Experiment-based modelling of grain boundary β-phase (Mg2Al3) evolution during sensitisation of aluminium alloy AA5083

Abstract An empirical model for the evolution of β-phase (Mg2Al3) along grain boundaries in aluminium alloy AA5083 (Al-Mg-Mn) during isothermal exposures is proposed herein. Developing a quantitative understanding of grain boundary precipitation is important to interpreting intergranular corrosion a...

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Main Authors: R. Zhang, M. A. Steiner, S. R. Agnew, S. K Kairy, C. H. J. Davies, N. Birbilis
Format: Article
Language:English
Published: Nature Publishing Group 2017-06-01
Series:Scientific Reports
Online Access:https://doi.org/10.1038/s41598-017-03090-4
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spelling doaj-a73740ea0e14495098c57dbea12665fc2020-12-08T01:29:28ZengNature Publishing GroupScientific Reports2045-23222017-06-017111410.1038/s41598-017-03090-4Experiment-based modelling of grain boundary β-phase (Mg2Al3) evolution during sensitisation of aluminium alloy AA5083R. Zhang0M. A. Steiner1S. R. Agnew2S. K Kairy3C. H. J. Davies4N. Birbilis5Department of Materials Science and Engineering, Monash UniversityDepartment of Materials Science and Engineering, University of VirginiaDepartment of Materials Science and Engineering, University of VirginiaDepartment of Materials Science and Engineering, Monash UniversityDepartment of Mechanical and Aerospace Engineering, Monash UniversityDepartment of Materials Science and Engineering, Monash UniversityAbstract An empirical model for the evolution of β-phase (Mg2Al3) along grain boundaries in aluminium alloy AA5083 (Al-Mg-Mn) during isothermal exposures is proposed herein. Developing a quantitative understanding of grain boundary precipitation is important to interpreting intergranular corrosion and stress corrosion cracking in this alloy system. To date, complete ab initio models for grain boundary precipitation based upon fundamental principles of thermodynamics and kinetics are not available, despite the critical role that such precipitates play in dictating intergranular corrosion phenomena. Empirical models can therefore serve an important role in advancing the understanding of grain boundary precipitation kinetics, which is an approach applicable beyond the present context. High resolution scanning electron microscopy was to quantify the size and distribution of β-phase precipitates on Ga-embrittled intergranular fracture surfaces of AA5083. The results are compared with the degree of sensitisation (DoS) as judged by nitric acid mass loss testing (ASTM-G67-04), and discussed with models for sensitisation in 5xxx series Al-alloys. The work herein allows sensitisation to be quantified from an unambiguous microstructural perspective.https://doi.org/10.1038/s41598-017-03090-4
collection DOAJ
language English
format Article
sources DOAJ
author R. Zhang
M. A. Steiner
S. R. Agnew
S. K Kairy
C. H. J. Davies
N. Birbilis
spellingShingle R. Zhang
M. A. Steiner
S. R. Agnew
S. K Kairy
C. H. J. Davies
N. Birbilis
Experiment-based modelling of grain boundary β-phase (Mg2Al3) evolution during sensitisation of aluminium alloy AA5083
Scientific Reports
author_facet R. Zhang
M. A. Steiner
S. R. Agnew
S. K Kairy
C. H. J. Davies
N. Birbilis
author_sort R. Zhang
title Experiment-based modelling of grain boundary β-phase (Mg2Al3) evolution during sensitisation of aluminium alloy AA5083
title_short Experiment-based modelling of grain boundary β-phase (Mg2Al3) evolution during sensitisation of aluminium alloy AA5083
title_full Experiment-based modelling of grain boundary β-phase (Mg2Al3) evolution during sensitisation of aluminium alloy AA5083
title_fullStr Experiment-based modelling of grain boundary β-phase (Mg2Al3) evolution during sensitisation of aluminium alloy AA5083
title_full_unstemmed Experiment-based modelling of grain boundary β-phase (Mg2Al3) evolution during sensitisation of aluminium alloy AA5083
title_sort experiment-based modelling of grain boundary β-phase (mg2al3) evolution during sensitisation of aluminium alloy aa5083
publisher Nature Publishing Group
series Scientific Reports
issn 2045-2322
publishDate 2017-06-01
description Abstract An empirical model for the evolution of β-phase (Mg2Al3) along grain boundaries in aluminium alloy AA5083 (Al-Mg-Mn) during isothermal exposures is proposed herein. Developing a quantitative understanding of grain boundary precipitation is important to interpreting intergranular corrosion and stress corrosion cracking in this alloy system. To date, complete ab initio models for grain boundary precipitation based upon fundamental principles of thermodynamics and kinetics are not available, despite the critical role that such precipitates play in dictating intergranular corrosion phenomena. Empirical models can therefore serve an important role in advancing the understanding of grain boundary precipitation kinetics, which is an approach applicable beyond the present context. High resolution scanning electron microscopy was to quantify the size and distribution of β-phase precipitates on Ga-embrittled intergranular fracture surfaces of AA5083. The results are compared with the degree of sensitisation (DoS) as judged by nitric acid mass loss testing (ASTM-G67-04), and discussed with models for sensitisation in 5xxx series Al-alloys. The work herein allows sensitisation to be quantified from an unambiguous microstructural perspective.
url https://doi.org/10.1038/s41598-017-03090-4
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