We introduce a lattice model able to describe damage and yielding in heterogeneous materials ranging from brittle to ductile ones. Ductile fracture surfaces, obtained when the system breaks once the strain is completely localized, are shown to correspond to minimum energy surfaces. The similarity of the resulting fracture paths to the limits of brittle fracture or minimum energy surfaces is quantified. The model exhibits a smooth transition from brittleness to ductility. The dynamics of yielding exhibits avalanches with a power-law distribution.Peer reviewe
5 pages, 4 figures, accepted in Phys. Rev. Lett.We study how the loading rate, specimen geometry and...
A simple mechanical model of planar fibrous materials with mesoscopic disorder is introduced and ana...
A spring lattice model with the ability to simulate elastic–plastic–brittle transitions in a disorde...
We introduce a lattice model able to describe damage and yielding in heterogeneous materials ranging...
Widespread processes in nature and technology are governed by the dynamical transition whereby a mat...
Invited review articleInternational audienceStress enhancement in the vicinity of brittle cracks mak...
We use atomistic computer simulations to provide a microscopic description of the brittle failure of...
A set of heterogeneous and homogeneous materials differing in their brittle and ductile characterist...
We study theoretically the yielding of sheared amorphous materials as a function of increasing level...
Breakdown of two-dimensional disordered systems is studied with a time-dependent network model. The ...
We study the plastic yielding of disordered media using the perfectly plastic random fuse model. The...
Lacking the energy dissipative mechanics such as plastic deformation to rebalance localized stresses...
We study the sample-size dependence of the strength of disordered materials with a flaw, by numerica...
International audienceWe analyze the intermittent dynamics of cracks in heterogeneous brittle materi...
Disorder and long-range interactions are two of the key components that make material failure an int...
5 pages, 4 figures, accepted in Phys. Rev. Lett.We study how the loading rate, specimen geometry and...
A simple mechanical model of planar fibrous materials with mesoscopic disorder is introduced and ana...
A spring lattice model with the ability to simulate elastic–plastic–brittle transitions in a disorde...
We introduce a lattice model able to describe damage and yielding in heterogeneous materials ranging...
Widespread processes in nature and technology are governed by the dynamical transition whereby a mat...
Invited review articleInternational audienceStress enhancement in the vicinity of brittle cracks mak...
We use atomistic computer simulations to provide a microscopic description of the brittle failure of...
A set of heterogeneous and homogeneous materials differing in their brittle and ductile characterist...
We study theoretically the yielding of sheared amorphous materials as a function of increasing level...
Breakdown of two-dimensional disordered systems is studied with a time-dependent network model. The ...
We study the plastic yielding of disordered media using the perfectly plastic random fuse model. The...
Lacking the energy dissipative mechanics such as plastic deformation to rebalance localized stresses...
We study the sample-size dependence of the strength of disordered materials with a flaw, by numerica...
International audienceWe analyze the intermittent dynamics of cracks in heterogeneous brittle materi...
Disorder and long-range interactions are two of the key components that make material failure an int...
5 pages, 4 figures, accepted in Phys. Rev. Lett.We study how the loading rate, specimen geometry and...
A simple mechanical model of planar fibrous materials with mesoscopic disorder is introduced and ana...
A spring lattice model with the ability to simulate elastic–plastic–brittle transitions in a disorde...