The Structural Design and Optimization of a Novel Independently Driven Bionic Ornithopter.

IF 3.4 3区 医学 Q1 ENGINEERING, MULTIDISCIPLINARY
Mouhui Dai, Ruien Wu, Mingxuan Ye, Kai Gao, Bin Chen, Xinwang Tao, Zhijie Fan
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Abstract

To address the limitations of traditional single-motor bionic ornithopters in terms of environmental adaptability and lift capacity, this study proposes a dual-motor independently driven system utilizing a cross-shaft single-gear crank mechanism to achieve adjustable flap speed and wing frequency, thereby enabling asymmetric flapping for enhanced environmental adaptability. The design integrates a two-stage reduction gear group to optimize torque transmission and an S1223 high-lift airfoil to improve aerodynamic efficiency. Multiphysics simulations combining computational fluid dynamics (CFD) and finite element analysis (FEA) demonstrate that, under flapping frequencies of 1-3.45 Hz and wind speeds of 1.2-3 m/s, the optimized model achieves 50% and 60% improvements in lift and thrust coefficients, respectively, compared to the baseline. Concurrently, peak stress in critical components (e.g., cam disks and wing rods) is reduced by 37% to 41 MPa, with significantly improved stress uniformity. These results validate the dual-motor system's capability to dynamically adapt to turbulent airflow through the precise control of wing kinematics, offering innovative solutions for applications such as aerial inspection and precision agriculture.

一种新型自主驱动仿生扑翼机的结构设计与优化。
针对传统单电机仿生扑翼机在环境适应性和升力能力方面的局限性,本研究提出了一种双电机独立驱动系统,利用交叉轴单齿轮曲柄机构实现扑翼速度和振频可调,从而实现非对称扑翼,增强环境适应性。该设计集成了一个两级减速齿轮组,以优化扭矩传输和一个S1223高升力翼型,以提高空气动力学效率。计算流体力学(CFD)和有限元分析(FEA)相结合的多物理场模拟表明,在1 ~ 3.45 Hz的扑翼频率和1.2 ~ 3 m/s的风速下,优化模型的升力系数和推力系数分别比基线提高了50%和60%。同时,关键部件(如凸轮盘和翼杆)的峰值应力降低了37%,降至41 MPa,应力均匀性显著提高。这些结果验证了双电机系统通过精确控制机翼运动学来动态适应湍流气流的能力,为航空检测和精准农业等应用提供了创新的解决方案。
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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