Role of interfacial friction for flow instabilities in a thin polar ordered active fluid layer
arXiv:1503.06397 · doi:10.1103/PhysRevE.92.052306
Abstract
We construct a generic coarse-grained dynamics of a thin inflexible planar layer of polar-ordered suspension of active particles, that is frictionally coupled to an embedding isotropic passive fluid medium with a friction coefficient . Being controlled by , our model provides a unified framework to describe the long wavelength behaviour of a variety of thin polar-ordered systems, ranging from {\em wet} to {\em dry} active matters and free standing active films. Investigations of the linear instabilities around a chosen orientationally ordered uniform reference state reveal generic moving and static instabilities in the system, that can depend sensitively on . Based on our results, we discuss estimation of bounds on in experimentally accessible systems.
23 pages, to be published in PRE
References in corpus (8)
- Collective motion of self-propelled particles interacting without cohesion
- Hydrodynamic equations for self-propelled particles: microscopic derivation and stability analysis
- Large-scale chaos and fluctuations in active nematics
- Solid friction between soft filaments
- Active nematics are intrinsically phase-separated
- Activating membranes
- Numerical treatment of the Boltzmann equation for self-propelled particle systems
- Giant Slip at Liquid-Liquid Interfaces Using Hydrophobic Ball Bearings