Aerodynamic Performance Evaluation of a Coaxial Octocopter Based on Taguchi Method

Evren Geydirici, Kuzey C. Derman, S. Cadirci
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Abstract

The design and optimization of propellers for unmanned aerial vehicles (UAVs) are essential for optimal performance and high efficiency. This study presents a numerical investigation of the aerodynamic performance of coaxial octocopters using openfoam as flow solver. While the aerodynamic performance is affected by many parameters, the current study focuses on four main parameters: the propeller type, the horizontal and vertical separation distances between the propellers, and the ratio between the rotational speeds of the upper propeller and the lower one. To find the minimum number of simulations to be performed within defined limits, and reduce the number of computational fluid dynamics (CFD) simulations that cause high computational cost, Taguchi method was employed. In this study, average thrusts were calculated for the preliminary design of the octocopter by examining an isolated single propeller and dual- and quad propellers taking their rotation directions into account. The Taguchi design matrix revealed that for all cases investigated, the propeller type is the most dominant design parameter followed by the velocity ratio of the upper propeller to the lower one (nU/nL) and vertical (z/D) and horizontal (ℓ/D) orientation of coaxial propellers. However, it was shown that ℓ/D and z/D may play a significant role in vortex formation and pressure fluctuations which should be considered as design criteria for coaxial octocopters associated with flow attributes. The results showed that the aerodynamic performance parameters are not dependent on all the selected parameters, and demonstrated that the selected propeller designs improved aerodynamic performance.
基于田口方法的同轴八旋翼飞行器空气动力性能评估
无人驾驶飞行器(UAV)螺旋桨的设计和优化对于实现最佳性能和高效率至关重要。本研究使用 openfoam 作为流动求解器,对同轴八旋翼飞行器的气动性能进行了数值研究。虽然气动性能受许多参数的影响,但本研究主要关注四个主要参数:螺旋桨类型、螺旋桨之间的水平和垂直分离距离以及上部螺旋桨和下部螺旋桨的转速比。为了在规定范围内找到最少的模拟次数,并减少导致计算成本过高的计算流体动力学(CFD)模拟次数,采用了田口方法。在这项研究中,通过检查孤立的单螺旋桨以及考虑到旋转方向的双螺旋桨和四螺旋桨,计算了八旋翼飞行器初步设计的平均推力。田口设计矩阵显示,在所有研究案例中,螺旋桨类型是最主要的设计参数,其次是上螺旋桨与下螺旋桨的速度比(nU/nL)以及同轴螺旋桨的垂直(z/D)和水平(ℓ/D)方向。然而,研究表明,ℓ/D 和 z/D 在涡流形成和压力波动方面可能起着重要作用,应将其作为与流动属性相关的同轴八旋翼机的设计标准。结果表明,气动性能参数并不依赖于所有选定的参数,并证明选定的螺旋桨设计改善了气动性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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