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Time resolved flow-field measurements of a turbulent mixing layer over a rectangular cavity

机译:矩形腔上方湍流混合层的时间分辨流场测量

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High Reynolds number, low Mach number, turbulent shear flow past a rectangular, shallow cavity has been experimentally investigated with the use of dual-camera cinematographic particle image velocimetry (CPIV). The CPIV had a 3 kHz sampling rate, which was sufficient to monitor the time evolution of large-scale vortices as they formed, evolved downstream and impinged on the downstream cavity wall. The time-averaged flow properties (velocity and vorticity fields, streamwise velocity profiles and momentum and vorticity thickness) were in agreement with previous cavity flow studies under similar operating conditions. The time-resolved results show that the separated shear layer quickly rolled-up and formed eddies immediately downstream of the separation point. The vortices convect downstream at approximately half the free-stream speed. Vorticity strength intermittency as the structures approach the downstream edge suggests an increase in the three-dimensionality of the flow. Time-resolved correlations reveal that the in-plane coherence of the vortices decays within 2–3 structure diameters, and quasi-periodic flow features are present with a vortex passage frequency of ~1 kHz. The power spectra of the vertical velocity fluctuations within the shear layer revealed a peak at a non-dimensional frequency corresponding to that predicted using linear, inviscid instability theory.
机译:高雷诺数,低马赫数,经过矩形浅腔的湍流剪切流已通过使用双摄像机摄影颗粒图像测速仪(CPIV)进行了实验研究。 CPIV的采样率为3 kHz,足以监视大型涡旋形成,向下游扩散并撞击到下游腔壁时的时间演化。时间平均流动特性(速度和涡度场,水流速度分布以及动量和涡度厚度)与以前在类似工作条件下进行的腔流研究一致。时间分辨的结果表明,分离的剪切层迅速卷起并在分离点的下游立即形成涡流。涡流以自由流速度的大约一半向下游对流。当结构接近下游边缘时,涡流强度的间歇性表明流动的三维性增加。时间分辨的相关性表明,涡旋的面内相干在2-3结构直径内衰减,并且存在准周期性流动特征,涡旋通过频率约为1 kHz。剪切层内垂直速度波动的功率谱揭示了一个在无量纲频率处的峰,该峰对应于使用线性无形不稳定性理论预测的峰。

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