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Comparisons of flow structure above dimpled surfaces with different dimple depths in a channel

机译:槽中具有不同凹坑深度的凹坑表面的流动结构比较

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Flow structural characteristics over dimple surfaces located on one wall of a rectangular channel with three different dimple depths (delta/D=0.1, 0.2, and 0.3) are studied experimentally. Reynolds number based on channel height Re-H ranges from 2100 to 20 000, and the ratio of channel height to dimple print diameter H/D is 1.0. Presented are instantaneous flow visualization images, spectra of longitudinal velocity fluctuations, vortex pair frequency information, and time-averaged surveys and profiles of different quantities. Regardless of dimple depth, primary vortex pairs are periodically ejected from the central parts of each dimple and exist in conjunction with edge vortex pairs present near the spanwise edges of staggered dimples. As dimple depth increases, larger deficits of total pressure and streamwise velocity are present, along with higher magnitudes of time-averaged streamwise vorticity, vortex circulation, and longitudinal Reynolds normal stress. Bigger and stronger vortices with increased turbulence transport capabilities are thus produced by deeper dimples. Ensemble-averaged power spectral density profiles show that primary vortex pair ejection frequencies range from 7 to 9 Hz, and edge vortex pair oscillation frequencies range from 5 to 7 Hz, with similar distributions as the Reynolds number varies, regardless of dimple depth. (C) 2005 American Institute of Physics.
机译:实验研究了位于具有三个不同凹坑深度(δ/ D = 0.1、0.2和0.3)的矩形通道壁上的凹坑表面上的流动结构特性。基于通道高度Re-H的雷诺数为2100至20000,通道高度与凹痕印刷直径H / D之比为1.0。呈现的是瞬时流量可视化图像,纵向速度波动的频谱,涡对频率信息以及不同数量的时间平均调查和概况。无论酒窝深度如何,初级涡流对都会定期从每个酒窝的中央部分弹出,并与存在于交错酒窝的展向边缘附近的边缘涡流对共同存在。随着凹坑深度的增加,总压力和水流速度的赤字会更大,时间平均水流的涡度,涡旋环流和纵向雷诺法向应力的幅度也会更大。因此,更深的酒窝会产生更大,更强的涡流,并增加了湍流传输能力。集合平均功率谱密度分布图表明,初级涡旋对的喷射频率范围为7至9 Hz,边缘涡旋对的振荡频率范围为5至7 Hz,与雷诺数的变化类似,而与酒窝深度无关。 (C)2005美国物理研究所。

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