论文标题

电击波/湍流边界层相互作用的不稳定表征中等雷诺数

Unsteadiness characterisation of shock wave/turbulent boundary-layer interaction at moderate Reynolds number

论文作者

Bernardini, Matteo, Della Posta, Giacomo, Salvadore, Francesco, Martelli, Emanuele

论文摘要

以马赫数为2.28的湍流边界层上的倾斜冲击波的直接数值模拟是在中等雷诺数下进行的,模拟了与Dupont等人相似的流动条件。 (2006)。低频冲击不稳定,其特征一直是大量研究工作的重点,在这里通过Morlet小波变换进行了研究。由于其在物理空间和傅立叶空间中的紧凑支撑,小波转换使得可以跟踪壁压波动的各种尺度的时间演化。该特性还可以定义代表频率依赖性平坦因子的局部间歇性度量,以查明能量爆发,以按比例表征电击间歇性。作为主要结果,小波分解表明,宽带冲击运动实际上是及时稀疏事件集合的结果,每个事件都以自己的时间尺度为特征。经典傅立叶分析隐藏了此功能,该分析只能显示时间平均的行为。然后,我们提出了一个程序来处理任何相关的时间序列,例如壁压的时间历史或分离气泡范围的时间序列,在该时间序列中,我们根据局部间歇性测量方法使用条件,以滤除冲击脚接近的湍流内容并仅隔离信号的间歇分量。此外,小波分析还揭示了反射冲击后面的再循环气泡的呼吸运动的间歇性行为,并使我们能够检测到分离区域中最重要的间歇性事件与冲击脚下壁压的最重要的间歇性事件之间的直接,部分对应关系。

A direct numerical simulation of an oblique shock wave impinging on a turbulent boundary layer at Mach number 2.28 is carried out at moderate Reynolds number, simulating flow conditions similar to those of the experiment by Dupont et al. (2006). The low-frequency shock unsteadiness, whose characteristics have been the focus of considerable research efforts, is here investigated via the Morlet wavelet transform. Owing to its compact support in both physical and Fourier spaces, the wavelet transformation makes it possible to track the time evolution of the various scales of the wall-pressure fluctuations. This property also makes it possible to define a local intermittency measure, representing a frequency-dependent flatness factor, to pinpoint the bursts of energy that characterise the shock intermittency scale by scale. As a major result, wavelet decomposition shows that the broadband shock movement is actually the result of a collection of sparse events in time, each characterised by its own temporal scale. This feature is hidden by the classical Fourier analysis, which can only show the time-averaged behaviour. Then, we propose a procedure to process any relevant time series, such as the time history of the wall-pressure or that of the separation bubble extent, in which we use a condition based on the local intermittency measure to filter out the turbulent content in the proximity of the shock foot and to isolate only the intermittent component of the signal. In addition, wavelet analysis reveals the intermittent behaviour also of the breathing motion of the recirculation bubble behind the reflected shock, and allows us to detect a direct, partial correspondence between the most significant intermittent events of the separation region and those of the wall-pressure at the foot of the shock.

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