A predictive model for transferability of plastic deformation through grain boundaries

The material strengths of polycrystalline metals have been widely predicted according to the grain size, where yield stress is governed by slip transfer through the grain boundary (GB). The transferability of a dislocation across a GB is enormously important in the deformation process as well as the...

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Main Authors: T. Tsuru, Y. Shibutani, T. Hirouchi
Format: Article
Language:English
Published: AIP Publishing LLC 2016-01-01
Series:AIP Advances
Online Access:http://dx.doi.org/10.1063/1.4939819
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spelling doaj-f5de39a1bccb4f6892d6c7db1bfc8f542020-11-24T22:19:46ZengAIP Publishing LLCAIP Advances2158-32262016-01-0161015004015004-910.1063/1.4939819015601ADVA predictive model for transferability of plastic deformation through grain boundariesT. Tsuru0Y. Shibutani1T. Hirouchi2Nuclear Science and Engineering Center, Japan Atomic Energy Agency, 2-4 Shirakata, Tokai-mura, Ibaraki, JapanDepartment of Mechanical Engineering, Osaka University, 2-1 Yamadaoka, Suita, Osaka, JapanUACJ Corporation, 21-1 Kurome, Mikuni-cho, Sakai-shi, Fukui, JapanThe material strengths of polycrystalline metals have been widely predicted according to the grain size, where yield stress is governed by slip transfer through the grain boundary (GB). The transferability of a dislocation across a GB is enormously important in the deformation process as well as the interaction between a dislocation and GB. This paper proposes a new criterion for the transferability of dislocations through a GB that considers both the intergranular crystallographic orientation of slip systems and the applied stress condition. Atomistic simulations were carried out to investigate the slip transfer event of simple bicrystals composed of Σ 3 ( 1 ̄ 12 ) GB than Σ 3 ( 1 ̄ 11 ) GBs under uniaxial deformation and to illustrate the availability of this criterion. As a result, in contrast to the predictions of conventional criteria such as the M-value, dislocations propagated more easily across the Σ 3 ( 1 ̄ 11 ) and Σ 3 ( 1 ̄ 12 ) GB under given stress states, reflecting a larger L′-value of Σ3 bicrystal associated with higher transferability.http://dx.doi.org/10.1063/1.4939819
collection DOAJ
language English
format Article
sources DOAJ
author T. Tsuru
Y. Shibutani
T. Hirouchi
spellingShingle T. Tsuru
Y. Shibutani
T. Hirouchi
A predictive model for transferability of plastic deformation through grain boundaries
AIP Advances
author_facet T. Tsuru
Y. Shibutani
T. Hirouchi
author_sort T. Tsuru
title A predictive model for transferability of plastic deformation through grain boundaries
title_short A predictive model for transferability of plastic deformation through grain boundaries
title_full A predictive model for transferability of plastic deformation through grain boundaries
title_fullStr A predictive model for transferability of plastic deformation through grain boundaries
title_full_unstemmed A predictive model for transferability of plastic deformation through grain boundaries
title_sort predictive model for transferability of plastic deformation through grain boundaries
publisher AIP Publishing LLC
series AIP Advances
issn 2158-3226
publishDate 2016-01-01
description The material strengths of polycrystalline metals have been widely predicted according to the grain size, where yield stress is governed by slip transfer through the grain boundary (GB). The transferability of a dislocation across a GB is enormously important in the deformation process as well as the interaction between a dislocation and GB. This paper proposes a new criterion for the transferability of dislocations through a GB that considers both the intergranular crystallographic orientation of slip systems and the applied stress condition. Atomistic simulations were carried out to investigate the slip transfer event of simple bicrystals composed of Σ 3 ( 1 ̄ 12 ) GB than Σ 3 ( 1 ̄ 11 ) GBs under uniaxial deformation and to illustrate the availability of this criterion. As a result, in contrast to the predictions of conventional criteria such as the M-value, dislocations propagated more easily across the Σ 3 ( 1 ̄ 11 ) and Σ 3 ( 1 ̄ 12 ) GB under given stress states, reflecting a larger L′-value of Σ3 bicrystal associated with higher transferability.
url http://dx.doi.org/10.1063/1.4939819
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