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Formability prediction of Ti6Al4V titanium alloy sheet deformed at room temperature and 600 °C

Bibliographic Details
Main Author: Bressan J.D.*
Publication Date: 2021
Other Authors: Wang Q., Simonetto E., Ghiotti A., Bruschi S.
Format: Article
Language: eng
Source: Repositório Institucional da Udesc
dARK ID: ark:/33523/001300000ksh4
Download full: https://repositorio.udesc.br/handle/UDESC/3791
Summary: © 2020, Springer-Verlag France SAS, part of Springer Nature.Formability predictions of Ti6Al4V titanium alloy sheets deformed at room temperature and 600 °C, using D-Bressan’s shear stress rupture criterion and the critical strain gradient macroscopic modelling are presented and discussed in relation to limit strain results obtained experimentally. Ti6Al4V Forming Limit Strain Curves were predicted and compared with experimental curves at 25 °C and 600 °C and strain rate 0.1 s−1. The analytical models were calibrated by means of tensile tests performed on samples cut at 0°, 45° and 90° to the rolling direction at different temperatures and strain rates to obtain the Lankford coefficients and material strain and strain rate hardening behavior. The applied critical shear stress rupture criterion showed to give a fairly good fit with experimental limit strains outcomes, proving that the shear stress rupture nature of specimens deformed at room and elevated temperatures were well reproduced, despite a not-null strain rate sensitivity coefficient at 600 °C. Fracture occurrence by fast shear stress mechanism through thickness direction was corroborated by experimental fractograph observations close to fracture surfaces. It was shown that predicted limiting major true strain of fracture by shear stress curve is governed by normal anisotropy, strain hardening exponent, pre-strain and normalized critical shear stress parameter, which depends on temperature and strain rate whereas the strain hardening exponent depends largely on temperature. In contrast, the critical strain gradient modelling for onset of localized necking showed poor correlation with the experimental limit strains. Best fit of the critical shear stress criterion with experimental limit strain curves was given by specimens deformed near plane strain or FLCo. Hence, a common feature of various strain-rate independent metals, annealed or cold rolled, is that the main fracture mechanism of thin sheet metals can be considered as fast shear stress through sheet thickness without a visible localized necking in biaxial stretching.
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spelling Formability prediction of Ti6Al4V titanium alloy sheet deformed at room temperature and 600 °C© 2020, Springer-Verlag France SAS, part of Springer Nature.Formability predictions of Ti6Al4V titanium alloy sheets deformed at room temperature and 600 °C, using D-Bressan’s shear stress rupture criterion and the critical strain gradient macroscopic modelling are presented and discussed in relation to limit strain results obtained experimentally. Ti6Al4V Forming Limit Strain Curves were predicted and compared with experimental curves at 25 °C and 600 °C and strain rate 0.1 s−1. The analytical models were calibrated by means of tensile tests performed on samples cut at 0°, 45° and 90° to the rolling direction at different temperatures and strain rates to obtain the Lankford coefficients and material strain and strain rate hardening behavior. The applied critical shear stress rupture criterion showed to give a fairly good fit with experimental limit strains outcomes, proving that the shear stress rupture nature of specimens deformed at room and elevated temperatures were well reproduced, despite a not-null strain rate sensitivity coefficient at 600 °C. Fracture occurrence by fast shear stress mechanism through thickness direction was corroborated by experimental fractograph observations close to fracture surfaces. It was shown that predicted limiting major true strain of fracture by shear stress curve is governed by normal anisotropy, strain hardening exponent, pre-strain and normalized critical shear stress parameter, which depends on temperature and strain rate whereas the strain hardening exponent depends largely on temperature. In contrast, the critical strain gradient modelling for onset of localized necking showed poor correlation with the experimental limit strains. Best fit of the critical shear stress criterion with experimental limit strain curves was given by specimens deformed near plane strain or FLCo. Hence, a common feature of various strain-rate independent metals, annealed or cold rolled, is that the main fracture mechanism of thin sheet metals can be considered as fast shear stress through sheet thickness without a visible localized necking in biaxial stretching.2024-12-06T11:33:06Z2021info:eu-repo/semantics/publishedVersioninfo:eu-repo/semantics/articlep. 391 - 4051960-621410.1007/s12289-020-01546-zhttps://repositorio.udesc.br/handle/UDESC/3791ark:/33523/001300000ksh4International Journal of Material Forming143Bressan J.D.*Wang Q.Simonetto E.Ghiotti A.Bruschi S.engreponame:Repositório Institucional da Udescinstname:Universidade do Estado de Santa Catarina (UDESC)instacron:UDESCinfo:eu-repo/semantics/openAccess2024-12-07T20:42:45Zoai:repositorio.udesc.br:UDESC/3791Biblioteca Digital de Teses e Dissertaçõeshttps://pergamumweb.udesc.br/biblioteca/index.phpPRIhttps://repositorio-api.udesc.br/server/oai/requestri@udesc.bropendoar:63912024-12-07T20:42:45Repositório Institucional da Udesc - Universidade do Estado de Santa Catarina (UDESC)false
dc.title.none.fl_str_mv Formability prediction of Ti6Al4V titanium alloy sheet deformed at room temperature and 600 °C
title Formability prediction of Ti6Al4V titanium alloy sheet deformed at room temperature and 600 °C
spellingShingle Formability prediction of Ti6Al4V titanium alloy sheet deformed at room temperature and 600 °C
Bressan J.D.*
title_short Formability prediction of Ti6Al4V titanium alloy sheet deformed at room temperature and 600 °C
title_full Formability prediction of Ti6Al4V titanium alloy sheet deformed at room temperature and 600 °C
title_fullStr Formability prediction of Ti6Al4V titanium alloy sheet deformed at room temperature and 600 °C
title_full_unstemmed Formability prediction of Ti6Al4V titanium alloy sheet deformed at room temperature and 600 °C
title_sort Formability prediction of Ti6Al4V titanium alloy sheet deformed at room temperature and 600 °C
author Bressan J.D.*
author_facet Bressan J.D.*
Wang Q.
Simonetto E.
Ghiotti A.
Bruschi S.
author_role author
author2 Wang Q.
Simonetto E.
Ghiotti A.
Bruschi S.
author2_role author
author
author
author
dc.contributor.author.fl_str_mv Bressan J.D.*
Wang Q.
Simonetto E.
Ghiotti A.
Bruschi S.
description © 2020, Springer-Verlag France SAS, part of Springer Nature.Formability predictions of Ti6Al4V titanium alloy sheets deformed at room temperature and 600 °C, using D-Bressan’s shear stress rupture criterion and the critical strain gradient macroscopic modelling are presented and discussed in relation to limit strain results obtained experimentally. Ti6Al4V Forming Limit Strain Curves were predicted and compared with experimental curves at 25 °C and 600 °C and strain rate 0.1 s−1. The analytical models were calibrated by means of tensile tests performed on samples cut at 0°, 45° and 90° to the rolling direction at different temperatures and strain rates to obtain the Lankford coefficients and material strain and strain rate hardening behavior. The applied critical shear stress rupture criterion showed to give a fairly good fit with experimental limit strains outcomes, proving that the shear stress rupture nature of specimens deformed at room and elevated temperatures were well reproduced, despite a not-null strain rate sensitivity coefficient at 600 °C. Fracture occurrence by fast shear stress mechanism through thickness direction was corroborated by experimental fractograph observations close to fracture surfaces. It was shown that predicted limiting major true strain of fracture by shear stress curve is governed by normal anisotropy, strain hardening exponent, pre-strain and normalized critical shear stress parameter, which depends on temperature and strain rate whereas the strain hardening exponent depends largely on temperature. In contrast, the critical strain gradient modelling for onset of localized necking showed poor correlation with the experimental limit strains. Best fit of the critical shear stress criterion with experimental limit strain curves was given by specimens deformed near plane strain or FLCo. Hence, a common feature of various strain-rate independent metals, annealed or cold rolled, is that the main fracture mechanism of thin sheet metals can be considered as fast shear stress through sheet thickness without a visible localized necking in biaxial stretching.
publishDate 2021
dc.date.none.fl_str_mv 2021
2024-12-06T11:33:06Z
dc.type.status.fl_str_mv info:eu-repo/semantics/publishedVersion
dc.type.driver.fl_str_mv info:eu-repo/semantics/article
format article
status_str publishedVersion
dc.identifier.uri.fl_str_mv 1960-6214
10.1007/s12289-020-01546-z
https://repositorio.udesc.br/handle/UDESC/3791
dc.identifier.dark.fl_str_mv ark:/33523/001300000ksh4
identifier_str_mv 1960-6214
10.1007/s12289-020-01546-z
ark:/33523/001300000ksh4
url https://repositorio.udesc.br/handle/UDESC/3791
dc.language.iso.fl_str_mv eng
language eng
dc.relation.none.fl_str_mv International Journal of Material Forming
14
3
dc.rights.driver.fl_str_mv info:eu-repo/semantics/openAccess
eu_rights_str_mv openAccess
dc.format.none.fl_str_mv p. 391 - 405
dc.source.none.fl_str_mv reponame:Repositório Institucional da Udesc
instname:Universidade do Estado de Santa Catarina (UDESC)
instacron:UDESC
instname_str Universidade do Estado de Santa Catarina (UDESC)
instacron_str UDESC
institution UDESC
reponame_str Repositório Institucional da Udesc
collection Repositório Institucional da Udesc
repository.name.fl_str_mv Repositório Institucional da Udesc - Universidade do Estado de Santa Catarina (UDESC)
repository.mail.fl_str_mv ri@udesc.br
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