Controlled Locomotion of a Minimal Soft Structure by Stick-Slip Nonlinearity
arXiv:2412.07343 · doi:10.1103/PhysRevLett.133.238301
Abstract
We present a locomotion mechanism that uses the stick-slip transition of a soft passive structure with an internal mechanical resonance. The structure is harmonically driven by a global vertical shaking and, because of its resonance dephasing and the threshold response of stick-slip transition, it can either move forward or backward. We establish a relation for the motion acceleration threshold that we experimentally validate. We identify a non-trivial regime close to the resonance with a velocity inversion for a constant excitation frequency and an increasing driving amplitude. We finally show that we can achieve a controlled multi-modal motion by combining multiple internal resonances.
References in corpus (6)
- Swarming and swirling in self-propelled polar granular rods
- Sidewinding with minimal slip: Snake and robot ascent of sandy slopes
- Swarming, swirling and stasis in sequestered bristle-bots
- Multi-legged matter transport: a framework for locomotion on noisy landscapes
- Directional motion of vibrated sessile drops : a quantitative study
- Bouncing trimer: a random self-propelled particle, chaos and periodical motions