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Published on: October 14, 2013
Depinning Dynamics of Crack Fronts
Julien Chopin1, Aditya Bhaskar2, Atharv Jog2
1Gulliver UMR 7083, CNRS-ESPCI ParisTech, PSL Research University, Paris, France Instititut Jean le Rond d'Alembert UMR 7190, Sorbonne Universités, CNRS-UPMC, Paris, France and Instituto de Física, Universidade Federal da Bahia, Campus Universitário de Ondina, rua Barão de Jeremoabo, BA 40210-340, Brazil.
Abstract:
We investigate experimentally and theoretically the dynamics of a crack front during the microinstabilities taking place in heterogeneous materials between two successive equilibrium positions. We focus specifically on the spatiotemporal evolution of the front, as it relaxes to a straight configuration, after depinning from a single obstacle of controlled strength and size. We show that this depinning dynamics is not controlled by inertia, but instead by the rate dependency of the dissipative mechanisms taking place within the fracture process zone. This implies that the crack speed fluctuations around its average value v_{m} can be predicted from an overdamped equation of motion (v-v_{m})/v_{0}=[G-G_{c}(v_{m})]/G_{c}(v_{m}) involving the characteristic material speed v_{0}=G_{c}(v_{m})/G_{c}^{'}(v_{m}) that emerges from the variation of fracture energy with crack speed. Our findings pave the way to a quantitative description of the critical depinning dynamics of cracks in disordered solids and open up new perspectives for the prediction of the effective failure properties of heterogeneous materials.
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