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Numerical study of the primary instability in a separated boundary layer transition under elevated free-stream turbulence

机译:自由流湍流作用下分离边界层过渡主不稳定性的数值研究

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摘要

Numerical studies of laminar-to-turbulent transition in a separation bubble subjected to two free-stream turbulence levels (FST) have been performed using Large-Eddy Simulation (LES). Separation of the laminar boundary layer occurs at a curvature change over a plate with a semi-circular leading edge at Re = 3450 based on the plate thickness and the uniform inlet velocity. A numerical trip is used to produce the targeted free-stream turbulence levels and the decay of free-stream turbulence is well predicted. A dynamic sub-grid-scale model is employed in the current study and a good agreement has been obtained between the LES results and the experimental data. Detailed analysis of the LES data has been carried out to investigate the primary instability mechanism. The flow visualisations and spectral analysis of the separated shear layer reveal that the 2D Kelvin-Helmholtz instability mode, well known to occur at low FST levels, is bypassed at higher levels leading to earlier breakdown to turbulence.
机译:使用大涡模拟(LES)进行了两个自由流湍流水平(FST)的分离气泡中层流向湍流过渡的数值研究。基于板的厚度和均匀的入口速度,层边界层的分离发生在具有半圆形前缘的板的曲率变化处,Re = 3450。数值行程用于产生目标的自由流湍流水平,并且可以很好地预测自由流湍流的衰减。本研究采用动态亚网格规模模型,LES结果与实验数据之间取得了很好的一致性。已经对LES数据进行了详细分析,以研究主要的不稳定性机理。分离的剪切层的流动可视化和频谱分析显示,众所周知的二维Kelvin-Helmholtz不稳定性模式在较低的FST水平下会以较高的水平旁路,从而导致较早地分解为湍流。

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