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Lift maximization with uncertainties for the optimization of high-lift devices

机译:具有不确定性的提升最大化,以优化高提升设备

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In this paper, the aerodynamic shape optimization problems with uncertain operating conditions have been addressed. After a review of robust control theory and the possible approaches to take into account uncertainties, the use of Taguchi robust design methods in order to overcome single point design problems in aerodynamics is proposed. Under the Taguchi concept, a design with uncertainties is converted into an optimization problem with two objectives which are the mean performance and its variance, so that the solutions are as less sensitive to the uncertainty of the input parameters as possible. Furthermore, the modified non-dominated sorting genetic algorithms are used to capture a set of compromised solutions (Pareto front) between these two objectives. The flow field is analyzed by Navier-Stokes computation using an unstructured mesh. In order to reduce the number of expensive evaluations of the fitness function a response surface modeling is employed to estimate the fitness value using the polynomial approximation model. During the solution of the optimization problem, a semi-torsional spring analogy is used for the adaption of the computational mesh to all the obtained geometrical configurations. The proposed approach is applied to the robust optimization of the 2D high-lift devices of a business aircraft by maximizing the mean and minimizing the variance of the lift coefficients with uncertain free-stream angle of attack at landing flight condition.
机译:在本文中,已经解决了具有不确定运行条件的空气动力学形状优化问题。在回顾了鲁棒控制理论和考虑不确定性的可能方法之后,提出了使用Taguchi鲁棒设计方法来克服空气动力学中的单点设计问题的方法。在Taguchi概念下,具有不确定性的设计被转换为具有两个目标的优化问题,即平均性能及其方差,因此解决方案对输入参数的不确定性越不敏感。此外,修改后的非支配排序遗传算法用于捕获这两个目标之间的一组折衷解(Pareto前沿)。通过使用非结构化网格的Navier-Stokes计算来分析流场。为了减少适应度函数的昂贵评估,使用响应表面模型使用多项式逼近模型来评估适应度值。在解决优化问题的过程中,将半扭转弹簧类比用于使计算网格适应所有获得的几何构型。通过在落地飞行条件下具有不确定的自由流攻角的情况下,最大化平均值并最小化升力系数的方差,将所提出的方法应用于公务飞机的2D高升力设备的鲁棒优化。

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