Designing novel carangiform fish robots with undulating hair clip mechanisms

鱼类运动 推力 机器人 软机器人 鱼 机制(生物学) 机器人学 计算机科学 适应性 模拟 双稳态 工程类 职位(财务) 滑轮 控制理论(社会学) 人工智能 机器人运动 仿生学 丝带 成交(房地产) 软质材料 鱼翅 控制工程 顺应机制 水准点(测量) 领域(数学) 执行机构
作者
Zechen Xiong,Liqi Chen,Sarah Li Wilkinson,Md Raf E Ul Shougat,Hod Lipson
出处
期刊: [Springer Science+Business Media]
卷期号:4 (1) 被引量:1
标识
DOI:10.1038/s44182-025-00053-0
摘要

Bi- and multistable mechanisms have gained significant attention in the field of soft and compliant robotics due to their distinctive mechanical and dynamic properties, which enable complex motion, adaptability, and energy-efficient actuation for various applications. This study investigates the Hair Clip Mechanism (HCM), defined as a kinked ribbon with its two extremities pinned together, analogous to a snap hair clip. While previous studies have explored similar concepts, they have not specifically investigated the snapping behavior of hair clip-like mechanisms as robotic actuators, leaving a critical gap in the understanding and application of this unique bistable structure. This paper systematically analyzes the static and dynamic properties of a generalized HCM, validates the theoretical models through experimentation, and demonstrates its application in the design of two distinct versions of carangiform fish robots. The first, a tethered pneumatic fish robot, achieves a swimming speed of 1.40 body lengths per second (BL/s) or 26.54 cm/s, approximately twice the velocity of a conventionally designed counterpart. The second, an untethered motor-driven HCM-based fish robot, attains a speed of 2.03 BL/s or 42.6 cm/s, thrust of 245.66 mN, cost of transport (CoT) of 5.14, energy efficiency of 3.89%, and thrust-to-power ratio of 79.46 mN/W at 3 Hz undulation. These metrics position it among the fastest soft robotic swimmers reported. Notably, its performance is 40% (in BL/s) higher than that of the previously documented record-holding design. These findings highlight the potential of HCM-based structures to enhance the adaptability and performance of soft robotic systems, paving the way for innovative applications in bio-inspired locomotion and compliant mechanism design.
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