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Numerical observations of turbulence structure modification in channel flow over 2D and 3D rough walls

机译:2D和3D粗糙壁上通道流动中湍流结构改变的数值观察

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The effects of wall roughness on turbulence structure modifications were explored by numerical experiments, carried out using Large Eddy Simulation techniques. The wall geometry was made using an archetypal artificial method, thus to achieve irregular two- and three-dimensional shapes. The proposed roughness shapes are highly irregular and are characterised by high and small peaks, thus it can be considered a practical realistic roughness. Their effects are analysed comparing the turbulence quantities over smooth, 2D and 3D rough walls of fully developed channel flow at relatively low friction Reynolds number Re-tau = 395. Both transitional and fully rough regimes have been investigated. The two rough surfaces were built in such a way that the same mean roughness height and averaged mean deviation is obtained. Despite of this, very different quantitative and qualitative results are generated. The analysis of the mean quantitative statistics and turbulence fluctuations shows that deviations are mainly concentrated in the inner layer. These results support the Townsend's similarity hypothesis. Among the geometrical parameters, which characterise the wall geometries, roughness slope correlates well with the roughness function Delta U+. Specifically, a logarithmic law is proposed to predict the downward shift of the velocity profile for the transitional regime. Instantaneous view of turbulent organised structures display differences in small-scale structures. The flow field over rough surfaces is populated with coherent structures shorter than those observed over flat planes. The comparative analysis of both streaks and wall-normal vortical structures shows that 2D and 3D irregularities have quite different effects. The results highlight that 3D rough wall are representative of a more realistic surface compared to idealised 2D roughness. (C) 2015 Elsevier Inc. All rights reserved.
机译:通过使用大型涡模拟技术进行的数值实验,探索了壁面粗糙度对湍流结构改性的影响。使用原型人工方法制作墙的几何形状,从而获得不规则的二维和三维形状。提出的粗糙度形状是高度不规则的,并且具有高和小峰的特征,因此可以认为是实际的现实粗糙度。在比较低摩擦的雷诺数Re-tau = 395的情况下,比较了在充分展开的通道流动的光滑,2D和3D粗糙壁上的湍流量,比较了它们的影响。已经研究了过渡和完全粗糙状态。以这样的方式构造两个粗糙表面,使得获得相同的平均粗糙度高度和平均平均偏差。尽管如此,还是产生了截然不同的定量和定性结果。对平均定量统计和湍流波动的分析表明,偏差主要集中在内层。这些结果支持了汤森德的相似性假设。在表征壁几何形状的几何参数中,粗糙度斜率与粗糙度函数Delta U +相关性很好。具体而言,提出了对数定律来预测过渡态速度曲线的向下偏移。湍流组织结构的瞬时视图显示了小规模结构的差异。粗糙表面上的流场填充的连贯结构比在平面上观察到的短。对条纹和墙体垂直涡结构的比较分析表明,2D和3D不规则具有不同的影响。结果表明,与理想的2D粗糙度相比,3D粗糙壁代表了更逼真的表面。 (C)2015 Elsevier Inc.保留所有权利。

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