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Vortical patterns in turbulent flow downstream a 90° curved pipe at high Womersley numbers

机译:高沃默斯利数下90°弯管下游湍流的涡流模式

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The present experimental work focuses on highly pulsatile, i.e. inertia dominated, turbulent flow downstream a curved pipe and aims at investigating the vortical characteristics of such a flow. The flow parameters (Dean and Womersley number) investigated are of the same order as those met in the internal combustion engine environment. The technique employed is time-resolved stereoscopic particle image velocimetry at different cross-sections downstream the pipe bend. These measurements allow the large-scale structures that are formed to be analyzed by means of proper orthogonal decomposition. The flow field changes drastically during a pulsatile cycle, varying from a uniform flow direction across the pipe section from the inside to the outside of the bend to vortical patterns consisting of two counter-rotating cells. This study characterizes and describes pulsatile curved pipe flow at Womersley numbers much higher than previously reported in the literature. Furthermore, the oscillatory behaviour of the Dean cells for the steady flow - the so-called 'swirl switching' - is investigated for different downstream stations from the bend exit and it is shown that this motion does not appear in the immediate vicinity of the bend, but only further downstream.
机译:当前的实验工作集中在弯曲管道下游的高度脉动的,即惯性为主的湍流,并且旨在研究这种流动的旋涡特性。研究的流量参数(Dean和Womersley数)与内燃机环境中满足的流量参数相同。所采用的技术是在弯管下游不同截面处的时间分辨立体粒子图像测速仪。这些测量允许通过适当的正交分解来分析形成的大型结构。在脉动周期中,流场发生剧烈变化,从整个管道段的均匀流向(从弯头的内部到外部)变化为由两个反向旋转的单元组成的涡旋型。这项研究表征和描述了脉动弯管流量,其沃默斯利数远高于以前的文献报道。此外,研究了Dean单元对于稳定流动的振荡行为-所谓的“旋流切换”-从弯头出口到不同下游站的研究,结果表明,该运动不会出现在弯头附近,但仅在更下游。

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