Crack avalanches in the three dimensional random fuse model
arXiv:cond-mat/0501346 · doi:10.1016/j.physa.2005.05.071
Abstract
We analyze the scaling of avalanche precursors in the three dimensional random fuse model by numerical simulations. We find that both the integrated and non-integrated avalanche size distributions are in good agreement with the results of the global load sharing fiber bundle model, which represents the mean-field limit of the model.
6 pages, 2 figures, submitted for the proceedings of the conference "Physics Survey of Irregular Systems", in honor of Bernard Sapoval
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Cited by in corpus (10)
- Statistical Models of Fracture
- Crackling dynamics in material failure as the signature of a self-organized dynamic phase transition
- From damage percolation to crack nucleation through finite size criticality
- Intermittency and roughening in the failure of brittle heterogeneous materials
- The Local load sharing fiber bundle model in higher dimensions
- Avalanche precursors of failure in hierarchical fuse networks
- Energy dissipation statistics in the random fuse model
- Theory and Experiments for Disordered Elastic Manifolds, Depinning, Avalanches, and Sandpiles
- From nucleation to percolation: the effect of system size and system disorder
- From nucleation to percolation: the effect of system size when disorder and stress localization compete