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MULTI-FIDELITY CONCURRENT AERODYNAMIC OPTIMIZATION OF ROTOR BLADES IN HOVER AND FORWARD FLIGHT

机译:悬停和向前飞行中转子叶片的多精度同时气动优化

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Complementary multi-objective strategies adapted to the aerodynamic optimization of helicopter rotor blades in hover and in forward flight are developed. A first competitive strategy is based on Nash Games from game theory, where the objective functions are minimized by virtual players involved in a non-cooperative game. A method is presented to split the design vector into two sub-spaces, defined to be the strategies of the players in charge of the minimization of the primary and the secondary objective functions respectively. This split of territory allows the optimization of the secondary function while causing the least possible degradation of the first one. Alternatively, a cooperative approach based on a generalization of the steepest-descent method to multiple objectives is presented. These methodologies are applied to the optimization of the twist distribution of the model rotor ERATO, with the aim to maximize the Figure of Merit in hover while minimizing the rotor torque coefficient in forward flight. The optimizations are performed in a framework based on high-fidelity evaluations. A multi-fidelity model is proposed and tested, creating a bridge function between the low and high fidelity models. The results demonstrate the potential of these techniques to obtain rotor designs realizing interesting trade-offs.
机译:开发了适用于直升机旋翼叶片在悬停和向前飞行中进行空气动力学优化的互补多目标策略。第一个竞争策略是基于博弈论的Nash游戏,其中非合作游戏中的虚拟玩家将目标功能降至最低。提出了一种将设计矢量划分为两个子空间的方法,分别定义为负责最小化主要目标函数和次要目标函数的参与者的策略。区域划分允许优化次要功能,同时使第一个功能的损坏降到最低。替代地,提出了一种基于最速下降方法到多个目标的推广的合作方法。这些方法应用于优化模型ERATO的扭曲分布,目的是最大化悬停时的品质因数,同时最小化前向飞行中的转子扭矩系数。在基于高保真评估的框架中执行优化。提出并测试了多保真度模型,从而在低保真度模型和高保真度模型之间建立了桥梁功能。结果证明了这些技术在获得实现有趣折衷的转子设计方面的潜力。

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