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Effect of High-Pressure Torsion and Annealing on the Structure, Phase Composition, and Microhardness of the Ti-18Zr-15Nb (at. %) Alloy

The Ti-18Zr-15Nb shape memory alloys are a new material for medical implants. The regularities of phase transformations during heating of this alloy in the coarse-grained quenched state and the nanostructured state after high-pressure torsion have been studied. The specimens in quenched state (Q) an...

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Autores principales: Gunderov, Dmitry, Kim, Karina, Gunderova, Sofia, Churakova, Anna, Lebedev, Yuri, Nafikov, Ruslan, Derkach, Mikhail, Lukashevich, Konstantin, Sheremetyev, Vadim, Prokoshkin, Sergey
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9959511/
https://www.ncbi.nlm.nih.gov/pubmed/36837384
http://dx.doi.org/10.3390/ma16041754
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author Gunderov, Dmitry
Kim, Karina
Gunderova, Sofia
Churakova, Anna
Lebedev, Yuri
Nafikov, Ruslan
Derkach, Mikhail
Lukashevich, Konstantin
Sheremetyev, Vadim
Prokoshkin, Sergey
author_facet Gunderov, Dmitry
Kim, Karina
Gunderova, Sofia
Churakova, Anna
Lebedev, Yuri
Nafikov, Ruslan
Derkach, Mikhail
Lukashevich, Konstantin
Sheremetyev, Vadim
Prokoshkin, Sergey
author_sort Gunderov, Dmitry
collection PubMed
description The Ti-18Zr-15Nb shape memory alloys are a new material for medical implants. The regularities of phase transformations during heating of this alloy in the coarse-grained quenched state and the nanostructured state after high-pressure torsion have been studied. The specimens in quenched state (Q) and HPT state were annealed at 300–550 °C for 0.5, 3, and 12 h. The α-phase formation in Ti-18Zr-15Nb alloy occurs by C-shaped kinetics with a pronounced peak near 400–450 °C for Q state and near 350–450 °C for HPT state, and stops or slows down at higher and lower annealing temperatures. The formation of a nanostructured state in the Ti-18Zr-15Nb alloy as a result of HPT suppresses the β→ω phase transformation during low-temperature annealing (300–350 °C), but activates the β→α phase transformation. In the Q-state the α-phase during annealing at 450–500 °C is formed in the form of plates with a length of tens of microns. The α-phase formed during annealing of nanostructured specimens has the appearance of nanosized particle-grains of predominantly equiaxed shape, distributed between the nanograins of β-phase. The changes in microhardness during annealing of Q-specimens correlate with changes in phase composition during aging.
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spelling pubmed-99595112023-02-26 Effect of High-Pressure Torsion and Annealing on the Structure, Phase Composition, and Microhardness of the Ti-18Zr-15Nb (at. %) Alloy Gunderov, Dmitry Kim, Karina Gunderova, Sofia Churakova, Anna Lebedev, Yuri Nafikov, Ruslan Derkach, Mikhail Lukashevich, Konstantin Sheremetyev, Vadim Prokoshkin, Sergey Materials (Basel) Article The Ti-18Zr-15Nb shape memory alloys are a new material for medical implants. The regularities of phase transformations during heating of this alloy in the coarse-grained quenched state and the nanostructured state after high-pressure torsion have been studied. The specimens in quenched state (Q) and HPT state were annealed at 300–550 °C for 0.5, 3, and 12 h. The α-phase formation in Ti-18Zr-15Nb alloy occurs by C-shaped kinetics with a pronounced peak near 400–450 °C for Q state and near 350–450 °C for HPT state, and stops or slows down at higher and lower annealing temperatures. The formation of a nanostructured state in the Ti-18Zr-15Nb alloy as a result of HPT suppresses the β→ω phase transformation during low-temperature annealing (300–350 °C), but activates the β→α phase transformation. In the Q-state the α-phase during annealing at 450–500 °C is formed in the form of plates with a length of tens of microns. The α-phase formed during annealing of nanostructured specimens has the appearance of nanosized particle-grains of predominantly equiaxed shape, distributed between the nanograins of β-phase. The changes in microhardness during annealing of Q-specimens correlate with changes in phase composition during aging. MDPI 2023-02-20 /pmc/articles/PMC9959511/ /pubmed/36837384 http://dx.doi.org/10.3390/ma16041754 Text en © 2023 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
Gunderov, Dmitry
Kim, Karina
Gunderova, Sofia
Churakova, Anna
Lebedev, Yuri
Nafikov, Ruslan
Derkach, Mikhail
Lukashevich, Konstantin
Sheremetyev, Vadim
Prokoshkin, Sergey
Effect of High-Pressure Torsion and Annealing on the Structure, Phase Composition, and Microhardness of the Ti-18Zr-15Nb (at. %) Alloy
title Effect of High-Pressure Torsion and Annealing on the Structure, Phase Composition, and Microhardness of the Ti-18Zr-15Nb (at. %) Alloy
title_full Effect of High-Pressure Torsion and Annealing on the Structure, Phase Composition, and Microhardness of the Ti-18Zr-15Nb (at. %) Alloy
title_fullStr Effect of High-Pressure Torsion and Annealing on the Structure, Phase Composition, and Microhardness of the Ti-18Zr-15Nb (at. %) Alloy
title_full_unstemmed Effect of High-Pressure Torsion and Annealing on the Structure, Phase Composition, and Microhardness of the Ti-18Zr-15Nb (at. %) Alloy
title_short Effect of High-Pressure Torsion and Annealing on the Structure, Phase Composition, and Microhardness of the Ti-18Zr-15Nb (at. %) Alloy
title_sort effect of high-pressure torsion and annealing on the structure, phase composition, and microhardness of the ti-18zr-15nb (at. %) alloy
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9959511/
https://www.ncbi.nlm.nih.gov/pubmed/36837384
http://dx.doi.org/10.3390/ma16041754
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