Low-frequency unsteadiness mechanisms of unstart flow in an inlet with rectangular-to-elliptical shape transition under off-design condition at a Mach number of 4

IF 3.6 2区 工程技术 Q1 MECHANICS Journal of Fluid Mechanics Pub Date : 2024-08-22 DOI:10.1017/jfm.2024.504
Jiaxiang Zhong, Feng Qu, Di Sun, Qingsong Liu, Qing Wang, Junqiang Bai
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Abstract

The unsteady mechanism of unstart flow for an inlet with rectangular-to-elliptical shape transition (REST) under the off-design condition at a Mach of 4 is investigated using the delay detached eddy simulation method. With the help of numerical simulations, the unsteady dynamics, especially the low-frequency characteristics of the REST inlet unstart flow, as well as the self-sustaining mechanism, is investigated. The instantaneous flow illustrates the unsteady phenomena of the REST unstart flow, including the interaction between the cowl-closure leading edge (CLE) shock and the shear layer, breathing of the separation bubble, flapping of the separation shock, instability of the shear layer and vortex shedding along the shear layer. The spectral analysis reveals that the lower frequency dynamics is associated with the breathing of the separation bubble and the flapping motion of the separation shock wave, while the higher frequency is related to the instability of the shear layer affected by cowl-closure leading edge shock and the formation of shedding vortices. Further, coherence analysis shows that the contribution of these flow structures dominating the low-frequency dynamics couple with each other. Based on the dynamic mode decomposition results, the characteristics that contribute to the unsteady behaviour of unstart flow are summarized. The streamwise vortices downstream of the separation and the shedding vortices are believed to be the main driving force of the global low-frequency unsteadiness of the REST inlet unstart flow under the off-design condition. Moreover, the CLE shock plays an important role in the process during the dominant flow structure conversion from the backflow within the separation bubble into elongated streamwise structures.
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在马赫数为 4 的非设计条件下,具有矩形到椭圆形过渡形状的进气口中的非启动流动的低频不稳定机制
采用延迟分离涡模拟方法研究了马赫数为 4 的非设计工况下矩形到椭圆形过渡(REST)进气道非启动流的非稳态机理。在数值模拟的帮助下,研究了 REST 入口非启动流的非稳定动力学特性,尤其是低频特性,以及自持机制。瞬时流说明了 REST 非启动流的不稳定现象,包括罩壳前缘(CLE)冲击与剪切层之间的相互作用、分离气泡的呼吸、分离冲击的拍打、剪切层的不稳定以及沿剪切层的涡流脱落。频谱分析表明,低频动力学与分离气泡的呼吸和分离冲击波的拍击运动有关,而高频与受牛顿关闭前缘冲击影响的剪切层的不稳定性和脱落涡的形成有关。此外,相干性分析表明,这些主导低频动力学的流动结构的贡献相互耦合。根据动力学模式分解结果,总结了导致非起始流不稳定行为的特征。在非设计条件下,分离下游的流向涡和脱落涡被认为是 REST 入口非启动流全局低频不稳定性的主要驱动力。此外,在主要流动结构从分离气泡内的回流转化为细长流向结构的过程中,CLE 冲击也发挥了重要作用。
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来源期刊
CiteScore
6.50
自引率
27.00%
发文量
945
审稿时长
5.1 months
期刊介绍: Journal of Fluid Mechanics is the leading international journal in the field and is essential reading for all those concerned with developments in fluid mechanics. It publishes authoritative articles covering theoretical, computational and experimental investigations of all aspects of the mechanics of fluids. Each issue contains papers on both the fundamental aspects of fluid mechanics, and their applications to other fields such as aeronautics, astrophysics, biology, chemical and mechanical engineering, hydraulics, meteorology, oceanography, geology, acoustics and combustion.
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