4.2 Article

SELF-ORGANIZED HYDRODYNAMICS WITH DENSITY-DEPENDENT VELOCITY

Journal

KINETIC AND RELATED MODELS
Volume 10, Issue 1, Pages 193-213

Publisher

AMER INST MATHEMATICAL SCIENCES-AIMS
DOI: 10.3934/krm.2017008

Keywords

Collective dynamics; active matter; self-organization; hydrodynamic limit; alignment interaction; motility induced phase separation; density-dependent velocity; relaxation model; clustering

Funding

  1. Agence Nationale pour la Recherche (ANR) under grant 'MOTIMO' [ANR-11-MONU-009-01]
  2. Engineering and Physical Sciences Research Council (EPSRC) [EP/M006883/1]
  3. National Science Foundation (NSF) [RNMS 11-07444]
  4. Royal Society
  5. Wolfson foundation
  6. Engineering and Physical Sciences Research Council [EP/I019111/1, EP/M006883/1] Funding Source: researchfish

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Motivated by recent experimental and computational results that show a motility-induced clustering transition in self-propelled particle systems, we study an individual model and its corresponding Self-Organized Hydrodynamic model for collective behaviour that incorporates a density-dependent velocity, as well as inter-particle alignment. The modal analysis of the hydrodynamic model elucidates the relationship between the stability of the equilibria and the changing velocity, and the formation of clusters. We find, in agreement with earlier results for non-aligning particles, that the key criterion for stability is (rho v (rho))' >= 0, i.e. a nondecreasing mass flux rho v(rho) with respect to the density. Numerical simulation for both the individual and hydrodynamic models with a velocity function inspired by experiment demonstrates the validity of the theoretical results.

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