Nematic alignment of self-propelled particles: From particle to macroscopic dynamics

Author:

Degond Pierre1,Merino-Aceituno Sara23

Affiliation:

1. Department of Mathematics, Imperial College London, South Kensington Campus, London SW7 2AZ, UK

2. Faculty of Mathematics, University of Vienna, Oskar-Morgenstern-Platz 1, 1090 Vienna, Austria

3. Department of Mathematics, University of Sussex Falmer, Brighton BN1 9RH, UK

Abstract

Starting from a particle model describing self-propelled particles interacting through nematic alignment, we derive a macroscopic model for the particle density and mean direction of motion. We first propose a mean-field kinetic model of the particle dynamics. After diffusive rescaling of the kinetic equation, we formally show that the distribution function converges to an equilibrium distribution in particle direction, whose local density and mean direction satisfies a cross-diffusion system. We show that the system is consistent with symmetries typical of a nematic material. The derivation is carried over by means of a Hilbert expansion. It requires the inversion of the linearized collision operator for which we show that the generalized collision invariants, a concept introduced to overcome the lack of momentum conservation of the system, plays a central role. This cross-diffusion system poses many new challenging questions.

Funder

the Engineering and Physical Sciences Research Council

the Royal Society and the Wolfson Foundation through a Royal Society Wolfson Research Merit

the National Science Foundation

the Vienna Science and Technology Fund (WWTF) with a Vienna Research Groups for Young Investigators

Publisher

World Scientific Pub Co Pte Lt

Subject

Applied Mathematics,Modeling and Simulation

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