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Analysis of shock-wave unsteadiness in conical supersonic nozzles

机译:锥形超音速喷嘴的冲击波不稳定分析

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Large Eddy Simulations (LES) of an over-expanded conical nozzle are performed to study the complex interaction between the turbulent boundary layer, the internal shock wave and the separated mixing layer. Both wall-modeled (WM) and wall-resolved (WR) LES strategies are employed to investigate the three-dimensional unsteady aspect of shock-wave boundary-layer interaction (SWBLI). First, a comparison of flow behavior in a conical nozzle against an equivalent planar nozzle is made. It was found that whilst both configurations may share common flow features such as large-scale turbulent structures and shock-wave patterns, they show contrasts on the symmetry of the flow and the shock dynamics. In particular, the latter was found to have a shorter excursion length in conical nozzle compared to the planar one. The strong adverse pressure gradient tends to reduce the amplitude of the shock movements in conical flows. Additionally, the dynamic mode decomposition (DMD) analysis showed the existence of two unsteady modes; the non-helical modes which are low-frequency based, appearing mainly in the streamwise forces and the helical modes which are high frequency dominated modes and are largely responsible for the side side-loads generation. (C) 2020 Elsevier Masson SAS. All rights reserved.
机译:执行过膨胀锥形喷嘴的大型涡流模拟(LES)以研究湍流边界层,内部冲击波和分离的混合层之间的复杂相互作用。壁图(WM)和壁分辨(WR)LES策略都用于研究冲击波边界层相互作用(SWBLI)的三维不稳定方面。首先,制造锥形喷嘴中的流动性能与等效平面喷嘴的比较。发现,虽然这两个配置可以共享诸如大规模湍流结构和冲击波图案的常见流动特征,但它们显示了对对称性的对比度和冲击动力学的对比度。特别是,与平面的平面图相比,后者被发现在锥形喷嘴中具有较短的偏移长度。强不利的压力梯度倾向于降低锥形流动的冲击运动的幅度。另外,动态模式分解(DMD)分析显示出两个不稳定模式;基于低频的非螺旋模式主要出现在流动力和高频主导模式的螺旋模式中,并且在很大程度上负责侧侧载荷产生。 (c)2020 Elsevier Masson SAS。版权所有。

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