Depinning transition of dislocation assemblies: Pileups and low-angle grain boundaries

Publication date

2010-01-26T08:43:50Z

2010-01-26T08:43:50Z

2004

Abstract

We investigate the depinning transition occurring in dislocation assemblies. In particular, we consider the cases of regularly spaced pileups and low-angle grain boundaries interacting with a disordered stress landscape provided by solute atoms, or by other immobile dislocations present in nonactive slip systems. Using linear elasticity, we compute the stress originated by small deformations of these assemblies and the corresponding energy cost in two and three dimensions. Contrary to the case of isolated dislocation lines, which are usually approximated as elastic strings with an effective line tension, the deformations of a dislocation assembly cannot be described by local elastic interactions with a constant tension or stiffness. A nonlocal elastic kernel results as a consequence of long-range interactions between dislocations. In light of this result, we revise statistical depinning theories of dislocation assemblies and compare the theoretical results with numerical simulations and experimental data.

Document Type

Article


Published version

Language

English

Publisher

The American Physical Society

Related items

Reproducció digital del document publicat en format paper, proporcionada per PROLA i http://dx.doi.org/10.1103/PhysRevB.69.214103

Physical Review B, 2004, vol. 69, núm. 21, p. 214103-1-214103-11

http://dx.doi.org/10.1103/PhysRevB.69.214103

Recommended citation

This citation was generated automatically.

Rights

(c) The American Physical Society, 2004

This item appears in the following Collection(s)