Unsteady effects of strong shock-wave/boundary-layer interaction at high Reynolds number

被引:149
作者
Pasquariello, Vito [1 ]
Hickel, Stefan [2 ]
Adams, Nikolaus A. [1 ]
机构
[1] Tech Univ Munich, Dept Mech Engn, Chair Aerodynam & Fluid Mech, Boltzmannstr 15, D-85748 Garching, Germany
[2] Delft Univ Technol, Fac Aerosp Engn, POB 5058, NL-2600 GB Delft, Netherlands
关键词
boundary layer separation; compressible turbulence; shock waves; TURBULENT-BOUNDARY-LAYER; LARGE-EDDY SIMULATION; DIRECT NUMERICAL-SIMULATION; LOW-FREQUENCY UNSTEADINESS; COMPRESSION RAMP INTERACTION; INDUCED SEPARATION; FLOWS; FLUCTUATIONS; OSCILLATION; TRANSITION;
D O I
10.1017/jfm.2017.308
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
We analyse the low-frequency dynamics of a high Reynolds number impinging shock-wave/turbulent boundary-layer interaction (SWBLI) with strong mean-flow separation. The flow configuration for our grid-converged large-eddy simulations (LES) reproduces recent experiments for the interaction of a Mach 3 turbulent boundary layer with an impinging shock that nominally deflects the incoming flow by 19.6 degrees. The Reynolds number based on the incoming boundary-layer thickness of Re-delta 0 approximate to 203 x 10(3) is considerably higher than in previous LES studies. The very long integration time of 3805 delta(0)/U-0 allows for an accurate analysis of low-frequency unsteady effects. Experimental wall-pressure measurements are in good agreement with the LES data. Both datasets exhibit the distinct plateau within the separated-flow region of a strong SWBLI. The filtered three-dimensional flow field shows clear evidence of counter-rotating streamwise vortices originating in the proximity of the bubble apex. Contrary to previous numerical results on compression ramp configurations, these Gortler-like vortices are not fixed at a specific spanwise position, but rather undergo a slow motion coupled to the separation-bubble dynamics. Consistent with experimental data, power spectral densities (PSD) of wall-pressure probes exhibit a broadband and very energetic low-frequency component associated with the separation-shock unsteadiness. Sparsity-promoting dynamic mode decompositions (SPDMD) for both spanwise-averaged data and wall-plane snapshots yield a classical and well-known low-frequency breathing mode of the separation bubble, as well as a medium-frequency shedding mode responsible for reflected and reattachment shock corrugation. SPDMD of the two-dimensional skin-friction coefficient further identifies streamwise streaks at low frequencies that cause large-scale flapping of the reattachment line. The PSD and SPDMD results of our impinging SWBLI support the theory that an intrinsic mechanism of the interaction zone is responsible for the low-frequency unsteadiness, in which Gortler-like vortices might be seen as a continuous (coherent) forcing for strong SWBLI.
引用
收藏
页码:617 / 657
页数:41
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