Large-scale structures in a compressible mixing layer over a cavity

被引:7
|
作者
Poggie, J [1 ]
Smits, AJ
机构
[1] USAF, Res Lab, Computat Sci Ctr, Air Vehicles Directorate, Wright Patterson AFB, OH 45433 USA
[2] Princeton Univ, Dept Mech & Aerosp Engn, Princeton, NJ 08544 USA
关键词
D O I
10.2514/2.6840
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
An experimental study was made of a flow in which a turbulent boundary layer separates at a backward-facing step, forms a free shear layer over a cavity, and reattaches on a ramp downstream. Accurate characterization of the mixing layer turbulence is important given the strong link between large-scale organized structures and intense unsteadiness at reattachment found in our previous study of this How (Poggie, J., and Smits, A. J., "Shock Unsteadiness in a Reattaching Shear Layer,"Journal of Fluid Mechanics, Vol. 429, 2001, pp. 155-185). To this end, detailed flow visualization experiments were carried out in the self-similar portion of the turbulent mixing layer at a nominal, convective Mach number of 1.1. The flow visualization technique was based on Rayleigh scattering from nanometer-scale contaminant particles present in the freestream flow. The interface marked by the vaporization of the particles revealed the large-scale organized turbulence structures in the mixing layer. Quantitative measures of the length scale, orientation, and speed of organized structures were derived from the flow visualization data, and were found to agree well with conventional point-probe measurements. As has been found in other studies of planar mixing layers, the measured convection velocity varied moderately along the transverse direction, and the corresponding convective Mach number differed from the prediction of the isentropic model. The present results, along with previously published probe surveys, demonstrate that the flow over the cavity is essentially equivalent to a standard planar mixing layer flow, and thus forms a well-characterized initial condition for the reattachment flow downstream. In combination with our previous study, the present results add insight into cavity flow unsteadiness for the case where the driving mechansim is related to broad-band turbulent fluctuations, rather than discrete acoustic resonances.
引用
收藏
页码:2410 / 2419
页数:10
相关论文
共 50 条
  • [21] Flow visualization of the large-scale structures in supersonic mixing layer with a recirculation flow region
    Zhang, Hailong
    Liu, Weidong
    Wu, Jiping
    JOURNAL OF VISUALIZATION, 2016, 19 (01) : 15 - 19
  • [22] Flow visualization of the large-scale structures in supersonic mixing layer with a recirculation flow region
    Hailong Zhang
    Weidong Liu
    Jiping Wu
    Journal of Visualization, 2016, 19 : 15 - 19
  • [23] Large-scale unsteadiness in a compressible, turbulent reattaching shear layer
    Poggie, J.
    Leger, T.
    EXPERIMENTS IN FLUIDS, 2015, 56 (11) : 1 - 12
  • [24] Large-scale unsteadiness in a compressible, turbulent reattaching shear layer
    J. Poggie
    T. Leger
    Experiments in Fluids, 2015, 56
  • [25] EVOLUTION OF A LARGE-SCALE STRUCTURE IN AN AXISYMMETRIC MIXING LAYER
    SOKOLOV, M
    HUSSAIN, AKMF
    KLEIS, SJ
    BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1979, 24 (08): : 1133 - 1133
  • [26] LARGE-SCALE STRUCTURE IN THE MIXING LAYER OF A ROUND JET
    YULE, AJ
    JOURNAL OF FLUID MECHANICS, 1978, 89 (DEC) : 413 - &
  • [27] LARGE-SCALE STRUCTURE AND ENTRAINMENT IN THE SUPERSONIC MIXING LAYER
    CLEMENS, NT
    MUNGAL, MG
    JOURNAL OF FLUID MECHANICS, 1995, 284 : 171 - 216
  • [28] Large-scale structures and growth of a flat plate compressible wake
    Gai, SL
    Hughes, DP
    Perry, NS
    AIAA JOURNAL, 2002, 40 (06) : 1164 - 1169
  • [29] Large-scale coherent structures in compressible turbulent boundary layers
    Bross, Matthew
    Scharnowski, Sven
    Kaehler, Christian J.
    JOURNAL OF FLUID MECHANICS, 2021, 911
  • [30] Modulation of large-scale motions on turbulent/non-turbulent interface in spatially developing compressible mixing layer
    Zhang, Ruibo
    Wang, Xiaoning
    Wang, Jianchun
    Chen, Shiyi
    Physics of Fluids, 2024, 36 (12)