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Avalanches and Plastic Flow in Crystal Plasticity: An Overview

Published 19 May 2017 in cond-mat.mtrl-sci, cond-mat.dis-nn, cond-mat.mes-hall, cond-mat.soft, and cond-mat.stat-mech | (1705.06843v1)

Abstract: Crystal plasticity is mediated through dislocations, which form knotted configurations in a complex energy landscape. Once they disentangle and move, they may also be impeded by permanent obstacles with finite energy barriers or frustrating long-range interactions. The outcome of such complexity is the emergence of dislocation avalanches as the basic mechanism of plastic flow in solids at the nanoscale. While the deformation behavior of bulk materials appears smooth, a predictive model should clearly be based upon the character of these dislocation avalanches and their associated strain bursts. We provide here a comprehensive overview of experimental observations, theoretical models and computational approaches that have been developed to unravel the multiple aspects of dislocation avalanche physics and the phenomena leading to strain bursts in crystal plasticity.

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