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Conditionally averaged turbulent structures in 2D channel flow

机译:二维通道流中的条件平均湍流结构

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摘要

This paper investigates conditionally averaged turbulent structures and the underlying mechanism of the wake law in two-dimensional (2D) uniform flow. By dividing the wall-normal velocity fluctuation into upward and downward conditions, conditionally averaged momentum equations are derived. The theoretical results show that the momentum flux caused by the conditionally upward/ downward velocity leads to deviation of the conditional Reynolds shear stress from the expected linear distribution and consequently the conditionally turbulent intensities are affected; however, a self-similarity between the turbulent intensities and the Reynolds shear stress exists. It is found that in 2D flows, the wake function is also caused by the additional momentum flux. As the up/ down movements of fluid particles are caused by intermittent decelerating/accelerating motions in the streamwise direction, the wake function is actually the result of an accelerating/decelerating process that causes fluctuations of pressure or water level. This study reveals that the frequency and conditional features of up/down motions rely on pressure fluctuations in pipe flow and water level variation in open-channel flows.
机译:本文研究二维(2D)均匀流中的条件平均湍流结构和尾流定律的潜在机理。通过将壁面法向速度波动分为向上和向下条件,可以得出条件平均动量方程。理论结果表明,由有条件的上/下速度引起的动量通量导致有条件的雷诺剪切应力偏离预期的线性分布,从而影响了有条件的湍流强度。但是,湍流强度和雷诺剪切应力之间存在自相似性。发现在二维流中,尾流函数也是由额外的动量通量引起的。由于流体粒子的向上/向下运动是由沿水流方向的间歇性减速/加速运动引起的,因此唤醒功能实际上是加速/减速过程的结果,该过程导致压力或水位的波动。这项研究表明,上下运动的频率和条件特征取决于管道中的压力波动和明渠中水位的变化。

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