights at this Re,,s. The presence of LSS adds to the transport of turbulent kinetic energy from the core region towards the moving wall where the energy production is negligible. Energy is supplied to this particular flow only by the driving pressure gradient and the wall motion enhances this energy input from the mean flow. About half of the supplied mechanical energy is directly lost by viscous dissipation whereas the other half is first converted from mean-flow energy to turbulent kinetic energy and thereafter dissipated. (C) 2016 Elsevier Inc. All rights reserved.
机译:考虑在平面通道中的特定压力驱动的流动,其中壁中的一个以恒定速度运动,这使得平均剪切速率和运动壁上的摩擦消失。基于固定壁处的摩擦速度(U-tau,US)和通道高度(h)的一半而考虑的雷诺数为Re-tau,Re-S,=180。所得平均速度从固定点单向增加。在移动的墙壁上,并显示出大量的对数区域。仅在固定壁附近观察到常规的近壁湍流,而无剪切运动壁附近的湍流在质量上与典型的近壁湍流不同。大型结构(LSS)在中心区域占主导地位,在此Re,s处,其跨度间距几乎从2.3到4.2通道半高线性增加。 LSS的存在增加了湍流动能从核心区域向运动壁的传输,在运动壁上产生的能量可以忽略不计。仅通过驱动压力梯度将能量提供给该特定流,并且壁运动增强了从平均流输入的能量。大约一半的机械能通过粘性耗散直接损失,而另一半首先从平均流能转换为湍动能,然后耗散。 (C)2016 Elsevier Inc.保留所有权利。

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