前缘表面粗糙度对剪切层激发的实验研究

IF 1.8 3区 工程技术 Q3 ENGINEERING, MECHANICAL Journal of Fluids Engineering-Transactions of the Asme Pub Date : 2021-05-01 DOI:10.1115/1.4049685
P. Singh, S. Sarkar
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引用次数: 3

摘要

在本文中,进行了一个全面的研究,以解决激振分离边界层附近的前缘由于表面粗糙度。实验在半圆形前缘模型翼型上进行,雷诺数(Rec)为1.6×105,其中自由流湍流(fst)为1.2%。研究了三个粗糙表面的流动特征,其中壁面单元的粗糙度分别为17、10.5和8.4,这是根据再附着处远下游位置的速度剖面估计的。壁面粗糙度导致了早期的过渡和再附着,从而减少了除气泡长度外的层流剪切层长度。值得注意的是,虽然粗糙表面从一开始就明显存在大幅度的过渡前扰动,但剪切层反映了所选频率的放大,其中归一化后的基频与光滑壁面的基频几乎相同。通用间歇曲线可以用来描述剪切层的过渡,它与fst下边界层的激励有一定的相似性,表明了粘性效应。
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Excitation of Shear Layer Due to Surface Roughness Near the Leading Edge: An Experiment
In this paper, a comprehensive study has been performed to address the excitation of a separated boundary layer near the leading edge due to surface roughness. Experiments are performed on a model airfoil with the semicircular leading edge at a Reynolds number (Rec) of 1.6×105, where the freestream turbulence (fst) is 1.2%. The flow features are investigated over the three rough surfaces with the roughness characteristic in the wall unit of 17, 10.5, and 8.4, which are estimated from the velocity profile at a location far downstream of reattachment. The wall roughness results in an early transition and reattachment, leading to a reduction of the laminar shear layer length apart from the bubble length. It is worthwhile to note that although the large-amplitude pretransitional perturbations are apparent from the beginning for the rough surface, the shear layer reflects the amplification of selected frequencies, where the fundamental frequency when normalized is almost the same as that of the smooth wall. The universal intermittency curve can be used to describe the transition of the shear layer, which exhibits some resemblance to the excitation of the boundary layer under fst, signifying the viscous effect.
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来源期刊
CiteScore
4.60
自引率
10.00%
发文量
165
审稿时长
5.0 months
期刊介绍: Multiphase flows; Pumps; Aerodynamics; Boundary layers; Bubbly flows; Cavitation; Compressible flows; Convective heat/mass transfer as it is affected by fluid flow; Duct and pipe flows; Free shear layers; Flows in biological systems; Fluid-structure interaction; Fluid transients and wave motion; Jets; Naval hydrodynamics; Sprays; Stability and transition; Turbulence wakes microfluidics and other fundamental/applied fluid mechanical phenomena and processes
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