Complex Flow Stress Model for a Magnesium Alloy AZ31 at Hot Forming
Compression tests of magnesium alloy Mg-3Al-1Zn (AZ31) at different temperatures and strain rate were made on plastometer Gleeble 3800. Deformation behaviour and particularly shape of stress-strain curves of the alloy AZ31 differ significantly at low and high values of Zener–Hollomon parameter Z. Th...
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Online Access: | https://doi.org/10.1515/htmp.2011.008 |
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doaj-c577939ed1e643c19b47f612277ec7e32021-09-06T19:19:58ZengDe GruyterHigh Temperature Materials and Processes0334-64552191-03242011-04-01301-2636910.1515/htmp.2011.008Complex Flow Stress Model for a Magnesium Alloy AZ31 at Hot FormingLegerski Miroslav0Plura Jiří1Schindler Ivo2Rusz Stanislav3Kawulok Petr4Kulveitová Hana5Hadasik Eugeniusz6Kuc Dariusz7Niewielski Grzegorz8VŠB – Technical University of Ostrava, Faculty of Metallurgy and Materials Engineering, Czech RepublicVŠB – Technical University of Ostrava, Faculty of Metallurgy and Materials Engineering, Czech RepublicVŠB – Technical University of Ostrava, Faculty of Metallurgy and Materials Engineering, Czech RepublicVŠB – Technical University of Ostrava, Faculty of Metallurgy and Materials Engineering, Czech RepublicVŠB – Technical University of Ostrava, Faculty of Metallurgy and Materials Engineering, Czech RepublicVŠB – Technical University of Ostrava, Faculty of Metallurgy and Materials Engineering, Czech RepublicSilesian University of Technology, Faculty of Materials Science and Metallurgy, PolandSilesian University of Technology, Faculty of Materials Science and Metallurgy, PolandSilesian University of Technology, Faculty of Materials Science and Metallurgy, PolandCompression tests of magnesium alloy Mg-3Al-1Zn (AZ31) at different temperatures and strain rate were made on plastometer Gleeble 3800. Deformation behaviour and particularly shape of stress-strain curves of the alloy AZ31 differ significantly at low and high values of Zener–Hollomon parameter Z. The border between these areas was determined mathematically as Z = 2.9E+13 s–1. While the calculated activation energy Q was for both these areas practically identical (157 or 155 kJ mol–1), mathematical description of coordinates of the peak stress differs considerably. Regression and statistical analysis of experimental data have confirmed unequivocally, that it was impossible to describe by a uniform equation the whole set of data (i.e. traditional stress-strain curves, as well as those with atypical initial stage, given by the massive twinning). That's why two mathematical models were developed enabling prediction of the flow stress of investigated magnesium alloy in dependence on temperature, strain and strain rate, with inclusion of the influence of dynamic recrystallisation.https://doi.org/10.1515/htmp.2011.008magnesium alloy az31stress-strain curvesactivation energyhot flow stress model |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Legerski Miroslav Plura Jiří Schindler Ivo Rusz Stanislav Kawulok Petr Kulveitová Hana Hadasik Eugeniusz Kuc Dariusz Niewielski Grzegorz |
spellingShingle |
Legerski Miroslav Plura Jiří Schindler Ivo Rusz Stanislav Kawulok Petr Kulveitová Hana Hadasik Eugeniusz Kuc Dariusz Niewielski Grzegorz Complex Flow Stress Model for a Magnesium Alloy AZ31 at Hot Forming High Temperature Materials and Processes magnesium alloy az31 stress-strain curves activation energy hot flow stress model |
author_facet |
Legerski Miroslav Plura Jiří Schindler Ivo Rusz Stanislav Kawulok Petr Kulveitová Hana Hadasik Eugeniusz Kuc Dariusz Niewielski Grzegorz |
author_sort |
Legerski Miroslav |
title |
Complex Flow Stress Model for a Magnesium Alloy AZ31 at Hot Forming |
title_short |
Complex Flow Stress Model for a Magnesium Alloy AZ31 at Hot Forming |
title_full |
Complex Flow Stress Model for a Magnesium Alloy AZ31 at Hot Forming |
title_fullStr |
Complex Flow Stress Model for a Magnesium Alloy AZ31 at Hot Forming |
title_full_unstemmed |
Complex Flow Stress Model for a Magnesium Alloy AZ31 at Hot Forming |
title_sort |
complex flow stress model for a magnesium alloy az31 at hot forming |
publisher |
De Gruyter |
series |
High Temperature Materials and Processes |
issn |
0334-6455 2191-0324 |
publishDate |
2011-04-01 |
description |
Compression tests of magnesium alloy Mg-3Al-1Zn (AZ31) at different temperatures and strain rate were made on plastometer Gleeble 3800. Deformation behaviour and particularly shape of stress-strain curves of the alloy AZ31 differ significantly at low and high values of Zener–Hollomon parameter Z. The border between these areas was determined mathematically as Z = 2.9E+13 s–1. While the calculated activation energy Q was for both these areas practically identical (157 or 155 kJ mol–1), mathematical description of coordinates of the peak stress differs considerably. Regression and statistical analysis of experimental data have confirmed unequivocally, that it was impossible to describe by a uniform equation the whole set of data (i.e. traditional stress-strain curves, as well as those with atypical initial stage, given by the massive twinning). That's why two mathematical models were developed enabling prediction of the flow stress of investigated magnesium alloy in dependence on temperature, strain and strain rate, with inclusion of the influence of dynamic recrystallisation. |
topic |
magnesium alloy az31 stress-strain curves activation energy hot flow stress model |
url |
https://doi.org/10.1515/htmp.2011.008 |
work_keys_str_mv |
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