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Wall shear stress and wall heat flux in a supersonic turbulent boundary layer
Tong FL(童福林); Dong,Siwei; Lai J(赖姜); Yuan,Xianxu; Li XL(李新亮)
通讯作者Dong, Siwei(siwei.dong@cardc.cn)
发表期刊PHYSICS OF FLUIDS
2022
卷号34期号:1页码:22
ISSN1070-6631
摘要We report the characteristics of wall shear stress (WSS) and wall heat flux (WHF) from direct numerical simulation (DNS) of a spatially developing zero-pressure-gradient supersonic turbulent boundary layer at a free-stream Mach number M-& INFIN; = 2.25 and a Reynolds number Re-tau = 769 with a cold-wall thermal condition (a ratio of wall temperature to recovery temperature T-w/T-r = 0.75). A comparative analysis is performed on statistical data, including fluctuation intensity, probability density function, frequency spectra, and space-time correlation. The root mean square fluctuations of the WHF exhibit a logarithmic dependence on Re-tau similar to that for the WSS, the main difference being a larger constant. Unlike the WSS, the probability density function of the WHF does not follow a lognormal distribution. The results suggest that the WHF contains more energy in the higher frequencies and propagates downstream faster than the WSS. A detailed conditional analysis comparing the flow structures responsible for extreme positive and negative fluctuation events of the WSS and WHF is performed for the first time, to the best of our knowledge. The conditioned results for the WSS exhibit closer structural similarities with the incompressible DNS analysis documented by Pan and Kwon [ "Extremely high wall-shear stress events in a turbulent boundary layer, " J. Phys.: Conf. Ser. 1001, 012004 (2018)] and Guerrero et al. [ "Extreme wall shear stress events in turbulent pipe flows: Spatial characteristics of coherent motions, " J. Fluid Mech. 904, A18 (2020)]. Importantly, the conditionally averaged flow fields of the WHF exhibit a different mechanism, where the extreme positive and negative events are generated by a characteristic two-layer structure of temperature fluctuations under the action of a strong Q4 event or a pair of strong oblique vortices. Nevertheless, we use the bi-dimensional empirical decomposition method to split the fluctuating velocity and temperature structures into four different modes with specific spanwise length scales, and we quantify their influence on the mean WSS and WHF generation. It is shown that the mean WSS is mainly related to small-scale structures in the near-wall region, whereas the mean WHF is associated with the combined action of near-wall small-scale structures and large-scale structures in the logarithmic and outer regions.
DOI10.1063/5.0079230
收录类别SCI ; EI
语种英语
WOS记录号WOS:000753213600017
关键词[WOS]DIRECT NUMERICAL-SIMULATION ; PRESSURE-FLUCTUATIONS ; COHERENT STRUCTURES ; ATTACHED EDDIES ; SKIN-FRICTION ; CHANNEL FLOW ; SHOCK-WAVE ; REGION ; STATISTICS ; FEATURES
WOS研究方向Mechanics ; Physics
WOS类目Mechanics ; Physics, Fluids & Plasmas
资助项目National Natural Science Foundation of China[11972356] ; National Natural Science Foundation of China[92052301] ; National Natural Science Foundation of China[2072306] ; National Natural Science Foundation of China[91852203] ; National Key R&D Program of China[2019YFA0405300]
项目资助者National Natural Science Foundation of China ; National Key R&D Program of China
论文分区一类/力学重要期刊
力学所作者排名3+
RpAuthorDong, Siwei
引用统计
被引频次:27[WOS]   [WOS记录]     [WOS相关记录]
文献类型期刊论文
条目标识符http://dspace.imech.ac.cn/handle/311007/88588
专题高温气体动力学国家重点实验室
推荐引用方式
GB/T 7714
Tong FL,Dong,Siwei,Lai J,et al. Wall shear stress and wall heat flux in a supersonic turbulent boundary layer[J]. PHYSICS OF FLUIDS,2022,34,1,:22.
APA 童福林,Dong,Siwei,赖姜,Yuan,Xianxu,&李新亮.(2022).Wall shear stress and wall heat flux in a supersonic turbulent boundary layer.PHYSICS OF FLUIDS,34(1),22.
MLA 童福林,et al."Wall shear stress and wall heat flux in a supersonic turbulent boundary layer".PHYSICS OF FLUIDS 34.1(2022):22.
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