Lattice Boltzmann simulations of droplet breakup in confined and time-dependent flows
Felix Milan, Luca Biferale, Mauro Sbragaglia, Federico Toschi

TL;DR
This paper investigates droplet breakup in confined, time-dependent flows using Lattice Boltzmann simulations, highlighting how different flow initiation protocols influence breakup scenarios and metastability under various conditions.
Contribution
The study introduces a comparative analysis of shock and relaxation protocols in droplet breakup simulations, revealing their impact on metastability and breakup behavior in confined oscillatory flows.
Findings
Different protocols lead to distinct breakup scenarios.
Metastable droplet states can be induced under confinement.
External perturbations can trigger breakup of metastable droplets.
Abstract
We study droplet dynamics and breakup in generic time-dependent flows via a multicomponent Lattice Boltzmann algorithm, with emphasis on flow start up conditions. We first study droplet breakup in a confined oscillatory shear flow via two different protocols. In one set up, we start from an initially spherical droplet and turn on the flow abruptly ("shock method"); in the other protocol, we start from an initially spherical droplet as well, but we progressively increase the amplitude of the flow, by allowing the droplet to relax to the steady state for each increase in amplitude, before increasing the flow amplitude again ("relaxation method"). The two protocols are shown to produce substantially different breakup scenarios. The mismatch between these two protocols is also studied for variations in the flow topology, the degree of confinement and the inertia of the fluid. All results…
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