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Propagation of shock-wave/boundary-layer interaction unsteadiness in attached and separated flows

机译:冲击波/边界层相互作用在附加和分离流中的稳定性传播

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摘要

The origin and propagation of low-frequency shock oscillation unsteadiness in the attached and separated flows are investigated. Wind tunnel experiments are performed in an isolator at Mach 1.85 and 2.7 with three types of upstream wedges, generating weak and strong background waves. High-speed schlieren imaging and high-resonance frequency pressure measurements are used to capture the flow features. In the attached flow with weak background waves, the impingement of the reflected shocks along the flow strengthens the original instability waves from the shock oscillation, resulting in the correlation drop and time-delay rise with the original instability waves. In the attached flow with strong background waves, two-point correlation analyses show that the shock oscillations propagate along the shock structure and convection of the boundary layer structures, which enhances the turbulence pulsation in the boundary layer. The correlation and coherence results for pressure indicate that the incident points of two independent background waves move in opposite directions, while the incident points of two merged background waves move in the same direction. Using downstream throttling, the shock train in the separated flow is introduced. Based on the phase analysis of schlieren images, the feedback mechanism of the shock train oscillation is described, which is related to the acoustic wave propagation and the duct volume effect. Power spectra of the pressure in the upstream attached and downstream separated flows of the shock train show that the perturbation pathways in the attached and separated flows do not affect each other.
机译:研究了所连接和分离流中的低频冲击振荡不稳定的原点和传播。风洞实验在Mach 1.85和2.7的隔离器中进行,具有三种类型的上游楔形,产生弱和强大的背景波。高速Schlieren成像和高谐振频率压力测量用于捕获流量功能。在具有弱背景波的附加流中,沿着流程的反射冲击冲击增强了从冲击振荡的原始不稳定性波,导致具有原始不稳定性波的相关降低和时间延迟上升。在具有强外背景波的附接流中,双点相关分析表明,冲击振荡沿着冲击结构和边界层结构的对流传播,这增强了边界层中的湍流脉动。压力的相关性和相干结果表明,两个独立背景波的入射点在相反的方向上移动,而两个合并背景波的入射点沿相同的方向移动。使用下游节流,引入了分离流程中的冲击列。基于Schlieren图像的相位分析,描述了冲击列车振荡的反馈机制,其与声波传播和管道体积效应有关。附加的上游压力的功率光谱和冲击列车的下游分离流量表明附接和分离的流动中的扰动途径不会彼此影响。

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