English

A unified variational framework for phase-field fracture and third-medium contact in finite deformation hyperelasticity

Computational Physics 2026-03-18 v1 Materials Science

Abstract

This paper presents a unified variational framework that integrates phase-field fracture (PFF) and third-medium contact (TMC) within finite deformation hyperelasticity. The key idea is that both crack and contact are treated through regularization: the sharp crack topology is regularized into a diffuse damage field, while the discrete contact interface is regularized by a compliant fictitious medium with auxiliary fields. This strategy eliminates the need for explicit contact detection or crack tracking algorithms. The framework is validated through two-dimensional three-point bending and three-dimensional Brazilian disk test simulations, demonstrating the interplay between contact-induced stress concentration and crack nucleation/propagation. In particular, the Brazilian disk simulation naturally reproduces secondary crushing-type fracture zones near the contact regions -- a phenomenon consistently observed in experiments yet inaccessible to simplified loading models. These results pave the way for predictive simulation of coupled contact-fracture phenomena without recourse to explicit interface tracking.

Keywords

Cite

@article{arxiv.2603.15635,
  title  = {A unified variational framework for phase-field fracture and third-medium contact in finite deformation hyperelasticity},
  author = {Jaemin Kim and Gukheon Kim and Sungmin Yoon and Dong-Hwa Lee},
  journal= {arXiv preprint arXiv:2603.15635},
  year   = {2026}
}

Comments

26 pages, 12 figures