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Microstructure Evolution and Deformation Mechanisms of As-Cast Antibacterial Ti6Al4V-5Cu Alloy for Isothermal Forging Process

The hot workability behavior of antibacterial Ti6Al4V-5Cu alloy was investigated using a hot compression experiment in the temperature range of 790–1040 °C and strain rate of 10(−3)–10 s(−1) with a strain of 0.4. The deformation behavior of the alloy was characterized by Gleeble 3800 compression exp...

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Autores principales: Yeshanew, Solomon Kerealme, Bai, Chunguang, Jia, Qing, Xi, Tong, Zhang, Zhiqiang, Li, Diaofeng, Xia, Zhizhou, Yang, Rui, Yang, Ke
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9105015/
https://www.ncbi.nlm.nih.gov/pubmed/35591683
http://dx.doi.org/10.3390/ma15093349
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author Yeshanew, Solomon Kerealme
Bai, Chunguang
Jia, Qing
Xi, Tong
Zhang, Zhiqiang
Li, Diaofeng
Xia, Zhizhou
Yang, Rui
Yang, Ke
author_facet Yeshanew, Solomon Kerealme
Bai, Chunguang
Jia, Qing
Xi, Tong
Zhang, Zhiqiang
Li, Diaofeng
Xia, Zhizhou
Yang, Rui
Yang, Ke
author_sort Yeshanew, Solomon Kerealme
collection PubMed
description The hot workability behavior of antibacterial Ti6Al4V-5Cu alloy was investigated using a hot compression experiment in the temperature range of 790–1040 °C and strain rate of 10(−3)–10 s(−1) with a strain of 0.4. The deformation behavior of the alloy was characterized by Gleeble 3800 compression experiment, and the relationship among deformed microstructures and deformation parameters was established. The deformations of Ti6Al4V-5Cu alloy were temperature and strain rate-dependent. Higher temperature and lower strain rate made power dissipation efficiency (η) increase and reach 89%. The activation energies (Q) in the dual-phase (α + β) and single β phase regions were calculated as 175.43 and 159.03 kJ mol(−1), respectively. In the dual (α + β) phase region, with an increase in strain rate, flow-softening behavior was dominated, however in the single β phase region such as processing at 940 °C. Flow stress increased slightly in which work-hardening behavior was dominated (especially between strain rates of 10(−3)–1 s(−1)). The deformation at various conditions exhibited different stress-strain profiles, providing an insight that work hardening and flow softening coexisted in Ti6Al4V-5Cu alloy. The relative intensity of oscillatory change in flow stress profile decreased as the strain rate decreased. The hot workability of Ti6Al4V-5Cu alloy was also accessed from the viewpoint of the sub-grain structure.
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spelling pubmed-91050152022-05-14 Microstructure Evolution and Deformation Mechanisms of As-Cast Antibacterial Ti6Al4V-5Cu Alloy for Isothermal Forging Process Yeshanew, Solomon Kerealme Bai, Chunguang Jia, Qing Xi, Tong Zhang, Zhiqiang Li, Diaofeng Xia, Zhizhou Yang, Rui Yang, Ke Materials (Basel) Article The hot workability behavior of antibacterial Ti6Al4V-5Cu alloy was investigated using a hot compression experiment in the temperature range of 790–1040 °C and strain rate of 10(−3)–10 s(−1) with a strain of 0.4. The deformation behavior of the alloy was characterized by Gleeble 3800 compression experiment, and the relationship among deformed microstructures and deformation parameters was established. The deformations of Ti6Al4V-5Cu alloy were temperature and strain rate-dependent. Higher temperature and lower strain rate made power dissipation efficiency (η) increase and reach 89%. The activation energies (Q) in the dual-phase (α + β) and single β phase regions were calculated as 175.43 and 159.03 kJ mol(−1), respectively. In the dual (α + β) phase region, with an increase in strain rate, flow-softening behavior was dominated, however in the single β phase region such as processing at 940 °C. Flow stress increased slightly in which work-hardening behavior was dominated (especially between strain rates of 10(−3)–1 s(−1)). The deformation at various conditions exhibited different stress-strain profiles, providing an insight that work hardening and flow softening coexisted in Ti6Al4V-5Cu alloy. The relative intensity of oscillatory change in flow stress profile decreased as the strain rate decreased. The hot workability of Ti6Al4V-5Cu alloy was also accessed from the viewpoint of the sub-grain structure. MDPI 2022-05-06 /pmc/articles/PMC9105015/ /pubmed/35591683 http://dx.doi.org/10.3390/ma15093349 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Yeshanew, Solomon Kerealme
Bai, Chunguang
Jia, Qing
Xi, Tong
Zhang, Zhiqiang
Li, Diaofeng
Xia, Zhizhou
Yang, Rui
Yang, Ke
Microstructure Evolution and Deformation Mechanisms of As-Cast Antibacterial Ti6Al4V-5Cu Alloy for Isothermal Forging Process
title Microstructure Evolution and Deformation Mechanisms of As-Cast Antibacterial Ti6Al4V-5Cu Alloy for Isothermal Forging Process
title_full Microstructure Evolution and Deformation Mechanisms of As-Cast Antibacterial Ti6Al4V-5Cu Alloy for Isothermal Forging Process
title_fullStr Microstructure Evolution and Deformation Mechanisms of As-Cast Antibacterial Ti6Al4V-5Cu Alloy for Isothermal Forging Process
title_full_unstemmed Microstructure Evolution and Deformation Mechanisms of As-Cast Antibacterial Ti6Al4V-5Cu Alloy for Isothermal Forging Process
title_short Microstructure Evolution and Deformation Mechanisms of As-Cast Antibacterial Ti6Al4V-5Cu Alloy for Isothermal Forging Process
title_sort microstructure evolution and deformation mechanisms of as-cast antibacterial ti6al4v-5cu alloy for isothermal forging process
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9105015/
https://www.ncbi.nlm.nih.gov/pubmed/35591683
http://dx.doi.org/10.3390/ma15093349
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