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首页> 外文期刊>Journal of Fluid Mechanics >Unsteady effects in a hypersonic compression ramp flow with laminar separation
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Unsteady effects in a hypersonic compression ramp flow with laminar separation

机译:具有层流分离的高超声伸压缩斜坡流动中的不稳定效果

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摘要

Direct numerical simulations (DNS) are performed to investigate a hypersonic flow over a compression ramp with a free stream Mach number of 7.7 and a free stream Reynolds number of based on the flat plate length. The DNS results are validated by comparison with experimental data and theoretical predictions. It is shown that even in the absence of external disturbances, streamwise heat flux streaks form on the ramp surface downstream of reattachment, and that they are non-uniformly distributed in the spanwise direction. The surface heat flux exhibits a low-frequency unsteadiness, which propagates in the streamwise direction. Additionally, the unsteadiness of the heat flux streaks downstream of reattachment is coupled with a pulsation of the reattachment position. By conducting a dynamic mode decomposition (DMD) analysis, several oscillatory modes, characterised by streamwise low-frequency periodicity, are revealed in the separation bubble flow. The DNS results are further explained by a global stability analysis (GSA). Particularly, the flow structure of the leading DMD modes is consistent with that of the oscillatory unstable modes identified by the GSA. It is therefore concluded that the global instabilities are responsible for the unsteadiness of the considered compression ramp flow.
机译:采用直接数值模拟(DNS)研究了自由流马赫数为7.7、自由流雷诺数为(基于平板长度)的压缩坡道上的高超声速流动。通过与实验数据和理论预测的比较,验证了DNS结果。结果表明,即使在没有外部扰动的情况下,在再附下游的斜坡表面上也会形成流向热流条纹,并且它们在翼展方向上分布不均匀。表面热流呈现低频不稳定,沿流向传播。此外,再附下游热流条纹的不稳定性与再附位置的脉动相耦合。通过进行动态模式分解(DMD)分析,在分离气泡流中发现了以流向低频周期性为特征的几种振荡模式。DNS结果由全局稳定性分析(GSA)进一步解释。特别是,主要DMD模式的流动结构与GSA识别的振荡不稳定模式的流动结构一致。由此得出结论,整体不稳定性是所考虑的压缩斜坡流不稳定的原因。

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