The Influence of Wing Membrane Elasticity on Aerodynamics in a Bat-Inspired Flapping Robot.

IF 3.4 3区 医学 Q1 ENGINEERING, MULTIDISCIPLINARY
Szu-I Yeh, Chia-Hsu Chiang
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Abstract

This study investigates the aerodynamic effects of wing membrane elasticity inspired by bats, which exhibit exceptional maneuverability and stability. By mimicking bat wing folding and flapping motions, a 2-DOF flapping mechanism was developed to examine the impact of wing membrane elasticity. Polydimethylsiloxane (PDMS) membranes with tunable elastic properties were fabricated by adjusting the ratio of the curing agent (B agent), with the 1/50 ratio exhibiting the greatest extensibility and the lowest Young's modulus. Experimental results demonstrate that wing membrane elasticity significantly influences aerodynamic performance. During flapping, increased elasticity led to larger camber changes, enhancing vertical lift through stronger leading-edge vortices, as confirmed by PIV flow field measurements. However, when elasticity became excessively high, as in the 1/50 membrane, the lift benefit diminished, and horizontal force decreased, indicating a trade-off between vertical and horizontal aerodynamic performance. Additionally, the folding mechanism was found to be critical for drag reduction, reducing nearly 50% of negative horizontal forces during flight. By integrating adjustable wing membrane properties and a bioinspired flapping mechanism, this research provides valuable insights into the aerodynamic characteristics of bat flight. These findings not only enhance the understanding of flapping wing aerodynamics but also offer guidance for the design of efficient and agile bioinspired aerial vehicles.

蝙蝠具有卓越的机动性和稳定性,本研究受蝙蝠的启发,研究了翼膜弹性对空气动力学的影响。通过模仿蝙蝠翅膀的折叠和拍打运动,开发了一种 2-DOF 拍打机制,以研究翼膜弹性的影响。通过调整固化剂(B 剂)的比例,制备了具有可调弹性特性的聚二甲基硅氧烷(PDMS)膜,其中 1/50 的比例具有最大的延伸性和最低的杨氏模量。实验结果表明,翼膜弹性对空气动力性能有显著影响。PIV 流场测量证实,在拍打过程中,弹性增加会导致更大的外倾角变化,通过更强的前缘涡流增强垂直升力。然而,当弹性过高时(如 1/50 膜),升力效益减小,水平力下降,这表明垂直和水平气动性能之间存在权衡。此外,研究还发现折叠机制对减少阻力至关重要,可在飞行过程中减少近 50% 的负水平力。通过整合可调翼膜特性和生物启发的拍打机制,这项研究为了解蝙蝠飞行的空气动力特性提供了宝贵的见解。这些发现不仅加深了人们对拍打翼空气动力学的理解,还为设计高效、敏捷的生物启发飞行器提供了指导。
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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