Hydrodynamic pairing of soft particles in a confined flow
Othmane Aouane, Alexander Farutin, Marine Thi\'ebaud, Abdelillah, Benyoussef, Christian Wagner, Chaouqi Misbah

TL;DR
This study numerically investigates how hydrodynamic interactions cause soft particles like vesicles and drops to pair or repel within confined flows, revealing complex bifurcation behavior and universal patterns independent of particle details.
Contribution
It uncovers the complex bifurcation structure of particle pairing under confinement and demonstrates universal behavior across different soft particles.
Findings
Particles form stable pairs at weak confinement if initially close
A saddle-node bifurcation occurs at a critical confinement level
Vesicles and drops exhibit similar phase diagrams, indicating universal behavior
Abstract
The mechanism of hydrodynamics-induced pairing of soft particles, namely closed bilayer membranes (vesicles, a model system for red blood cells) and drops, is studied numerically with a special attention paid to the role of the confinement (the particles are within two rigid walls). This study unveils the complexity of the pairing mechanism due to hydrodynamic interactions. We find both for vesicles and for drops that two particles attract each other and form a stable pair at weak confinement if their initial separation is below a certain value. If the initial separation is beyond that distance, the particles repel each other and adopt a longer stable interdistance. This means that for the same confinement we have (at least) two stable branches. To which branch a pair of particles relaxes with time depends only on the initial configuration. An unstable branch is found between these two…
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