Numerical Simulation of a Bird-Inspired UAV Which Turns Without a Tail Through Proverse Yaw.

IF 3.4 3区 医学 Q1 ENGINEERING, MULTIDISCIPLINARY
Wee-Beng Tay, Timothy Shawn Jie-Sheng Chong, Jia-Qiang Chan, Woei-Leong Chan, Boo-Cheong Khoo
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Abstract

This study numerically explores a bird-inspired tail-less unmanned aerial vehicle (UAV) design which can turn through proverse yaw by using a bell-shaped spanload wing configuration. The research methodology consists of two phases. In the first phase, the objective is to use computational fluid dynamics (CFD) simulations to validate that the bell-shaped spanload wing configuration produces proverse yaw, instead of adverse yaw, similar to other typical wing configurations. This allows the UAV to turn without a tail. The solver used is OpenFOAM and a special self-written routine is used to allow the grid to move together with the UAV, which has six degrees-of-freedom (6DOFs) to translate and rotate when its ailerons deflect after reaching steady motion. In the second phase, we investigate the effect of the sweep angle on the proverse yaw. Results show that proverse yaw is indeed produced due to the bell-shaped spanload wing configuration, as CFD simulation shows the UAV turning after aileron deflection. The effect of the sweep angle is more profound on the proverse yaw as simulations show that increasing the sweep angle by 10° increases the turning effect slightly, but decreasing it by 10° instead results in adverse yaw. These findings will have important implications for improving aircraft efficiencies and the development of wing designs.

Bird-Inspired无人机无尾偏航转向的数值模拟。
本文对一种采用钟形展向载荷机翼结构的受鸟启发的无尾无人机设计进行了数值研究。研究方法分为两个阶段。在第一阶段,目标是使用计算流体动力学(CFD)模拟来验证钟形展向载荷机翼结构产生良好的偏航,而不是像其他典型机翼结构那样产生不利的偏航。这允许无人机在没有尾翼的情况下转弯。使用的求解器是OpenFOAM和一个特殊的自编写程序,用于允许网格与无人机一起移动,当副翼在达到稳定运动后偏转时,它具有六个自由度(6DOFs)来平移和旋转。在第二阶段,我们研究了掠角对既定偏航的影响。结果表明,钟形展向载荷机翼构型确实产生了众所周知的偏航,CFD仿真显示了副翼偏转后无人机的转向。后掠角对正常偏航的影响更为深远,仿真结果表明,后掠角每增大10°,转向效果略有提高,而后掠角每减小10°,转向效果反而会变差。这些发现将对提高飞机效率和发展机翼设计具有重要意义。
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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来源期刊
Biomimetics
Biomimetics Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
3.50
自引率
11.10%
发文量
189
审稿时长
11 weeks
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