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Aerodynamic blade design with multi-objective optimization for a tiltrotor aircraft

机译:倾转旋翼飞机的多目标优化气动叶片设计

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Purpose - The purpose of this paper is to present the aerodynamic blade design of a tiltwing aircraft with a multi-objective optimization procedure. The aerodynamic design of tiltrotor blades is a very challenging task in the project of this type of aircraft. Design/methodology/approach - Tiltrotor blades have to give good performance both in helicopter and aeroplane modes. According to the design parameters (the chords, the twists and the airfoils along the blade), as the optimization objectives are different from one operating condition to another, the blade is the result of a multi-objective constrained optimization based on a controlled elitist genetic algorithm founded on the NSGA-Ⅱ algorithm. The optimization process uses a BEMT solver to compute rotor performance. To avoid negative effects due to compressibility losses in aeroplane mode, the blade shape has been refined following the normal Mach number criterion. Findings - It has been found that the optimized rotor blade gives good performance both in terms of figure of merit and propulsive efficiency if compared with experimental data of existing rotor (ERICA tiltrotor) and propeller (NACA high-speed propeller). Practical implications - The optimization procedure described in this paper for the design of tiltrotor blades can be efficiently used for the aerodynamic design of helicopter rotors and aircraft propellers of all typology. Originality/value - In this work, advanced methodologies have been used for the aerodynamics design of a proprotor optimized for an aircraft which belongs to the innovative typology of high-performance tiltwing tiltrotor aircraft.
机译:目的-本文的目的是介绍一种具有多目标优化程序的斜翼飞机的气动叶片设计。在这种飞机的项目中,倾转旋翼叶片的空气动力学设计是一项非常具有挑战性的任务。设计/方法/方法-倾转叶片必须在直升机和飞机模式下均具有良好的性能。根据设计参数(沿着叶片的弦,扭曲和翼型),由于优化目标因一个工况而异,因此叶片是基于受控精英遗传算法的多目标约束优化的结果该算法基于NSGA-Ⅱ算法。优化过程使用BEMT求解器来计算转子性能。为了避免由于飞机模式下的压缩性损失而造成的负面影响,叶片形状已按照正常的马赫数准则进行了改进。发现-与现有转子(ERICA倾斜转子)和螺旋桨(NACA高速螺旋桨)的实验数据相比,优化后的叶片在品质因数和推进效率方面均具有良好的性能。实际意义-本文介绍的用于倾转旋翼桨叶设计的优化程序可以有效地用于各种类型的直升机旋翼和飞机螺旋桨的空气动力学设计。独创性/价值-在这项工作中,先进的方法论已用于为飞机优化的proprotor的空气动力学设计,该飞机属于高性能倾斜翼式倾转旋翼飞机的创新类型。

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