Morphology of clean and surfactant-laden droplets in homogeneous isotropic turbulence
arXiv:2307.15448 · doi:10.1017/jfm.2024.380
Abstract
We perform direct numerical simulations of surfactant-laden droplets in homogeneous isotropic turbulence with Taylor Reynolds number of 180. The droplets are modelled using the volume of fluid method, and the soluble surfactant is transported using an advection-diffusion equation. Effects of surfactant on the droplet and local flow statistics are well approximated using a lower, averaged value of surface tension, allowing us to extend the framework developed by Hinze (1955) and Kolmogorov (1949) for surfactant-free bubbles. The Kolmogorov-Hinze scale is indeed found to be a pivotal length scale in the droplets' dynamics, separating the coalescence-dominated (droplets smaller than ) and the breakage-dominated (droplets larger than ) regimes in the droplet size distribution. We find that droplets smaller than have compact, regular, spheroid-like shapes, whereas droplets larger than have long, convoluted, filamentous shapes with a diameter equal to . This results in two different scaling laws for the interfacial area of the droplet. The normalised area, , of droplets smaller than is proportional to , while the area of droplets larger than is proportional to , where is the droplet size. We further characterise the large filamentous droplets by computing the number of handles (loops of the dispersed phase extending into the carrier phase) and voids (regions of the carrier fluid entirely enclosed by the dispersed phase) on each droplet. The number of handles per unit length of filament scales inversely with surface tension. The number of voids is proportional to the droplet size and independent of surface tension. Handles are indeed an unstable feature of the interface and are destroyed by the restoring effect of surface tension, whereas voids can move freely in the interior of the droplets, unaffected by surface tension.
33 pages, 13 figures
References in corpus (11)
- Modulation of homogeneous and isotropic turbulence in emulsions
- The interaction of droplet dynamics and turbulence cascade
- Liquid velocity fluctuations and energy spectra in three-dimensional buoyancy driven bubbly flows
- Shear-thinning and shear-thickening emulsions in shear flows
- Dispersed fibers change the classical energy budget of turbulence via nonlocal transfer
- Effect of surfactant-laden droplets on turbulent flow topology
- The turbulent bubble break-up cascade. Part 1. Theoretical developments
- Scaling and intermittency in turbulent flows of elastoviscoplastic fluids
- The effect of droplet coalescence on drag in turbulent channel flows
- Unraveling the secrets of turbulence in a fluid puff
- Turbulent bubbly channel flows: Effects of soluble surfactant and viscoelasticity
Cited by in corpus (4)
- Reconfiguration and dynamics of clamped fibers under finite-amplitude surface gravity waves
- Scale-by-scale kinetic energy budgets in multiphase turbulence
- Effect of submerged vegetation on water surface geometry and air-water momentum transfer
- Conversions between kinetic and surface energy in periodically forced multiphase turbulence