English

Improved phase-field models of melting and dissolution in multi-component flows

Computational Physics 2020-12-09 v1 Numerical Analysis Numerical Analysis

Abstract

We develop and analyse the first second-order phase-field model to combine melting and dissolution in multi-component flows. This provides a simple and accurate way to simulate challenging phase-change problems in existing codes. Phase-field models simplify computation by describing separate regions using a smoothed phase field. The phase field eliminates the need for complicated discretisations that track the moving phase boundary. However standard phase-field models are only first-order accurate. They often incur an error proportional to the thickness of the diffuse interface. We eliminate this dominant error by developing a general framework for asymptotic analysis of diffuse-interface methods in arbitrary geometries. With this framework we can consistently unify previous second-order phase-field models of melting and dissolution and the volume-penalty method for fluid-solid interaction. We finally validate second-order convergence of our model in two comprehensive benchmark problems using the open-source spectral code Dedalus.

Keywords

Cite

@article{arxiv.2006.16004,
  title  = {Improved phase-field models of melting and dissolution in multi-component flows},
  author = {Eric W. Hester and Louis-Alexandre Couston and Benjamin Favier and Keaton J. Burns and Geoffrey M. Vasil},
  journal= {arXiv preprint arXiv:2006.16004},
  year   = {2020}
}

Comments

24 pages, 6 figures

R2 v1 2026-06-23T16:41:55.739Z