The structure of the shock wave/turbulent boundary-layer interaction generated by a 3D swept compression corner has been investigated through a combined experimental and theoretical research program. The flowfield geometry is defined by the streamwise compression angle alpha and the sweep angle lambda of the corner. The present study examines two different configurations, namely (alpha, lambda) = (24 deg, 40 deg) and (24 deg, 60 deg) at Mach 3 and Re sigma infinity about 9 x 10 exp 5. The theoretical model is the 3D Reynolds-averaged compressible Navier-Stokes equations with turbulence incorporated using a turbulent eddy viscosity. The calculated flowfields display general agreement with experimental data for surface pressure and good agreement with experimental flowfield profiles of pitot pressure and yaw angle. The principal feature of the flowfield is a large vortical structure approximately aligned with the corner. The entrainment of incoming fluid into the vortical structure is strongly affected by the sweep angle lambda. Viscous (turbulent and molecular) effects appear to be important only in the immediate vicinity of the surface and in an isolated region within the interaction and near the corner.


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    Titel :

    Structure of supersonic turbulent flow past a swept compression corner


    Beteiligte:

    Erschienen in:

    Erscheinungsdatum :

    1992-04-01



    Medientyp :

    Sonstige


    Format :

    Keine Angabe


    Sprache :

    Englisch


    Schlagwörter :


    Structure of supersonic turbulent flow past a swept compression corner

    KNIGHT, DOYLE D. / HORSTMAN, C. C. / BOGDONOFF, SEYMOUR | AIAA | 1992


    Supersonic turbulent flow past a swept compression corner at Mach 3.II

    KNIGHT, DOYLE / HORSTMAN, C. / BOGDONOFF, SEYMOUR | AIAA | 1988


    Supersonic turbulent flow past a 3-D swept compression corner at Mach 3

    KNIGHT, DOYLE / HORSTMAN, C. / RUDERICH, R. et al. | AIAA | 1987