Continuum modeling of the response of a Mg alloy AZ31 rolled sheet during uniaxial deformation

Lightweight magnesium alloys, such as AZ31, constitute alternative materials of interest for many industrial sectors such as the transport industry. For instance, reducing vehicle weight and thus fuel consumption can actively benefit the global efforts of the current environmental industry policies....

Full description

Bibliographic Details
Main Authors: Fernández, A, Pérez Prado, M, Wei, Y, Jérusalem, A
Format: Journal article
Language:English
Published: 2011
_version_ 1797088702374084608
author Fernández, A
Pérez Prado, M
Wei, Y
Jérusalem, A
author_facet Fernández, A
Pérez Prado, M
Wei, Y
Jérusalem, A
author_sort Fernández, A
collection OXFORD
description Lightweight magnesium alloys, such as AZ31, constitute alternative materials of interest for many industrial sectors such as the transport industry. For instance, reducing vehicle weight and thus fuel consumption can actively benefit the global efforts of the current environmental industry policies. To this end, several research groups are focusing their experimental efforts on the development of advanced Mg alloys. However, comparatively little computational work has been oriented towards the simulation of the micromechanisms underlying the deformation of these metals. Among them, the model developed by Staroselsky and Anand [Staroselsky, A., Anand, L., 2003. A constitutive model for HCP materials deforming by slip and twinning: application to magnesium alloy AZ31B. International Journal of Plasticity 19 (10), 1843-1864] successfully captured some of the intrinsic features of deformation in Magnesium alloys. Nevertheless, some deformation micromechanisms, such as cross-hardening between slip and twin systems, have been either simplified or disregarded. In this work, we propose the development of a crystal plasticity continuum model aimed at fully describing the intrinsic deformation mechanisms between slip and twin systems. In order to calibrate and validate the proposed model, an experimental campaign consisting of a set of quasi-static compression tests at room temperature along the rolling and normal directions of a polycrystalline AZ31 rolled sheet, as well as an analysis of the crystallographic texture at different stages of deformation, has been carried out. The model is then exploited by investigating stress and strain fields, texture evolution, and slip and twin activities during deformation. The flexibility of the overall model is ultimately demonstrated by casting light on an experimental controversy on the role of the pyramidal slip 〈c + a〉 versus compression twinning in the late stage of polycrystalline deformation, and a failure criterion related to basal slip activity is proposed.
first_indexed 2024-03-07T02:53:50Z
format Journal article
id oxford-uuid:ae9a8d7c-1eba-4140-a908-ae8870210730
institution University of Oxford
language English
last_indexed 2024-03-07T02:53:50Z
publishDate 2011
record_format dspace
spelling oxford-uuid:ae9a8d7c-1eba-4140-a908-ae88702107302022-03-27T03:43:44ZContinuum modeling of the response of a Mg alloy AZ31 rolled sheet during uniaxial deformationJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:ae9a8d7c-1eba-4140-a908-ae8870210730EnglishSymplectic Elements at Oxford2011Fernández, APérez Prado, MWei, YJérusalem, ALightweight magnesium alloys, such as AZ31, constitute alternative materials of interest for many industrial sectors such as the transport industry. For instance, reducing vehicle weight and thus fuel consumption can actively benefit the global efforts of the current environmental industry policies. To this end, several research groups are focusing their experimental efforts on the development of advanced Mg alloys. However, comparatively little computational work has been oriented towards the simulation of the micromechanisms underlying the deformation of these metals. Among them, the model developed by Staroselsky and Anand [Staroselsky, A., Anand, L., 2003. A constitutive model for HCP materials deforming by slip and twinning: application to magnesium alloy AZ31B. International Journal of Plasticity 19 (10), 1843-1864] successfully captured some of the intrinsic features of deformation in Magnesium alloys. Nevertheless, some deformation micromechanisms, such as cross-hardening between slip and twin systems, have been either simplified or disregarded. In this work, we propose the development of a crystal plasticity continuum model aimed at fully describing the intrinsic deformation mechanisms between slip and twin systems. In order to calibrate and validate the proposed model, an experimental campaign consisting of a set of quasi-static compression tests at room temperature along the rolling and normal directions of a polycrystalline AZ31 rolled sheet, as well as an analysis of the crystallographic texture at different stages of deformation, has been carried out. The model is then exploited by investigating stress and strain fields, texture evolution, and slip and twin activities during deformation. The flexibility of the overall model is ultimately demonstrated by casting light on an experimental controversy on the role of the pyramidal slip 〈c + a〉 versus compression twinning in the late stage of polycrystalline deformation, and a failure criterion related to basal slip activity is proposed.
spellingShingle Fernández, A
Pérez Prado, M
Wei, Y
Jérusalem, A
Continuum modeling of the response of a Mg alloy AZ31 rolled sheet during uniaxial deformation
title Continuum modeling of the response of a Mg alloy AZ31 rolled sheet during uniaxial deformation
title_full Continuum modeling of the response of a Mg alloy AZ31 rolled sheet during uniaxial deformation
title_fullStr Continuum modeling of the response of a Mg alloy AZ31 rolled sheet during uniaxial deformation
title_full_unstemmed Continuum modeling of the response of a Mg alloy AZ31 rolled sheet during uniaxial deformation
title_short Continuum modeling of the response of a Mg alloy AZ31 rolled sheet during uniaxial deformation
title_sort continuum modeling of the response of a mg alloy az31 rolled sheet during uniaxial deformation
work_keys_str_mv AT fernandeza continuummodelingoftheresponseofamgalloyaz31rolledsheetduringuniaxialdeformation
AT perezpradom continuummodelingoftheresponseofamgalloyaz31rolledsheetduringuniaxialdeformation
AT weiy continuummodelingoftheresponseofamgalloyaz31rolledsheetduringuniaxialdeformation
AT jerusalema continuummodelingoftheresponseofamgalloyaz31rolledsheetduringuniaxialdeformation