English

Approximate solutions to the shrinking core model and their interpretation

Other Condensed Matter 2025-08-05 v2

Abstract

The shrinking core model describes the reaction of a spherical solid particle with a surrounding fluid. In this work, we revisit the SCM by deriving it from the underlying physical processes and performing a careful non-dimensionalisation, which highlights the limitations of the commonly used pseudo-steady-state approximation, particularly in liquid-solid systems where fluid and solid densities are comparable. To address these limitations, we derive approximate analytical solutions using a perturbation method that improves upon the pseudo-steady-state model. We also obtain a small-time solution capturing early transient behavior. A semi-implicit finite difference scheme is implemented to solve the full model numerically and benchmark the analytical approximations. We demonstrate that the perturbation solution provides significantly improved accuracy over the pseudo-steady-state model, especially in diffusion-limited regimes. Finally, we propose a simple fitting procedure combining the perturbation with the early-time solutions to estimate physical parameters from experimental data at minimal computational cost.

Keywords

Cite

@article{arxiv.2507.21042,
  title  = {Approximate solutions to the shrinking core model and their interpretation},
  author = {Cristian Moreno-Pulido and Rachael Olwande and Tim Myers and Francesc Font},
  journal= {arXiv preprint arXiv:2507.21042},
  year   = {2025}
}
R2 v1 2026-07-01T04:22:29.917Z