Theory and simulation of the diffusion of kinks on dislocations in bcc metals

Isolated kinks on thermally fluctuating edge, and edge dislocations in bcc iron are simulated under zero stress conditions using molecular dynamics (MD). Kinks are seen to perform stochastic motion in a potential landscape that depends on the dislocation character and geometry, and their motion prov...

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Main Authors: Swinburne, T, Dudarev, S, Fitzgerald, S, Gilbert, MR, Sutton, A
Format: Journal article
Language:English
Published: 2013
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author Swinburne, T
Dudarev, S
Fitzgerald, S
Gilbert, MR
Sutton, A
author_facet Swinburne, T
Dudarev, S
Fitzgerald, S
Gilbert, MR
Sutton, A
author_sort Swinburne, T
collection OXFORD
description Isolated kinks on thermally fluctuating edge, and edge dislocations in bcc iron are simulated under zero stress conditions using molecular dynamics (MD). Kinks are seen to perform stochastic motion in a potential landscape that depends on the dislocation character and geometry, and their motion provides fresh insight into the coupling of dislocations to a heat bath. The kink formation energy, migration barrier, and friction parameter are deduced from the simulations. A discrete Frenkel-Kontorova-Langevin model is able to reproduce the coarse-grained data from MD at ∼10-7 of the computational cost, without assuming an a priori temperature dependence beyond the fluctuation-dissipation theorem. Analytical results reveal that discreteness effects play an essential role in thermally activated dislocation glide, revealing the existence of a crucial intermediate length scale between molecular and dislocation dynamics. The model is used to investigate dislocation motion under the vanishingly small stress levels found in the evolution of dislocation microstructures in irradiated materials. © 2013 American Physical Society.
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spelling oxford-uuid:6fdeeb8b-0d17-4bcd-9ba8-5f4983e2ae862022-03-26T19:33:29ZTheory and simulation of the diffusion of kinks on dislocations in bcc metalsJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:6fdeeb8b-0d17-4bcd-9ba8-5f4983e2ae86EnglishSymplectic Elements at Oxford2013Swinburne, TDudarev, SFitzgerald, SGilbert, MRSutton, AIsolated kinks on thermally fluctuating edge, and edge dislocations in bcc iron are simulated under zero stress conditions using molecular dynamics (MD). Kinks are seen to perform stochastic motion in a potential landscape that depends on the dislocation character and geometry, and their motion provides fresh insight into the coupling of dislocations to a heat bath. The kink formation energy, migration barrier, and friction parameter are deduced from the simulations. A discrete Frenkel-Kontorova-Langevin model is able to reproduce the coarse-grained data from MD at ∼10-7 of the computational cost, without assuming an a priori temperature dependence beyond the fluctuation-dissipation theorem. Analytical results reveal that discreteness effects play an essential role in thermally activated dislocation glide, revealing the existence of a crucial intermediate length scale between molecular and dislocation dynamics. The model is used to investigate dislocation motion under the vanishingly small stress levels found in the evolution of dislocation microstructures in irradiated materials. © 2013 American Physical Society.
spellingShingle Swinburne, T
Dudarev, S
Fitzgerald, S
Gilbert, MR
Sutton, A
Theory and simulation of the diffusion of kinks on dislocations in bcc metals
title Theory and simulation of the diffusion of kinks on dislocations in bcc metals
title_full Theory and simulation of the diffusion of kinks on dislocations in bcc metals
title_fullStr Theory and simulation of the diffusion of kinks on dislocations in bcc metals
title_full_unstemmed Theory and simulation of the diffusion of kinks on dislocations in bcc metals
title_short Theory and simulation of the diffusion of kinks on dislocations in bcc metals
title_sort theory and simulation of the diffusion of kinks on dislocations in bcc metals
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AT dudarevs theoryandsimulationofthediffusionofkinksondislocationsinbccmetals
AT fitzgeralds theoryandsimulationofthediffusionofkinksondislocationsinbccmetals
AT gilbertmr theoryandsimulationofthediffusionofkinksondislocationsinbccmetals
AT suttona theoryandsimulationofthediffusionofkinksondislocationsinbccmetals