Tuning collective actuation of active solids by optimizing activity localization
Davi Lazzari, Olivier Dauchot, Carolina Brito

TL;DR
This paper explores how localizing activity in active elastic lattices influences collective actuation, using numerical simulations and an optimization algorithm to enhance targeted vibrational mode control in ordered and disordered systems.
Contribution
It introduces an algorithm to optimize activity localization for controlling vibrational modes in active solids, outperforming manual methods especially in disordered lattices.
Findings
Algorithm effectively maximizes targeted mode energy distribution.
Disordered lattices benefit more from the optimization algorithm than ordered ones.
A design principle based on mode susceptibility guides actuation control.
Abstract
Active solids, more specifically elastic lattices embedded with polar active units, exhibit collective actuation when the elasto-active feedback, generically present in such systems, exceeds some critical value. The dynamics then condensates on a small fraction of the vibrational modes, the selection of which obeys non trivial rules rooted in the nonlinear part of the dynamics. So far the complexity of the selection mechanism has limited the design of specific actuation. Here we investigate numerically how, localizing the activity on a fraction of modes, one can select non-trivial collective actuation. We perform numerical simulations of an agent based model on triangular and disordered lattices and vary the concentration and the localization of the active agents on the lattices nodes. Both contribute to the distribution of the elastic energy across the modes. We then introduce an…
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