空间发射用金刚石翼型振动的数值与实验研究

Jéromine Dumon, Y. Bury, N. Gourdain, L. Michel
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引用次数: 1

摘要

目的研制可重复使用的空间发射装置,需要对发射装置结构的跨声速流效应有全面的了解。事实上,发射装置的机械完整性可能会受到冲击波/边界层相互作用的影响,这种相互作用会产生导致俯冲和俯仰力矩的侧向力。设计/方法/方法本文旨在报告用于微卫星专用发射器的金刚石翼型的气动和气动弹性行为的数值和实验研究,特别关注抖振期间的流体/结构相互作用。在跨声速风洞中进行了基于纹影可视化的实验研究,并与基于非定常Reynolds平均Navier-Stokes方法和大涡模拟(LES)方法的数值预测进行了比较。最后通过求解动力学方程,研究了抖振对结构的影响。发现抖振在实验和数值上都得到了揭示。实验突出了激波的三维振荡,就像一面迎风飘扬的旗帜。LES计算确定了一个λ形激波脚宽振荡,它对气动载荷有明显的影响。最后,实验强调了激波从振荡周期到不稳定三维扑动状态转变时的混沌行为。流体结构计算表明,翼型的气动响应倾向于抑制结构振动和减轻抖振的影响。虽然经典超临界型的抖振已经得到了广泛的研究,但这项研究主要集中在金刚石翼型上。此外,还进行了流体结构计算,以指出抖振的影响。
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Numerical and Experimental Investigations of Buffet on a Diamond Airfoil Designed for Space Launcher Applications
Purpose The development of reusable space launchers requires a comprehensive knowledge of transonic flow effects on the launcher structure, such as buffet. Indeed, the mechanical integrity of the launcher can be compromised by shock wave/boundary layer interactions, that induce lateral forces responsible for plunging and pitching moments. Design/methodology/approach This paper aims to report numerical and experimental investigations on the aerodynamic and aeroelastic behavior of a diamond airfoil, designed for microsatellite-dedicated launchers, with a particular interest for the fluid/structure interaction during buffeting. Experimental investigations based on Schlieren visualizations are conducted in a transonic wind tunnel and are then compared with numerical predictions based on unsteady Reynolds averaged Navier–Stokes and large eddy simulation (LES) approaches. The effect of buffeting on the structure is finally studied by solving the equation of the dynamics. Findings Buffeting is both experimentally and numerically revealed. Experiments highlight 3D oscillations of the shock wave in the manner of a wind-flapping flag. LES computations identify a lambda-shaped shock wave foot width oscillations, which noticeably impact aerodynamic loads. At last, the experiments highlight the chaotic behavior of the shock wave as it shifts from an oscillatory periodic to an erratic 3D flapping state. Fluid structure computations show that the aerodynamic response of the airfoil tends to damp the structural vibrations and to mitigate the effect of buffeting. Originality/value While buffeting has been extensively studied for classical supercritical profiles, this study focuses on diamond airfoils. Moreover, a fluid structure computation has been conducted to point out the effect of buffeting.
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