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Characterization and Analysis of Strain Heterogeneity at Grain-Scale of Titanium Alloy with Tri-Modal Microstructure during Tensile Deformation

Grain-scale strain heterogeneity characteristics play a critical role in the ductile damage behavior and mechanical properties of two-phase titanium alloys. In this work, the grain-scale strain distribution, strain heterogeneity, and strain localization of titanium alloy with tri-modal microstructur...

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Autores principales: Gao, Pengfei, Li, Yanxi, Wu, Ronghai, Lei, Zhenni, Cai, Yang, Zhan, Mei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6266562/
https://www.ncbi.nlm.nih.gov/pubmed/30404187
http://dx.doi.org/10.3390/ma11112194
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author Gao, Pengfei
Li, Yanxi
Wu, Ronghai
Lei, Zhenni
Cai, Yang
Zhan, Mei
author_facet Gao, Pengfei
Li, Yanxi
Wu, Ronghai
Lei, Zhenni
Cai, Yang
Zhan, Mei
author_sort Gao, Pengfei
collection PubMed
description Grain-scale strain heterogeneity characteristics play a critical role in the ductile damage behavior and mechanical properties of two-phase titanium alloys. In this work, the grain-scale strain distribution, strain heterogeneity, and strain localization of titanium alloy with tri-modal microstructure (consisting of equiaxed α (α(p)), lamellar α (α(l)), and β transformed matrix (β(t))) during tensile deformation were experimentally investigated. The results show that the strain probability distribution of the whole microstructure obeys normal distribution during deformation. Significant strain heterogeneities exist in each constituent (α(p), α(l), and β(t)) and the whole microstructure. At lower macro-strain, α(p) and α(l) exhibit higher average strain than those of β(t) and the whole of the microstructure. Meanwhile, strain heterogeneity of each constituent is small and has a negligible change. The strain heterogeneity of the whole microstructure is mainly determined by α(p). At larger macro-strain, some highly deformed regions produce and their positions do not change during further deformation. As a result, the strain heterogeneity of each constituent increases fast, and the strain heterogeneity of whole microstructure is mainly related to α(l) in this deformation stage. On the other hand, two types of strain localization may be generated within α(p) and α(l) and at the α(p)/β(t) and α(l)/β(t) boundaries, respectively. The former type is caused by transgranular intense slip deformation and presents crystal orientation dependence. The latter type is related to the boundary sliding and presents spatial distribution dependence for α(l). These strain localizations greatly determine the micro-damages, thus forming the corresponding micro-voids within α(p) and α(l) and the micro-cracks at α(p)/β(t) and α(l)/β(t) boundaries in tri-modal microstructure at larger deformation.
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spelling pubmed-62665622018-12-17 Characterization and Analysis of Strain Heterogeneity at Grain-Scale of Titanium Alloy with Tri-Modal Microstructure during Tensile Deformation Gao, Pengfei Li, Yanxi Wu, Ronghai Lei, Zhenni Cai, Yang Zhan, Mei Materials (Basel) Article Grain-scale strain heterogeneity characteristics play a critical role in the ductile damage behavior and mechanical properties of two-phase titanium alloys. In this work, the grain-scale strain distribution, strain heterogeneity, and strain localization of titanium alloy with tri-modal microstructure (consisting of equiaxed α (α(p)), lamellar α (α(l)), and β transformed matrix (β(t))) during tensile deformation were experimentally investigated. The results show that the strain probability distribution of the whole microstructure obeys normal distribution during deformation. Significant strain heterogeneities exist in each constituent (α(p), α(l), and β(t)) and the whole microstructure. At lower macro-strain, α(p) and α(l) exhibit higher average strain than those of β(t) and the whole of the microstructure. Meanwhile, strain heterogeneity of each constituent is small and has a negligible change. The strain heterogeneity of the whole microstructure is mainly determined by α(p). At larger macro-strain, some highly deformed regions produce and their positions do not change during further deformation. As a result, the strain heterogeneity of each constituent increases fast, and the strain heterogeneity of whole microstructure is mainly related to α(l) in this deformation stage. On the other hand, two types of strain localization may be generated within α(p) and α(l) and at the α(p)/β(t) and α(l)/β(t) boundaries, respectively. The former type is caused by transgranular intense slip deformation and presents crystal orientation dependence. The latter type is related to the boundary sliding and presents spatial distribution dependence for α(l). These strain localizations greatly determine the micro-damages, thus forming the corresponding micro-voids within α(p) and α(l) and the micro-cracks at α(p)/β(t) and α(l)/β(t) boundaries in tri-modal microstructure at larger deformation. MDPI 2018-11-06 /pmc/articles/PMC6266562/ /pubmed/30404187 http://dx.doi.org/10.3390/ma11112194 Text en © 2018 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Gao, Pengfei
Li, Yanxi
Wu, Ronghai
Lei, Zhenni
Cai, Yang
Zhan, Mei
Characterization and Analysis of Strain Heterogeneity at Grain-Scale of Titanium Alloy with Tri-Modal Microstructure during Tensile Deformation
title Characterization and Analysis of Strain Heterogeneity at Grain-Scale of Titanium Alloy with Tri-Modal Microstructure during Tensile Deformation
title_full Characterization and Analysis of Strain Heterogeneity at Grain-Scale of Titanium Alloy with Tri-Modal Microstructure during Tensile Deformation
title_fullStr Characterization and Analysis of Strain Heterogeneity at Grain-Scale of Titanium Alloy with Tri-Modal Microstructure during Tensile Deformation
title_full_unstemmed Characterization and Analysis of Strain Heterogeneity at Grain-Scale of Titanium Alloy with Tri-Modal Microstructure during Tensile Deformation
title_short Characterization and Analysis of Strain Heterogeneity at Grain-Scale of Titanium Alloy with Tri-Modal Microstructure during Tensile Deformation
title_sort characterization and analysis of strain heterogeneity at grain-scale of titanium alloy with tri-modal microstructure during tensile deformation
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6266562/
https://www.ncbi.nlm.nih.gov/pubmed/30404187
http://dx.doi.org/10.3390/ma11112194
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