English

A mean-field theory for self-propelled particles interacting by velocity alignment mechanisms

Statistical Mechanics 2009-11-13 v1 Other Condensed Matter

Abstract

A mean-field approach (MFA) is proposed for the analysis of orientational order in a two-dimensional system of stochastic self-propelled particles interacting by local velocity alignment mechanism. The treatment is applied to the cases of ferromagnetic (F) and liquid-crystal (LC) alignment. In both cases, MFA yields a second order phase transition for a critical noise strength and a scaling exponent of 1/2 for the respective order parameters. We find that the critical noise amplitude ηc\eta_c at which orientational order emerges in the LC case is smaller than in the F-alignment case, i.e. ηCLC<ηCF\eta^{LC}_{C}<\eta^{F}_{C}. A comparison with simulations of individual-based models with F- resp. LC-alignment shows that the predictions about the critical behavior and the qualitative relation between the respective critical noise amplitudes are correct.

Keywords

Cite

@article{arxiv.0806.2475,
  title  = {A mean-field theory for self-propelled particles interacting by velocity alignment mechanisms},
  author = {Fernando Peruani and Andreas Deutsch and Markus Baer},
  journal= {arXiv preprint arXiv:0806.2475},
  year   = {2009}
}