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Title: Unsteady effects in a hypersonic compression ramp flow with laminar separation
Authors: Cao, S 
Hao, J 
Klioutchnikov, I
Olivier, H
Wen, CY 
Issue Date: 10-Apr-2021
Source: Journal of fluid mechanics, 10 Apr. 2021, v. 912, A3
Abstract: 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.
Keywords: Boundary layer separation
Shock waves
Publisher: Cambridge University Press
Journal: Journal of fluid mechanics 
ISSN: 0022-1120
EISSN: 1469-7645
DOI: 10.1017/jfm.2020.1093
Rights: This article has been published in a revised form in Journal of Fluid Mechanics [http://doi.org/10.1017/jfm.2020.1093]. This version is free to view and download for private research and study only. Not for re-distribution or re-use. © The Author(s), 2021.
When citing an Accepted Manuscript or an earlier version of an article, the Cambridge University Press requests that readers also cite the Version of Record with a DOI link. The article is subsequently published in revised form in Journal of Fluid Mechanics [http://doi.org/10.1017/jfm.2020.1093].
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