Physical aspects of vortex-shock dynamics in delta wing configurations

被引:0
|
作者
Rajkumar, K. [1 ]
Fabbio, T. Di [1 ]
Tangermann, E. [1 ]
Klein, M. [1 ]
机构
[1] Univ Bundeswehr Munich, Inst Appl Math & Sci Comp, Dept Aerosp Engn, D-85579 Neubiberg, Germany
关键词
BREAKDOWN; CRITERION;
D O I
10.1063/5.0213122
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Delta wing configurations with double- and triple-leading edges introduced within the North Atlantic Treaty Organization Applied Vehicle Technology -316 task group are examined to investigate the dynamics of vortices and shocks, with potential implications for the preliminary aircraft design. The numerical simulations are conducted for the configurations at Ma(infinity )= 0.85 and Re-infinity = 12.53 x 10(6) using the Reynolds-averaged Navier-Stokes k - omega shear stress transport (SST) model across a range of incidence angles. The detailed analysis focuses on the case with alpha = 20 degrees using the scale-adaptive simulation based on the k - omega SST model. This study considers shock-vortex interaction and breakdown with buffeting to study the transient flow physics over the wing. Additionally, insights into vorticity strength and destruction are gained through the enstrophy transport equation. The findings reveal that the inboard vortex (IBV) development is impeded by counter-rotating secondary vortices from IBV and the midboard vortex. A key distinction is observed for the first time between the double-delta and triple-delta wings, in that the double-delta wing experiences shock-induced vortex breakdown, with the transient nature of this breakdown leading to an adjustment in the shock position, causing a shock buffet. In contrast, the breakdown in the triple-delta wing is linked to a stationary shock induced by the kink in the planform. This study highlights the crucial role of the orientation of the shock relative to the vortex axis in characterizing the aerodynamic performance of the planforms.
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页数:15
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