English

Mean-field model for the bubble size distribution in coarsening wet foams

Soft Condensed Matter 2026-02-19 v2

Abstract

Aqueous foams are subject to coarsening, whereby gas from the bubbles diffuses through the liquid phase. Gas is preferentially transported from small to large bubbles, resulting in a gradual decrease of the number of bubbles and an increase in the average bubble size. Coarsening foams are expected to approach a scaling state at late times in which their statistical properties are invariant. However, a model predicting the experimentally observed bubble-size distribution in the scaling state of foams with moderate liquid content, as a function of the liquid fraction ϕ\phi, has not yet been developed. To this end, we propose a three-dimensional mean-field bubble growth law for foams without inter-bubble adhesion, validated against bubble-scale simulations, and use it to derive a prediction of the scaling-state bubble-size distribution for any ϕ\phi from zero up to the unjamming transition ϕc36%\phi_\text{c} \approx 36\%. We verify that the derived scaling state is approached from a variety of initial conditions using mean-field simulations implementing the proposed growth law. Comparing our predicted bubble-size distribution with previous simulations and experimental results, we likewise find a large population of small bubbles when ϕ>0\phi > 0, but there are qualitative differences from prior results which we attribute to the absence of rattlers, i.e. bubbles not pressed into contact with their neighbours, in our model.

Keywords

Cite

@article{arxiv.2508.00994,
  title  = {Mean-field model for the bubble size distribution in coarsening wet foams},
  author = {Jacob Morgan and Simon Cox},
  journal= {arXiv preprint arXiv:2508.00994},
  year   = {2026}
}

Comments

15 pages, 12 figures; added link to dataset, minor changes to text, couple of new references, updated acknowledgments