Collisions and rebounds of chemically-active droplets
arXiv:1912.04621 · doi:10.1017/jfm.2019.1055
Abstract
Active droplets swim as a result of the nonlinear advective coupling of the distribution of chemical species they consume or release with the Marangoni flows created by their non-uniform surface distribution. Most existing models focus on the self-propulsion of a single droplet in an unbounded fluid, which arises when diffusion is slow enough (i.e. beyond a critical Péclet number, $\mbox{Pe}_c$). Despite its experimental relevance, the coupled dynamics of multiple droplets and/or collision with a wall remains mostly unexplored. Using a novel approach based on a moving fitted bispherical grid, the fully-coupled nonlinear dynamics of the chemical solute and flow fields are solved here to characterise in detail the axisymmetric collision of an active droplet with a rigid wall (or with a second droplet). The dynamics is strikingly different depending on the convective-to-diffusive transport ratio, $\mbox{Pe}$: near the self-propulsion threshold (moderate $\mbox{Pe}$), the rebound dynamics are set by chemical interactions and are well captured by asymptotic analysis; in contrast, for larger $\mbox{Pe}$, a complex and nonlinear combination of hydrodynamic and chemical effects set the detailed dynamics, including a closer approach to the wall and a velocity plateau shortly after the rebound of the droplet. The rebound characteristics, i.e. minimum distance and duration, are finally fully characterised in terms of $\mbox{Pe}$.
27 pages, 12 figures, to appear in J. Fluid Mech
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Cited by in corpus (8)
- Self-propulsion of chemically-active droplets
- Collective entrainment and confinement amplify transport by schooling micro-swimmers
- Instability and self-propulsion of active droplets along a wall
- Confined self-propulsion of an isotropic active colloid
- Local drag of a slender rod parallel to a plane wall in a viscous fluid
- Interfacial activity dynamics of confined active droplets
- Steady state propulsion of isotropic active colloids along a wall
- A numerical framework for phoretic particles