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Interaction of inner and outer layers in plane and radial wall jets

机译:平面和径向壁射流中内层和外层的相互作用

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Large eddy simulations of turbulent radial and plane wall jets were performed at different Reynolds numbers using the Lagrangian dynamic eddy viscosity subgrid-scale model. The results were validated with experimental data available in the literature. Compared to the plane ones, the radial wall jets have an extra direction for expansion, which causes faster decay rates. Thus, the resulting pressure gradient distributions are different. However, the comparison of the results with the turbulent boundary layers under adverse and favourable pressure gradients reveals that these pressure gradients are not strong enough to cause any fundamental physical difference between plane and radial wall jets. In both cases, the local Reynolds number is an important determining factor in characterisation of the flow. The joint probability density function analysis shows that the local Reynolds number determines the level of intrusion of the outer layer into the inner layer: the lower the local Reynolds number, the stronger is the interaction of the inner and outer layers. These results can be used to clarify the scatter of the reported log-law constants in the literature.
机译:使用拉格朗日动态涡流粘度亚网格规模模型,在不同的雷诺数下进行了湍流径向和平面壁射流的大涡流模拟。通过文献中提供的实验数据验证了结果。与平面射流相比,径向壁射流具有额外的膨胀方向,从而导致更快的衰减率。因此,所得的压力梯度分布是不同的。但是,将结果与不利和有利压力梯度下的湍流边界层进行比较后发现,这些压力梯度不足以引起平面和径向壁面射流之间的任何基本物理差异。在两种情况下,局部雷诺数都是表征流动特性的重要决定因素。联合概率密度函数分析表明,局部雷诺数决定了外层侵入内层的程度:局部雷诺数越低,内层和外层的相互作用越强。这些结果可用于阐明文献中所报告对数定律常数的分散性。

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