Mechanism of the Nonequilibrium Phase Transition in Self-Propelled Particles with Alignment

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Yan, Ruizhe, Su, Jie, Wang, Jin
Format: Preprint
Published: 2024
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866916476928131072
author Yan, Ruizhe
Su, Jie
Wang, Jin
author_facet Yan, Ruizhe
Su, Jie
Wang, Jin
contents Self-propelled particles with alignment, displaying ordered collective motions such as swarming, can be investigated by the well-known Vicsek model. However, challenges still remain regarding the nature of the associated phase transition. Here, we use the landscape-flux approach combined with the coarse-grained mapping method to reveal the underlying mechanism of the continuous or discontinuous order-disorder nonequilibrium phase transition in Vicsek model systems featuring diverse noise characteristics. It is found that the nonequilibrium flux inside the landscape in the density-alignment degree phase space always rotates counterclockwise, and tends to delocalize or destabilize the point attractor states, providing the dynamical driving force for altering the landscape shape and the system state. Furthermore, the variations in the averaged flux and entropy production rate exhibit pronounced differences across various noise types. This not only helps to reveal the dynamical and thermodynamical mechanisms of the order-disorder transition but also offers a useful tool to recognize the continuity of the transition. Our findings present a novel perspective for exploring nonequilibrium phase transition behaviors and other collective motions in various complex systems.
format Preprint
id arxiv_https___arxiv_org_abs_2411_06818
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Mechanism of the Nonequilibrium Phase Transition in Self-Propelled Particles with Alignment
Yan, Ruizhe
Su, Jie
Wang, Jin
Statistical Mechanics
Soft Condensed Matter
Self-propelled particles with alignment, displaying ordered collective motions such as swarming, can be investigated by the well-known Vicsek model. However, challenges still remain regarding the nature of the associated phase transition. Here, we use the landscape-flux approach combined with the coarse-grained mapping method to reveal the underlying mechanism of the continuous or discontinuous order-disorder nonequilibrium phase transition in Vicsek model systems featuring diverse noise characteristics. It is found that the nonequilibrium flux inside the landscape in the density-alignment degree phase space always rotates counterclockwise, and tends to delocalize or destabilize the point attractor states, providing the dynamical driving force for altering the landscape shape and the system state. Furthermore, the variations in the averaged flux and entropy production rate exhibit pronounced differences across various noise types. This not only helps to reveal the dynamical and thermodynamical mechanisms of the order-disorder transition but also offers a useful tool to recognize the continuity of the transition. Our findings present a novel perspective for exploring nonequilibrium phase transition behaviors and other collective motions in various complex systems.
title Mechanism of the Nonequilibrium Phase Transition in Self-Propelled Particles with Alignment
topic Statistical Mechanics
Soft Condensed Matter
url https://arxiv.org/abs/2411.06818