In this paper we provide rigorous statements and proofs for the asymptotic analysis of discrete energies defined on a two-dimensional triangular lattice allowing for fracture in presence of a microscopic impenetrability constraint. As the lattice parameter goes to 0, we prove that any limit deformation with finite energy is piecewise rigid and we prove a general lower bound with a suitable Griffith-fracture energy density which reflects the anisotropies of the underlying triangular lattice. For such a continuum energy we also provide a class of (piecewise rigid) deformations satisfying "opening-crack" conditions on which the lower bound is sharp. Relying on these results, some consequences have been already presented in the companion paper [A. Braides et al., J. Mech. Phys. Solids 96 (2016) 235-251] to validate models in Computational Mechanics in the small-deformation regime.
Braides, A., Gelli, M.s. (2017). Analytical treatment for the asymptotic analysis of microscopic impenetrability constraints for atomistic systems. MODÉLISATION MATHÉMATIQUE ET ANALYSE NUMÉRIQUE, 51(5), 1903-1929 [10.1051/m2an/2017011].
Analytical treatment for the asymptotic analysis of microscopic impenetrability constraints for atomistic systems
Braides, Andrea;
2017-01-01
Abstract
In this paper we provide rigorous statements and proofs for the asymptotic analysis of discrete energies defined on a two-dimensional triangular lattice allowing for fracture in presence of a microscopic impenetrability constraint. As the lattice parameter goes to 0, we prove that any limit deformation with finite energy is piecewise rigid and we prove a general lower bound with a suitable Griffith-fracture energy density which reflects the anisotropies of the underlying triangular lattice. For such a continuum energy we also provide a class of (piecewise rigid) deformations satisfying "opening-crack" conditions on which the lower bound is sharp. Relying on these results, some consequences have been already presented in the companion paper [A. Braides et al., J. Mech. Phys. Solids 96 (2016) 235-251] to validate models in Computational Mechanics in the small-deformation regime.File | Dimensione | Formato | |
---|---|---|---|
BGeM2ANfinal.pdf
accesso aperto
Licenza:
Copyright dell'editore
Dimensione
711.07 kB
Formato
Adobe PDF
|
711.07 kB | Adobe PDF | Visualizza/Apri |
I documenti in IRIS sono protetti da copyright e tutti i diritti sono riservati, salvo diversa indicazione.