Passive Vibration-Driven Locomotion
Anna Zigelman, Gilad Israel, Yizhar Or, and Yuli Starosvetsky

TL;DR
This paper explores a passive vibration-driven system where a capsule with an internal pendulum moves horizontally by resonantly harvesting energy from vertical environmental vibrations, without active propulsion.
Contribution
It introduces a novel passive locomotion mechanism based on resonant energy transfer and analyzes its dynamics using asymptotic and numerical methods.
Findings
Resonant regimes enable unidirectional capsule motion.
Analytical models match numerical simulations well.
Optimal locomotion occurs near parametric resonances.
Abstract
We investigate a concept of passive, vibration-driven locomotion, in which a mechanical system achieves horizontal self-propulsion by resonantly harvesting energy from vertical environmental excitations (e.g. ambient vibrations of underwater pipelines), without a direct propulsive actuation. The system consists of a capsule containing an internal pendulum attached to its base mounted on a vertically vibrating substrate. The underlying locomotion mechanism relies on resonant energy transfer from the vertically vibrating substrate to the internal oscillatory element. Under appropriate forcing conditions and in the presence of asymmetric dissipative interactions, this internal oscillator induces a net unidirectional motion of the capsule. The analysis focuses on regimes of progressive motion arising in the vicinity of parametric resonances. Two asymptotic limits are considered:…
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Taxonomy
TopicsMicro and Nano Robotics · Biomimetic flight and propulsion mechanisms · Soft Robotics and Applications
