The numerical simulation of shock bifurcation near the end wall of a shock tube
- 1 October 1995
- journal article
- research article
- Published by AIP Publishing in Physics of Fluids
- Vol. 7 (10) , 2475-2488
- https://doi.org/10.1063/1.868691
Abstract
The reflection of a normal shock wave from the end wall of a two‐dimensional channel has been numerically simulated to investigate the unsteady, viscous interaction aspects of shock bifurcation. The numerical simulation implements a data‐parallel version of the Flux‐Corrected Transport algorithm that has been coupled to the viscous transport terms of the Navier–Stokes equations. All numerical simulations were performed on the Connection Machine, the CM‐5. The results indicate that the shear layer in the bifurcation zone is unstable, and the large and small scale vortices lead to complex flow patterns. In addition, the high‐speed, essentially inviscid flow, which is adjacent to the shear layer, is deflected over this region. As a result, weak shock and expansions waves are generated and a reattachment shock is formed at the trailing edge of the interaction region. The impact of heat transfer, Reynolds number, and incident shock strength on the viscous interaction is also investigated. Heat transfer to the walls weakens the interaction between the boundary layer and the reflected shock. However, the decreased Reynolds number and increased shock strength enhances the interaction.Keywords
This publication has 6 references indexed in Scilit:
- Driver gas contamination in a high-enthalpy reflected shock tunnelAIAA Journal, 1978
- The Interaction of a Reflected Shock Wave with the Boundary Layer in a Shock TubeBulletin of JSME, 1974
- Influence of Reflected Shock and Boundary-Layer Interaction on Shock-Tube FlowsPhysics of Fluids, 1969
- Density Variation due to Reflected Shock-Boundary-Layer InteractionPhysics of Fluids, 1966
- Reflected Shock Interaction with Shock Tube Boundary LayersPhysics of Fluids, 1963
- Limitations of the Reflected Shock Technique for Studying Fast Chemical Reactions and Its Application to the Observation of Relaxation in Nitrogen and OxygenThe Journal of Chemical Physics, 1959