Hydrochemical interactions of phoretic particles: a regularized multipole framework
arXiv:2104.12396 · doi:10.1017/jfm.2021.387
Abstract
Chemically-active colloids modify the concentration of chemical solutes surrounding them in order to self-propel. In doing so, they generate long-ranged hydrodynamic flows and chemical gradients that modify the trajectories of other particles. As a result, the dynamics of reactive suspensions is fundamentally governed by hydro-chemical interactions. A full solution of the detailed hydro-chemical problem with many particles is challenging and computationally expensive. Most current methods rely on the Green's functions of the Laplace and Stokes operators to approximate the particle signatures in the far-field, which is only valid in the very dilute limit in simple geometries. To overcome these limitations, we propose a regularized mutipole framework, directly inspired by the Force Coupling Method (FCM), to model phoretic suspensions. Our approach, called Diffusio-phoretic FCM (DFCM), relies on grid-based volume averages of the concentration field to compute the particle surface concentration moments. These moments define the chemical multipoles of the diffusion (Laplace) problem and provide the swimming forcing of the Stokes equations. Unlike far-field models based on singularity superposition, DFCM accounts for mutually-induced dipoles. The accuracy of the method is evaluated against exact and accurate numerical solutions for a few canonical cases. We also quantify its improvements over far-field approximations for a wide range of inter-particle distances. The resulting framework can readily be implemented into efficient CFD solvers, allowing for large scale simulations of semi-dilute diffusio-phoretic suspensions.
24 pages, 8 figures, to appear in the Journal of Fluid Mechanics
References in corpus (12)
- The hydrodynamics of swimming microorganisms
- Self-motile colloidal particles: from directed propulsion to random walk
- Motility-Induced Phase Separation
- Physics of Microswimmers - Single Particle Motion and Collective Behavior
- Designing phoretic micro- and nano-swimmers
- Self-propulsion of pure water droplets by spontaneous Marangoni stress driven motion
- Phoretic self-propulsion at finite Péclet numbers
- Spontaneous aggregation and global polar ordering in squirmer suspensions
- Self-assembly of Active Colloidal Molecules with Dynamic Function
- Autophoretic locomotion from geometric asymmetry
- Phoretic and hydrodynamic interactions of weakly-confined autophoretic particles
- Modeling chemo-hydrodynamic interactions of phoretic particles: a unified framework
Cited by in corpus (8)
- Interactions in Active Colloids
- Confined self-propulsion of an isotropic active colloid
- Theoretical modeling of catalytic self-propulsion
- Stokes traction on an active particle
- Self-organisation of auto-phoretic suspensions in confined shear flows
- Self-organization of active colloids mediated by chemical interactions
- Micro-swimmer collective dynamics in Brinkman flows
- A numerical framework for phoretic particles