A Biomimetic Flapping Mechanism for Insect Robots Driven by Indirect Flight Muscles.

IF 3.4 3区 医学 Q1 ENGINEERING, MULTIDISCIPLINARY
Yuma Shiokawa, Renke Liu, Hideyuki Sawada
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Abstract

Insect flight mechanisms are highly efficient and involve complex hinge structures that facilitate amplified wing movement through thoracic deformation. However, in the field of flapping-wing robots, the replication of thoracic skeletal structures has received little attention. In this study, we propose and compare two different hinge models inspired by insect flight: an elastic hinge model (EHM) and an axle hinge model (AHM). Both models were fabricated using 3D printing technology using PLA material. The EHM incorporates flexible structures in both the hinge and lateral scutum regions, allowing for deformation-driven wing motion. In contrast, the AHM employs metal pins in the hinge region to reproduce joint-like articulation, while still permitting elastic deformation in the lateral scutum. To evaluate their performance, we employed an SMA actuator to generate flapping motion, and measured the wing displacement, flapping frequency, and exoskeletal deformation. The experimental results demonstrate that the EHM achieves wing flapping through overall structural flexibility, whereas the AHM provides more defined hinge motion while maintaining exoskeletal elasticity. These findings contribute to our understanding of the role of hinge mechanics in bioinspired flapping-wing robots. Future research will focus on optimizing these mechanisms for higher frequency operation, weight reduction, and better energy efficiency.

间接飞行肌肉驱动昆虫机器人的仿生扑动机构。
昆虫的飞行机制非常高效,涉及复杂的铰链结构,通过胸部变形促进翅膀的放大运动。然而,在扑翼机器人领域,胸骨结构的复制却很少受到关注。在这项研究中,我们提出并比较了受昆虫飞行启发的两种不同铰链模型:弹性铰链模型(EHM)和轴铰模型(AHM)。这两个模型都是使用PLA材料使用3D打印技术制造的。EHM在铰链和侧骨区都采用了灵活的结构,允许变形驱动的机翼运动。相比之下,AHM在铰链区域使用金属销钉来重现关节样的关节,同时仍然允许外侧骨瓣的弹性变形。为了评估其性能,我们采用SMA致动器产生扑动运动,并测量了机翼位移、扑动频率和外骨骼变形。实验结果表明,EHM通过整体结构的灵活性实现机翼扑动,而AHM在保持外骨骼弹性的同时提供更明确的铰链运动。这些发现有助于我们理解铰链力学在仿生扑翼机器人中的作用。未来的研究将集中于优化这些机制,以实现更高频率的操作、减轻重量和更好的能源效率。
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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