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Topology, dynamics, and control of a muscle-architected soft arm

Arman Tekinalp, Noel Naughton, Seung Hyun Kim, Udit Halder, Rhanor Gillette, Prashant G. Mehta, William M. Kier, Mattia Gazzola

发表年份
2024
引用次数
13

摘要

Muscular hydrostats, such as octopus arms or elephant trunks, lack bones entirely, endowing them with exceptional dexterity and reconfigurability. Key to their unmatched ability to control nearly infinite degrees of freedom is the architecture into which muscle fibers are weaved. Their arrangement is, effectively, the instantiation of a sophisticated mechanical program that mediates, and likely facilitates, the control and realization of complex, dynamic morphological reconfigurations. Here, by combining medical imaging, biomechanical data, live behavioral experiments, and numerical simulations, an octopus-inspired arm made of [Formula: see text]200 continuous muscle groups is synthesized, exposing "mechanically intelligent" design and control principles broadly pertinent to dynamics and robotics. Such principles are mathematically understood in terms of storage, transport, and conversion of topological quantities, effected into complex 3D motions via simple muscle activation templates. These are in turn composed into higher-level control strategies that, compounded by the arm's compliance, are demonstrated across challenging manipulation tasks, revealing surprising simplicity and robustness.

关键词

ReconfigurabilityRobustness (evolution)Soft roboticsComputer scienceMechatronicsRoboticsTemplateRobotic armTopology (electrical circuits)Artificial intelligence

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