arXiv · 2610.06206
Phase-Field Approximation of Vectorial Cohesive Models
Abstract
We study the $Γ$-convergence of a general class of anisotropic phase-field functionals modelling cohesive fracture in the multidimensional, vector-valued, and geometrically nonlinear setting. The limiting energy comprises a quasiconvexified bulk term, a Cantor part governed by its recession function, and a cohesive surface energy density defined via an asymptotic cell problem. After establishing the structural properties and equivalent formulations of the limiting surface density, we show that, whenever the recession function of the elastic energy is given by the square of an operator norm compatible with the phase-field anisotropy, the vectorial cell problem explicitly reduces to a one-dimensional variational problem. As a consequence, we extend the cohesive law reconstruction procedure of \cite{alessi2025phasefieldpart2} to the vectorial framework, explicitly designing phase-field potentials that recover prescribed classes of anisotropic, jump-dependent traction-separation laws of the form $g(ζ,ν)=γ(ν)g_{\scal}(|ζ|)$.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Francesco Colasanto. 2026-10-05. Phase-Field Approximation of Vectorial Cohesive Models. https://arxiv.org/abs/2610.06206
Cite the original work for its findings. Save a collection to share your selection of sources.