超临界RAE-2822翼型上采用低渗透壁面通风的激波/湍流边界层相互作用被动控制

IF 0.5 4区 工程技术 Q4 ENGINEERING, AEROSPACE Thermophysics and Aeromechanics Pub Date : 2024-12-13 DOI:10.1134/S086986432403020X
C. Zater, L. Bahi
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引用次数: 0

摘要

在跨音速流动状态下,研究了由带有空腔的多孔表面构成的被动控制概念对超临界 RAE-2822 机翼在冲击波/边界层相互作用下的影响,以利用具有低渗透系数的可变多孔长度获得更好的效率。在 M∞ = 0.82、Re∞ = 2-107 和 6° 攻角条件下,使用商用 ANSYS Fluent 代码和 Spalart-Allmaras 湍流模型,对机翼周围的二维、全湍流、可压缩和稳定流进行了雷诺平均纳维-斯托克斯方程求解。研究了清洁和多孔构造两种情况。研究结果表明,与清洁型相比,控制技术的效果是使冲击波向下游移动,产生更大的超音速流动区域,减少流动分离区,从而减弱 SBLI。因此,升力增加,阻力减少,从而提高了空气动力效率。为了获得更高的控制效率,我们对不同的多孔表面长度和低渗透系数进行了测试。全弦多孔性和 10-6 的低渗透系数获得了最佳空气动力效率,升力显著增加 47%,净阻力大幅减少 65%。
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Passive control of shock wave/turbulent boundary layer interaction using low permeability wall ventilation over a supercritical RAE-2822 airfoil

The effect of a passive control concept made of a porous surface with a cavity underneath the shock wave/boundary layer interaction on a supercritical RAE-2822 airfoil in a transonic flow regime, is investigated to achieve a better efficiency using a variable porous length with a low permeability factor. A numerical approach is carried out using the commercial ANSYS Fluent code to solve the Reynolds-averaged Navier–Stokes equations of a two-dimensional, fully turbulent, compressible, and steady flow around the airfoil at M = 0.82, Re = 2·107, and a 6° angle of attack, with the Spalart–Allmaras turbulence model. Both cases of a clean and a porous configuration, have been studies. The results showed the effect of the control technique by producing a downstream movement of the shock with a larger flow supersonic region and a reduced flow separation zone and thus a weaker SBLI, compared to the clean. Consequently, a lift increase and a drag reduction are obtained, leading to an improvement in the aerodynamic efficiency. Seeking for a higher control efficiency, variable porous surface lengths and low permeability factors, have been tested. The best aerodynamic efficiency was obtained with a full-chord porosity and a low permeability factor of 10−6, with an appreciable gain in lift of 47 % and a substantial net drag reduction of 65 %.

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来源期刊
Thermophysics and Aeromechanics
Thermophysics and Aeromechanics THERMODYNAMICS-MECHANICS
CiteScore
0.90
自引率
40.00%
发文量
29
审稿时长
>12 weeks
期刊介绍: The journal Thermophysics and Aeromechanics publishes original reports, reviews, and discussions on the following topics: hydrogasdynamics, heat and mass transfer, turbulence, means and methods of aero- and thermophysical experiment, physics of low-temperature plasma, and physical and technical problems of energetics. These topics are the prior fields of investigation at the Institute of Thermophysics and the Institute of Theoretical and Applied Mechanics of the Siberian Branch of the Russian Academy of Sciences (SB RAS), which are the founders of the journal along with SB RAS. This publication promotes an exchange of information between the researchers of Russia and the international scientific community.
期刊最新文献
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