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Heterogeneous Dynamics and Internal Stress Distributions near Dislocation Jamming

Research output: Chapter in Book/Report/Conference proceedingConference contributionScientificpeer-review

Abstract

Dislocation assemblies in crystalline substrates represent a new example of the broad class of systems that exhibit a jamming (or yielding) transition. Rheology experiments carried out on this broad class of systems ranging from granular media to foams show that their dynamics becomes increasingly heterogeneous when approaching the jamming threshold. Likewise, experiments on crystal plasticity at various scales have recently emphasized the heterogeneous character of plastic flow. Crystal dislocations move in a intermittent manner as a result of the combined effects of kinetic constraints and long range anisotropic dislocation interactions, which together may induce metastable jammed dislocation configurations. Building up upon these premises, here we explore further the analogy between simple two‐dimensional dislocation ensembles and other systems exhibiting jamming, by considering the behavior of the so‐called dynamic four point susceptibility χ4(1,τ), as well as the shear stress distributions in both jammed and moving dislocation arrangements. Our results on the behavior of χ4(1,τ) point towards the existence of a growing dynamic correlation length as the jamming threshold is approached within the moving phase. Moreover, the topology of the shear stress distributions for the dislocation arrangements seem to corroborate this picture, showing increasingly broad size distributions and correlation lengths of stress clusters near dislocation jamming.
Original languageEnglish
Title of host publicationInternational Conference on Numerical Analysis and Applied Mathematics 2009
Pages1138
Number of pages1
Volume1168
Edition1
DOIs
Publication statusPublished - 2009
Externally publishedYes
Publication typeA4 Article in conference proceedings

Publication series

NameAIP conference proceedings
PublisherAmerican Institute of Physics
ISSN (Print)0094-243X

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