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Effect of Nb on β → α(″) Martensitic Phase Transformation and Characterization of New Biomedical Ti-xNb-3Fe-9Zr Alloys

A new generation of Ti-xNb-3Fe-9Zr (x = 15, 20, 25, 30, 35 wt %) alloys have been designed using various theoretical approaches including DV-xα cluster, molybdenum equivalency, and electron to atom ratio. Afterward, designed alloys are fabricated using cold crucible levitation melting technique. The...

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Autores principales: Jawed, Syed Faraz, Rabadia, Chirag Dhirajlal, Azim, Fahad, Khan, Saad Jawaid
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8668309/
https://www.ncbi.nlm.nih.gov/pubmed/34950283
http://dx.doi.org/10.1155/2021/8173425
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author Jawed, Syed Faraz
Rabadia, Chirag Dhirajlal
Azim, Fahad
Khan, Saad Jawaid
author_facet Jawed, Syed Faraz
Rabadia, Chirag Dhirajlal
Azim, Fahad
Khan, Saad Jawaid
author_sort Jawed, Syed Faraz
collection PubMed
description A new generation of Ti-xNb-3Fe-9Zr (x = 15, 20, 25, 30, 35 wt %) alloys have been designed using various theoretical approaches including DV-xα cluster, molybdenum equivalency, and electron to atom ratio. Afterward, designed alloys are fabricated using cold crucible levitation melting technique. The microstructure and mechanical performances of newly designed alloys are characterized in this work using scanning electron microscope and universal testing machine, respectively. Each alloy demonstrates monolithic β phase except Ti-35Nb-3Fe-9Zr alloy which display dual α(″) + β phases. Typically, niobium acts as an isomorphous beta stabilizer. However, in this work, formation of martensitic α(″) phases occurs at 35 wt % of niobium among the series of newly designed alloys. Furthermore, none of the alloys fail till the maximum load capacity of machine, i.e., 100 KN except Ti-35Nb-3Fe-9Zr alloy. Moreover, the Vickers hardness test is carried out on Ti-xNb-3Fe-9Zr alloys which demonstrate slip bands around the indentation for each alloy. Notably, the deformation bands and cracks around the indentations of each alloy have been observed using optical microscopy; Ti-35Nb-3Fe-9Zr demonstrates some cracks along with slip bands around its indentation. The Ti-25Nb-3Fe-9Zr alloy shows the highest yield strength of 1043 ± 20 MPa, large plasticity of 32 ± 0.5%, and adequate hardness of 152 ± 3.90 Hv among the investigated alloys. The Ti-25Nb-3Fe-9Zr alloy demonstrates good blend of strength and malleability. Therefore, Ti-25Nb-3Fe-9Zr can be used effectively for the biomedical applications.
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spelling pubmed-86683092021-12-22 Effect of Nb on β → α(″) Martensitic Phase Transformation and Characterization of New Biomedical Ti-xNb-3Fe-9Zr Alloys Jawed, Syed Faraz Rabadia, Chirag Dhirajlal Azim, Fahad Khan, Saad Jawaid Scanning Research Article A new generation of Ti-xNb-3Fe-9Zr (x = 15, 20, 25, 30, 35 wt %) alloys have been designed using various theoretical approaches including DV-xα cluster, molybdenum equivalency, and electron to atom ratio. Afterward, designed alloys are fabricated using cold crucible levitation melting technique. The microstructure and mechanical performances of newly designed alloys are characterized in this work using scanning electron microscope and universal testing machine, respectively. Each alloy demonstrates monolithic β phase except Ti-35Nb-3Fe-9Zr alloy which display dual α(″) + β phases. Typically, niobium acts as an isomorphous beta stabilizer. However, in this work, formation of martensitic α(″) phases occurs at 35 wt % of niobium among the series of newly designed alloys. Furthermore, none of the alloys fail till the maximum load capacity of machine, i.e., 100 KN except Ti-35Nb-3Fe-9Zr alloy. Moreover, the Vickers hardness test is carried out on Ti-xNb-3Fe-9Zr alloys which demonstrate slip bands around the indentation for each alloy. Notably, the deformation bands and cracks around the indentations of each alloy have been observed using optical microscopy; Ti-35Nb-3Fe-9Zr demonstrates some cracks along with slip bands around its indentation. The Ti-25Nb-3Fe-9Zr alloy shows the highest yield strength of 1043 ± 20 MPa, large plasticity of 32 ± 0.5%, and adequate hardness of 152 ± 3.90 Hv among the investigated alloys. The Ti-25Nb-3Fe-9Zr alloy demonstrates good blend of strength and malleability. Therefore, Ti-25Nb-3Fe-9Zr can be used effectively for the biomedical applications. Hindawi 2021-12-06 /pmc/articles/PMC8668309/ /pubmed/34950283 http://dx.doi.org/10.1155/2021/8173425 Text en Copyright © 2021 Syed Faraz Jawed et al. https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Jawed, Syed Faraz
Rabadia, Chirag Dhirajlal
Azim, Fahad
Khan, Saad Jawaid
Effect of Nb on β → α(″) Martensitic Phase Transformation and Characterization of New Biomedical Ti-xNb-3Fe-9Zr Alloys
title Effect of Nb on β → α(″) Martensitic Phase Transformation and Characterization of New Biomedical Ti-xNb-3Fe-9Zr Alloys
title_full Effect of Nb on β → α(″) Martensitic Phase Transformation and Characterization of New Biomedical Ti-xNb-3Fe-9Zr Alloys
title_fullStr Effect of Nb on β → α(″) Martensitic Phase Transformation and Characterization of New Biomedical Ti-xNb-3Fe-9Zr Alloys
title_full_unstemmed Effect of Nb on β → α(″) Martensitic Phase Transformation and Characterization of New Biomedical Ti-xNb-3Fe-9Zr Alloys
title_short Effect of Nb on β → α(″) Martensitic Phase Transformation and Characterization of New Biomedical Ti-xNb-3Fe-9Zr Alloys
title_sort effect of nb on β → α(″) martensitic phase transformation and characterization of new biomedical ti-xnb-3fe-9zr alloys
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8668309/
https://www.ncbi.nlm.nih.gov/pubmed/34950283
http://dx.doi.org/10.1155/2021/8173425
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