Phase Transitions, Hysteresis, and Hyperbolicity for Self-Organized Alignment Dynamics

被引:0
|
作者
Pierre Degond
Amic Frouvelle
Jian-Guo Liu
机构
[1] Université de Toulouse,UPS, INSA, UT1, UTM, Institut de Mathématiques de Toulouse
[2] Institut de Mathématiques de Toulouse UMR 5219,CNRS
[3] Université Paris-Dauphine,CEREMADE, UMR CNRS 7534
[4] Duke University,Department of Physics
[5] Duke University,Department of Mathematics
来源
Archive for Rational Mechanics and Analysis | 2015年 / 216卷
关键词
Phase Transition; Critical Exponent; Noise Intensity; Order Phase Transition; Macroscopic Model;
D O I
暂无
中图分类号
学科分类号
摘要
We provide a complete and rigorous description of phase transitions for kinetic models of self-propelled particles interacting through alignment. These models exhibit a competition between alignment and noise. Both the alignment frequency and noise intensity depend on a measure of the local alignment. We show that, in the spatially homogeneous case, the phase transition features (number and nature of equilibria, stability, convergence rate, phase diagram, hysteresis) are totally encoded in how the ratio between the alignment and noise intensities depend on the local alignment. In the spatially inhomogeneous case, we derive the macroscopic models associated to the stable equilibria and classify their hyperbolicity according to the same function.
引用
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页码:63 / 115
页数:52
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