Deformation behaviour of beta phase with similar chemical composition in beta and alpha+beta titanium alloys

Twinning-induced plasticity (TWIP) and transformation-induced plasticity (TRIP) in β titanium alloys have been attracting significant interest, since they offer the possibility to provide work hardening and thus, ductility. Here a quaternary Ti-Al-Cr-Mo metastable β alloy has been designed with an e...

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Main Authors: Xu Xin, Bantounas Ioannis, Dye David
Format: Article
Language:English
Published: EDP Sciences 2020-01-01
Series:MATEC Web of Conferences
Online Access:https://www.matec-conferences.org/articles/matecconf/pdf/2020/17/matecconf_ti2019_11082.pdf
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spelling doaj-7dd5cbbfb9d448168e5742d38c4e956f2021-08-11T12:58:32ZengEDP SciencesMATEC Web of Conferences2261-236X2020-01-013211108210.1051/matecconf/202032111082matecconf_ti2019_11082Deformation behaviour of beta phase with similar chemical composition in beta and alpha+beta titanium alloysXu XinBantounas IoannisDye DavidTwinning-induced plasticity (TWIP) and transformation-induced plasticity (TRIP) in β titanium alloys have been attracting significant interest, since they offer the possibility to provide work hardening and thus, ductility. Here a quaternary Ti-Al-Cr-Mo metastable β alloy has been designed with an excellent combination of strength ductility that exploits the TWIP and TRIP effects. Its engineering yield strength, tensile strength and total elongation are 737 MPa, 999 MPa and 24%, respectively. In order to increase the yield strength but retain ductility, an attempt has been carried to design an α+β alloy with a bimodal microstructure. The composition of the β phase in the α+β alloy was tuned to provide deformation twinning of the β phase. The content of the major α and β stabilising elements, i.e. Al, Cr and Mo, in the β phase of the α+β alloy was similar to the β alloy, but the deformation twinning was not observed in the β phase. It is suggested that this may be due to over-stabilisation of the β phase and/or to the different stress/strain and dislocation distributions in the α+β alloy caused by the presence of β phase.https://www.matec-conferences.org/articles/matecconf/pdf/2020/17/matecconf_ti2019_11082.pdf
collection DOAJ
language English
format Article
sources DOAJ
author Xu Xin
Bantounas Ioannis
Dye David
spellingShingle Xu Xin
Bantounas Ioannis
Dye David
Deformation behaviour of beta phase with similar chemical composition in beta and alpha+beta titanium alloys
MATEC Web of Conferences
author_facet Xu Xin
Bantounas Ioannis
Dye David
author_sort Xu Xin
title Deformation behaviour of beta phase with similar chemical composition in beta and alpha+beta titanium alloys
title_short Deformation behaviour of beta phase with similar chemical composition in beta and alpha+beta titanium alloys
title_full Deformation behaviour of beta phase with similar chemical composition in beta and alpha+beta titanium alloys
title_fullStr Deformation behaviour of beta phase with similar chemical composition in beta and alpha+beta titanium alloys
title_full_unstemmed Deformation behaviour of beta phase with similar chemical composition in beta and alpha+beta titanium alloys
title_sort deformation behaviour of beta phase with similar chemical composition in beta and alpha+beta titanium alloys
publisher EDP Sciences
series MATEC Web of Conferences
issn 2261-236X
publishDate 2020-01-01
description Twinning-induced plasticity (TWIP) and transformation-induced plasticity (TRIP) in β titanium alloys have been attracting significant interest, since they offer the possibility to provide work hardening and thus, ductility. Here a quaternary Ti-Al-Cr-Mo metastable β alloy has been designed with an excellent combination of strength ductility that exploits the TWIP and TRIP effects. Its engineering yield strength, tensile strength and total elongation are 737 MPa, 999 MPa and 24%, respectively. In order to increase the yield strength but retain ductility, an attempt has been carried to design an α+β alloy with a bimodal microstructure. The composition of the β phase in the α+β alloy was tuned to provide deformation twinning of the β phase. The content of the major α and β stabilising elements, i.e. Al, Cr and Mo, in the β phase of the α+β alloy was similar to the β alloy, but the deformation twinning was not observed in the β phase. It is suggested that this may be due to over-stabilisation of the β phase and/or to the different stress/strain and dislocation distributions in the α+β alloy caused by the presence of β phase.
url https://www.matec-conferences.org/articles/matecconf/pdf/2020/17/matecconf_ti2019_11082.pdf
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