多稳态
软机器人
执行机构
计算机科学
自由度(物理和化学)
灵活性(工程)
机器人学
弯曲
充气的
双稳态
机器人
理论(学习稳定性)
控制理论(社会学)
人工智能
控制工程
拓扑(电路)
机械工程
材料科学
物理
控制(管理)
工程类
结构工程
电气工程
非线性系统
数学
统计
光电子学
量子力学
机器学习
作者
Benyamin Shahryari,Hossein Mofatteh,Arian Sargazi,Armin Mirabolghasemi,David Meger,Abdolhamid Akbarzadeh
标识
DOI:10.1002/adfm.202407651
摘要
Abstract Inflatable multistable materials have significantly advanced the design of shape‐preserving soft robotic arms, offering substantial benefits in terms of shape adaptability, energy efficiency, and safety, ensuring operational reliability even in the event of sudden power loss. However, existing strategies for realizing multistable arms often limit themselves to a single mode of multistability, commonly with rotationally symmetric designs favoring extension stability and asymmetric designs inducing bending stability. To address the limitation, this study introduces a pioneering platform termed multimodal multistability that utilizes geometrical frustration. A single cylindrical symmetric cell, designed for extension bistability, could achieve frustrated multistable states in bending by controlling the cell with multiple degrees of freedom incorporated pneumatic actuator. This platform extends the spectrum of attainable stable trajectories while preserving essential attributes of arms, such as load‐bearability, programmability, and reversibility of shape changes. Leveraging a pneumatic system with four degrees of freedom for pressure control, not only enables capturing previously unexplored stable configurations in mechanical metastructures but also allows for the control of their deformation modes. With applications spanning space exploration, medical instruments, and rescue missions, the multimodal multistability promises unparalleled flexibility and efficiency in the design and operation of soft robots.
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