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Acoustic receptivity of Mach 4.5 boundary layer with leading-edge bluntness

机译:具有前沿钝性的4.5马赫边界层的声接收率

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摘要

Boundary layer receptivity to two-dimensional slow and fast acoustic waves is investigated by solving Navier-Stokes equations for Mach 4.5 flow over a flat plate with a finite-thickness leading edge. Higher order spatial and temporal schemes are employed to obtain the solution whereby the flat-plate leading edge region is resolved by providing a sufficiently refined grid. The results show that the instability waves are generated in the leading edge region and that the boundary-layer is much more receptive to slow acoustic waves (by almost a factor of 20) as compared to the fast waves. Hence, this leading-edge receptivity mechanism is expected to be more relevant in the transition process for high Mach number flows where second mode instability is dominant. Computations are performed to investigate the effect of leading-edge thickness and it is found that bluntness tends to stabilize the boundary layer. Furthermore, the relative significance of fast acoustic waves is enhanced in the presence of bluntness. The effect of acoustic wave incidence angle is also studied and it is found that the receptivity of the boundary layer on the 'windward' side (with respect to the acoustic forcing) decreases by more than a factor of four when the incidence angle is increased from 0 degrees to 45 degrees. However, the receptivity coefficient for the 'leeward' side is found to vary relatively weakly with the incidence angle.
机译:通过求解在具有有限厚度前缘的平板上流动的马赫数4.5的Navier-Stokes方程,研究了边界层对二维慢速和快速声波的接受性。采用更高阶的时空方案来获得解决方案,从而通过提供足够精细的网格来解决平板前缘区域。结果表明,不稳定波在前缘区域中产生,并且与快速波相比,边界层更容易接受慢速声波(几乎是20倍)。因此,在第二模式不稳定性占主导地位的高马赫数流的过渡过程中,这种前沿的接受机制预计会更相关。进行计算以研究前沿厚度的影响,并且发现钝化趋于稳定边界层。此外,在钝性的情况下,快速声波的相对重要性得到增强。还研究了声波入射角的影响,发现当入射角从增大时,“迎风”侧的边界层(相对于声强)的接受度降低了四倍以上。 0度到45度。但是,发现“下风”侧的接收系数随入射角的变化相对较弱。

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