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Numerical and experimental investigations of buffet on a diamond airfoil designed for space launcher applications

机译:用于空间发射器应用的钻石翼型上自助餐的数值和实验研究

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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.
机译:目的 - 可重复使用的空间发射器的开发需要对发射器结构(例如自助式)的跨音流量效果全面了解。实际上,发射器的机械完整性可以通过冲击波/边界层相互作用来损害,该相互作用诱导负责进入和俯仰时刻的横向力。设计/方法/方法 - 本文旨在报告对微卫星专用发射器设计的金刚石翼型的空气动力和空气弹性行为的数值和试验研究,特别涉及在抖动过程中的流体/结构相互作用。基于Schlieren可视化的实验研究在跨音隧道中进行,然后与基于非定常Reynolds的数值预测进行比较,基于Navier-Stokes和大涡模拟(LES)方法。最后通过求解动力学的等式来研究自腹部对结构的影响。调查结果 - 自动和数值透露。实验突出了风拍标志的方式突出了冲击波的3D振荡。 LES计算识别λ形冲击波足宽振荡,可显着影响空气动力载荷。最后,实验突出了冲击波的混沌行为,因为它从振荡周期转移到不稳定的3D拍摄状态。流体结构计算表明,翼型的空气动力学响应倾向于抑制结构振动并减轻施加的效果。本研究专注于仿古超临界型材的自主性/​​价值 - 在广泛研究古典超临界型材上,专注于金刚石翼型。此外,已经进行了流体结构计算以指出频率的效果。

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