A Worm-like Soft Robot Based on Adhesion-Controlled Electrohydraulic Actuators.

IF 3.4 3区 医学 Q1 ENGINEERING, MULTIDISCIPLINARY Biomimetics Pub Date : 2024-12-20 DOI:10.3390/biomimetics9120776
Yangzhuo Wu, Zhe Sun, Yu Xiang, Jieliang Zhao
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Abstract

Worms are organisms characterized by simple structures, low energy consumption, and stable movement. Inspired by these characteristics, worm-like soft robots demonstrate exceptional adaptability to unstructured environments, attracting considerable interest in the field of biomimetic engineering. The primary challenge currently involves improving the motion performance of worm-like robots from the perspectives of actuation and anchoring. In this study, a single segment worm-like soft robot driven by electrohydraulic actuators is proposed. The robot consists of a soft actuation module and two symmetrical anchoring modules. The actuation modules enable multi-degree-of-freedom motion of the robot using symmetric dual-electrode electrohydraulic actuators, while the anchoring modules provide active friction control through bistable electrohydraulic actuators. A hierarchical microstructure design is used for the biomimetic adhesive surface, enabling rapid, reversible, and stable attachment to and detachment from different surfaces, thereby improving the robot's surface anchoring performance. Experimental results show that the designed robot can perform peristaltic and bending motions similar to a worm. It achieves rapid bidirectional propulsion on both dry and wet surfaces, with a maximum speed of 10.36 mm/s (over 6 velocity/length ratio (min-1)).

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基于黏附控制电液作动器的蠕虫状软体机器人。
蠕虫是一种结构简单、能量消耗低、运动稳定的生物。受这些特性的启发,蠕虫类软体机器人表现出对非结构化环境的卓越适应性,引起了仿生工程领域的极大兴趣。目前的主要挑战是从驱动和锚定的角度来改进类蠕虫机器人的运动性能。本文提出了一种由电液作动器驱动的单节类蠕虫软机器人。该机器人由一个软驱动模块和两个对称的锚定模块组成。驱动模块采用对称双电极电液致动器实现机器人多自由度运动,锚定模块采用双稳态电液致动器实现主动摩擦控制。仿生粘接表面采用层次化微结构设计,能够快速、可逆、稳定地附着和脱离不同表面,从而提高机器人的表面锚定性能。实验结果表明,所设计的机器人可以进行类似蠕虫的蠕动和弯曲运动。它可以在干燥和潮湿表面上实现快速双向推进,最大速度为10.36毫米/秒(超过6速度/长度比(min-1))。
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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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