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Effect of Cold Drawing and Annealing in Thermomechanical Treatment Route on the Microstructure and Functional Properties of Superelastic Ti-Zr-Nb Alloy

In this study, a superelastic Ti-18Zr-15Nb (at. %) alloy was subjected to thermomechanical treatment, including cold rotary forging, intermediate annealing, cold drawing, post-deformation annealing, and additional low-temperature aging. As a result of intermediate annealing, two structures of β-phas...

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Autores principales: Kudryashova, Anastasia, Lukashevich, Konstantin, Derkach, Mikhail, Strakhov, Oleg, Dubinskiy, Sergey, Andreev, Vladimir, Prokoshkin, Sergey, Sheremetyev, Vadim
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10384361/
https://www.ncbi.nlm.nih.gov/pubmed/37512291
http://dx.doi.org/10.3390/ma16145017
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author Kudryashova, Anastasia
Lukashevich, Konstantin
Derkach, Mikhail
Strakhov, Oleg
Dubinskiy, Sergey
Andreev, Vladimir
Prokoshkin, Sergey
Sheremetyev, Vadim
author_facet Kudryashova, Anastasia
Lukashevich, Konstantin
Derkach, Mikhail
Strakhov, Oleg
Dubinskiy, Sergey
Andreev, Vladimir
Prokoshkin, Sergey
Sheremetyev, Vadim
author_sort Kudryashova, Anastasia
collection PubMed
description In this study, a superelastic Ti-18Zr-15Nb (at. %) alloy was subjected to thermomechanical treatment, including cold rotary forging, intermediate annealing, cold drawing, post-deformation annealing, and additional low-temperature aging. As a result of intermediate annealing, two structures of β-phase were obtained: a fine-grained structure (d ≈ 3 µm) and a coarse-grained structure (d ≈ 11 µm). Cold drawing promotes grain elongation in the drawing direction; in a fine-grained state, grains form with a size of 4 × 2 µm, and in a coarse-grained state, they grow with a size of 16 × 6 µm. Post-deformation annealing (PDA) at 550 °C for 30 min leads to grain sizes of 5 µm and 3 µm, respectively. After PDA at 550 °C (30 min) in the fine-grained state, the wire exhibits high tensile strength (UTS = 624 MPa), highest elongation to failure (δ ≥ 8%), and maximum difference between the dislocation and transformation yield stresses, as well as the highest superelastic recovery strain (ε(r)(SE) ≥ 3.3%) and total elastic + superelastic recovery strain (ε(r)(el+SE) ≥ 5.4%). Additional low-temperature aging at 300 °C for 30–180 min leads to ω-phase formation, alloy hardening, embrittlement, and a significant decrease in superelastic recovery strain.
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spelling pubmed-103843612023-07-30 Effect of Cold Drawing and Annealing in Thermomechanical Treatment Route on the Microstructure and Functional Properties of Superelastic Ti-Zr-Nb Alloy Kudryashova, Anastasia Lukashevich, Konstantin Derkach, Mikhail Strakhov, Oleg Dubinskiy, Sergey Andreev, Vladimir Prokoshkin, Sergey Sheremetyev, Vadim Materials (Basel) Article In this study, a superelastic Ti-18Zr-15Nb (at. %) alloy was subjected to thermomechanical treatment, including cold rotary forging, intermediate annealing, cold drawing, post-deformation annealing, and additional low-temperature aging. As a result of intermediate annealing, two structures of β-phase were obtained: a fine-grained structure (d ≈ 3 µm) and a coarse-grained structure (d ≈ 11 µm). Cold drawing promotes grain elongation in the drawing direction; in a fine-grained state, grains form with a size of 4 × 2 µm, and in a coarse-grained state, they grow with a size of 16 × 6 µm. Post-deformation annealing (PDA) at 550 °C for 30 min leads to grain sizes of 5 µm and 3 µm, respectively. After PDA at 550 °C (30 min) in the fine-grained state, the wire exhibits high tensile strength (UTS = 624 MPa), highest elongation to failure (δ ≥ 8%), and maximum difference between the dislocation and transformation yield stresses, as well as the highest superelastic recovery strain (ε(r)(SE) ≥ 3.3%) and total elastic + superelastic recovery strain (ε(r)(el+SE) ≥ 5.4%). Additional low-temperature aging at 300 °C for 30–180 min leads to ω-phase formation, alloy hardening, embrittlement, and a significant decrease in superelastic recovery strain. MDPI 2023-07-15 /pmc/articles/PMC10384361/ /pubmed/37512291 http://dx.doi.org/10.3390/ma16145017 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
Kudryashova, Anastasia
Lukashevich, Konstantin
Derkach, Mikhail
Strakhov, Oleg
Dubinskiy, Sergey
Andreev, Vladimir
Prokoshkin, Sergey
Sheremetyev, Vadim
Effect of Cold Drawing and Annealing in Thermomechanical Treatment Route on the Microstructure and Functional Properties of Superelastic Ti-Zr-Nb Alloy
title Effect of Cold Drawing and Annealing in Thermomechanical Treatment Route on the Microstructure and Functional Properties of Superelastic Ti-Zr-Nb Alloy
title_full Effect of Cold Drawing and Annealing in Thermomechanical Treatment Route on the Microstructure and Functional Properties of Superelastic Ti-Zr-Nb Alloy
title_fullStr Effect of Cold Drawing and Annealing in Thermomechanical Treatment Route on the Microstructure and Functional Properties of Superelastic Ti-Zr-Nb Alloy
title_full_unstemmed Effect of Cold Drawing and Annealing in Thermomechanical Treatment Route on the Microstructure and Functional Properties of Superelastic Ti-Zr-Nb Alloy
title_short Effect of Cold Drawing and Annealing in Thermomechanical Treatment Route on the Microstructure and Functional Properties of Superelastic Ti-Zr-Nb Alloy
title_sort effect of cold drawing and annealing in thermomechanical treatment route on the microstructure and functional properties of superelastic ti-zr-nb alloy
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10384361/
https://www.ncbi.nlm.nih.gov/pubmed/37512291
http://dx.doi.org/10.3390/ma16145017
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