Wake transitions and melting dynamics of a translating sphere in warm liquid
Abstract
We investigate the three-dimensional melting dynamics of an initially spherical particle translating in a warmer liquid using sharp-interface simulations that fully resolve both solid and fluid phases with the Stefan condition. A wide parameter space is explored, spanning initial Reynolds number (), Stefan number (), and Richardson number (). In the absence of buoyancy (), the interface evolution is governed by canonical wake bifurcations. Four regimes are identified: an axi-symmetric regime () with a rounded front and planar rear; a steady-planar-symmetric regime () with an inclined rear plane; a periodic-planar-symmetric regime () where vortex shedding emerges in the wake; and a chaotic regime () with fluctuating stagnation points and a more rounded rear. Despite these differences, all regimes exhibit a tendency toward melt-rate homogenisation over time. Besides, we introduce an aspect-ratio-based surface-area formulation that yields a predictive model, accurately capturing volume evolution across regimes. Hydrodynamic loads also reflect the coupling between shape and flow: drag follows rigid-sphere correlations only at moderate ; planar rears enhance drag at higher ; lift appears only in symmetry-broken regimes and reverses late in time; torque reorients the rear plane toward vertical, consistent with free-body experiments. When buoyancy is included, assisting configurations () suppress recirculation and maintain quasi-spherical shapes, whereas opposing or transverse buoyancy () destabilises wakes and promotes tilted planar rears. These results provide a unified framework for convection-driven melting across laminar, periodic, and chaotic wakes, with implications for geophysical and industrial processes.
Keywords
Cite
@article{arxiv.2512.16117,
title = {Wake transitions and melting dynamics of a translating sphere in warm liquid},
author = {Zhong-Han Xue and Jie Zhang},
journal= {arXiv preprint arXiv:2512.16117},
year = {2025}
}
Comments
38 pages, 29 figures