Evolution and sudden change of steady interactions of low enthalpy hypersonic double wedge flows with fore angle
Yihui Weng, Yi Duan, Qin Li, Yunchuan Wu, Mengyu Wang, Pan Yan, Siyi, Li

TL;DR
This study numerically investigates the evolution and abrupt transitions of steady flow interactions in low enthalpy hypersonic double wedge flows, revealing critical angles and new shock reflection patterns.
Contribution
It provides detailed numerical analysis of flow pattern transitions and identifies critical wedge angles triggering sudden structural changes in hypersonic flows.
Findings
Boundaries for steady and unsteady flow onset are identified.
Sequential evolution of interaction patterns with increasing wedge angle.
Discovery of a new shock reflection pattern, Type III_r, in non-equilibrium flows.
Abstract
The evolution and sudden change of steady interaction structures is numerically studied with the fore wedge angle theta_1 in a low enthalpy hypersonic double wedge configuration. It particularly focuses on the conditions of Swantek and Austin's experiments where Ma=7, and h_0=2 MJ/kg but with a reduced Reynolds number (Re). The sudden structural change indicates that when theta_1 reaches a critical value, minor angular variations can trigger a discontinuous transformation in flow structures. The analysis is based on the laminar Navier-Stokes equations, using ideal gas and non-equilibrium gas models. Under the condition of Re=1E5/m, detailed numerical simulations are conducted as theta_1 varies over 0 deg-40 deg. This study yields the following findings: (a) The upper and lower boundaries of theta_1 for the onset of unsteady flow are identified. When theta_1 lies outside these…
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Taxonomy
TopicsFluid Dynamics and Turbulent Flows · Particle Dynamics in Fluid Flows · Gas Dynamics and Kinetic Theory
