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Multiobjective-Multipoint Rotor Blade Optimization in Forward Flight Conditions Using Surrogate-Assisted Memetic Algorithms

机译:使用代理辅助模因算法的正向飞行条件下多目标多点转子叶片优化

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A multi-objective and multi-point optimization framework for helicopter rotor performance is presented. This framework is based on a multi-objective surrogate-assisted memetic algorithm which is coupled with two aerodynamic solvers for rotor performance prediction: a lifting-line comprehensive tool and a more advanced three-dimensional panel method coupled with a constant vorticity contour free-wake vortex model. The purpose is to improve aerodynamic performance of helicopter main rotors in multipoint forward flight operations by searching for optimal blade shape. The optimization procedure and the memetic algorithm are first described. Afterwards, they are applied to optimization of several features of a blade, like twist, chord and sweep and the outcomes from those optimizations are discussed from an aerodynamic viewpoint. The advantages of the proposed optimization procedure are finally illustrated and compared to more traditional techniques.
机译:提出了直升机旋翼性能的多目标多点优化框架。该框架基于多目标代理辅助模因算法,该算法与两个用于转子性能预测的空气动力学求解器相结合:提升线综合工具和更先进的三维面板方法,并具有恒定的涡度轮廓自由苏醒涡模型。目的是通过寻找最佳叶片形状来改善多点前向飞行操作中直升机主旋翼的空气动力性能。首先描述了优化过程和模因算法。然后,将它们应用于叶片的几个特征的优化,例如扭曲,弦和掠角,并从空气动力学的角度讨论了这些优化的结果。最后说明了所提出的优化程序的优点,并将其与更多传统技术进行了比较。

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