首页> 外文期刊>Journal of Fluid Mechanics >INTERACTION BETWEEN A SPATIALLY GROWING TURBULENT BOUNDARY LAYER AND EMBEDDED STREAMWISE VORTICES
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INTERACTION BETWEEN A SPATIALLY GROWING TURBULENT BOUNDARY LAYER AND EMBEDDED STREAMWISE VORTICES

机译:空间增长的湍流边界层与嵌入式条纹涡流之间的相互作用

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摘要

The interaction between a zero-pressure-gradient turbulent boundary layer and a pair of strong, common-how-down, streamwise Vortices with a sizeable velocity deficit is studied by large-eddy simulation. The subgrid-scale stresses are modelled by a localized dynamic eddy-viscosity model. The results agree well with experimental data. The vortices drastically distort the boundary layer, and produce large spanwise variations of the skin friction. The Reynolds stresses are highly three-dimensional. High levels of kinetic energy are found both in the upwash region and in the vortex core. The two secondary shear stresses are significant in the vortex region, with magnitudes comparable to the primary one. Turbulent transport from the immediate upwash region is partly responsible for the high levels of turbulent kinetic energy in the vortex core; its effect on the primary stress [u'v'] is less significant. The mean velocity gradients play an important role in the generation of [u'v'] in all regions, while they are negligible in the generation of turbulent kinetic energy in the vortex core. The pressure-strain correlations are generally of opposite sign to the production terms except in the Vortex core, where they have the same sign as the production term in the budget of [u'v']. The results highlight the limitations of the eddy-viscosity assumption (in a Reynolds-averaged context) for hows of this type, as well as the excessive diffusion predicted by typical turbulence models. [References: 34]
机译:通过大涡模拟研究了零压力梯度湍流边界层和一对具有一定速度赤字的强的,共同的,向下流动的涡流之间的相互作用。亚网格尺度应力通过局部动态涡粘性模型建模。结果与实验数据吻合良好。涡旋使边界层急剧变形,并产生大的翼展方向皮肤摩擦变化。雷诺应力是高度三维的。在上冲区域和涡旋核中都发现了高水平的动能。在涡旋区域中,两个次级剪应力是显着的,其大小与初级的相当。来自直接上冲区域的湍流输送是造成涡流核心中高水平湍动能的部分原因。它对主应力[u'v']的影响较小。平均速度梯度在所有区域的[u'v']产生中都起着重要作用,而在涡旋核心中湍动能的产生中则可以忽略不计。压力-应变相关通常与生产项相反,而在Vortex核心中除外,在Vortex核心中,它们与[u'v']预算中的生产项具有相同的标志。结果强调了涡流假设的局限性(在雷诺平均背景下),对于这种类型的流体,以及典型湍流模型预测的过度扩散。 [参考:34]

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