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Stochastic nonlinear aeroelastic analysis of a supersonic lifting surface using an adaptive spectral method

机译:超音速升降面的随机非线性气动弹性分析的自适应谱方法

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摘要

An adaptive stochastic spectral projection method is deployed for the uncertainty quantification in limit-cycle oscillations of an elastically mounted two-dimensional lifting surface in a supersonic flow field. Variabilities in the structural parameters are propagated in the aeroelastic system which accounts for nonlinear restoring force and moment by means of hardening cubic springs. The physical nonlinearities promote sharp and sudden flutter onset for small change of the reduced velocity. In a stochastic context, this behavior translates to steep solution gradients developing in the parametric space. A remedy is to expand the stochastic response of the airfoil on a piecewise generalized polynomial chaos basis. Accurate approximation andaffordable computational costs are obtained using sensitivity-based adaptivity for various types of supersonic stochastic responses depending on the selected values of the Mach number on the bifurcation map. Sensitivity analysis via Sobol indices shows how the probability density function of the peak pitch amplitude responds to combined uncertainties: e.g. the elastic axis location, torsional stiffness and flap angle. We believe that this work demonstrates the capability and flexibility of the approach for more reliable predictions of realistic aeroelastic systems subject to a moderate number of uncertainties.
机译:为了在超声速流场中弹性安装的二维提升面的极限循环振荡中的不确定性量化,采用了一种自适应随机频谱投影方法。结构参数的变化在气动系统中传播,该系统通过硬化立方弹簧来解决非线性恢复力和力矩。物理非线性促进急剧和突然的颤动发作,从而减小速度的微小变化。在随机上下文中,此行为转化为在参数空间中形成的陡峭的解决方案梯度。一种解决方法是在分段广义多项式混沌基础上扩展机翼的随机响应。根据分叉图上马赫数的选定值,对各种类型的超音速随机响应使用基于灵敏度的适应性,可以获得准确的近似值和可承受的计算成本。通过Sobol指数进行的灵敏度分析显示了峰值音高幅度的概率密度函数如何响应组合的不确定性:弹性轴的位置,扭转刚度和襟翼角度。我们认为,这项工作证明了该方法的能力和灵活性,可以在受到中等程度不确定性的情况下更可靠地预测实际的气动弹性系统。

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