English

Crack Face Contact Modeling is Essential to Predict Crack-Parallel Stresses

Materials Science 2025-04-24 v1 Analysis of PDEs

Abstract

Phase-field fracture models provide a powerful approach to modeling fracture, potentially enabling the unguided prediction of crack growth in complex patterns. To ensure that only tensile stresses and not compressive stresses drive crack growth, several models have been proposed that aim to distinguish between compressive and tensile loads. However, these models have a critical shortcoming: they do not account for the crack direction, and hence they cannot distinguish between crack-normal tensile stresses that drive crack growth and crack-parallel stresses that do not. In this study, we apply a phase-field fracture model, developed in our earlier work, that uses the crack direction to distinguish crack-parallel stresses from crack-normal stresses. This provides a transparent energetic formulation that drives cracks to grow in when crack faces open or slide past each other, while the cracks respond like the intact solid when the crack faces contact under normal compressive loads. We compare our approach against two widely used approaches, Spectral splitting and the Volumetric-Deviatoric splitting, and find that these predict unphysical crack growth and unphysical stress concentrations under loading conditions in which these should not occur. Specifically, we show that the splitting models predict spurious crack growth and stress concentration under pure crack-parallel normal stresses. However, our formulation, which resolves the crack-parallel stresses from the crack-normal stresses, predicts these correctly.

Keywords

Cite

@article{arxiv.2504.16794,
  title  = {Crack Face Contact Modeling is Essential to Predict Crack-Parallel Stresses},
  author = {Maryam Hakimzadeh and Noel Walkington and Carlos Mora-Corral and George Gazonas and Kaushik Dayal},
  journal= {arXiv preprint arXiv:2504.16794},
  year   = {2025}
}

Comments

To appear in Journal of Applied Mechanics

R2 v1 2026-06-28T23:08:41.065Z