English

Mixing Fronts in Smooth Chaotic Flows

Fluid Dynamics 2026-05-18 v3

Abstract

Scalar mixing fronts develop at the interface of agitated fluids of different solute concentrations. In such fronts, scalar fluctuations form at both microscopic and macroscopic scales, due to stretching-enhanced molecular diffusion and hydrodynamic dispersion respectively. While these two elementary processes are well understood separately, predicting how their coupling governs the evolution of concentration statistics within dispersing fronts remains a challenge. Here, we propose a theoretical framework to describe scalar fluctuations in fronts mixed by smooth chaotic flows. We find that the transfer of energy between the macroscopic and microscopic scalar fluctuation scales operates at a characteristic length scale sis_i, for which dispersion and stretching-enhanced diffusion are of equal strength. This leads to a closed expression for the concentration variance, which captures the results of direct numerical simulations with no fitting parameters, for a broad range of P\'eclet numbers. These findings open a new avenue for predicting both conservative and reactive mixing in smooth chaotic flows such as porous media or microfluidic flows.

Keywords

Cite

@article{arxiv.2506.15255,
  title  = {Mixing Fronts in Smooth Chaotic Flows},
  author = {Heyman Joris and Le Borgne Tanguy and Lester Daniel},
  journal= {arXiv preprint arXiv:2506.15255},
  year   = {2026}
}
R2 v1 2026-07-01T03:23:15.768Z