Emergent collective behavior of cohesive, aligning particles

Fuente: arXiv
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Main Authors: Shea, Jeanine, Stark, Holger
Format: Preprint
Published: 2025
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author Shea, Jeanine
Stark, Holger
author_facet Shea, Jeanine
Stark, Holger
contents Collective behavior is all around us, from flocks of birds to schools of fish. These systems are immensely complex, which makes it pertinent to study their behavior through minimal models. We introduce such a minimal model for cohesive and aligning self-propelled particles in which group cohesion is established through additive, non-reciprocal torques. These torques cause constituents to effectively turn towards one another. We additionally incorporate an alignment torque, which competes with the cohesive torque in the same spatial range. By changing the strength and range of these torque interactions, we uncover six states which we distinguish via their static and dynamic properties: a disperse state, a multiple worm state, a line state, a persistent worm state, a rotary worm state, and an aster state. Their occurrence strongly depends on initial conditions and stochasticity, so the model exhibits multistabilities. A number of the states exhibit collective dynamics which are reminiscent of those seen in nature.
format Preprint
id arxiv_https___arxiv_org_abs_2501_16994
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Emergent collective behavior of cohesive, aligning particles
Shea, Jeanine
Stark, Holger
Soft Condensed Matter
Collective behavior is all around us, from flocks of birds to schools of fish. These systems are immensely complex, which makes it pertinent to study their behavior through minimal models. We introduce such a minimal model for cohesive and aligning self-propelled particles in which group cohesion is established through additive, non-reciprocal torques. These torques cause constituents to effectively turn towards one another. We additionally incorporate an alignment torque, which competes with the cohesive torque in the same spatial range. By changing the strength and range of these torque interactions, we uncover six states which we distinguish via their static and dynamic properties: a disperse state, a multiple worm state, a line state, a persistent worm state, a rotary worm state, and an aster state. Their occurrence strongly depends on initial conditions and stochasticity, so the model exhibits multistabilities. A number of the states exhibit collective dynamics which are reminiscent of those seen in nature.
title Emergent collective behavior of cohesive, aligning particles
topic Soft Condensed Matter
url https://arxiv.org/abs/2501.16994