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Investigation of Thermal Stability of Microstructure and Mechanical Properties of Bimetallic Fine-Grained Wires from Al–0.25%Zr–(Sc,Hf) Alloys

Thermal stability of composite bimetallic wires from five novel microalloyed aluminum alloys with different contents of alloying elements (Zr, Sc, and Hf) is investigated. The alloy workpieces were obtained by induction-casting in a vacuum, preliminary severe plastic deformation, and annealing provi...

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Autores principales: Nokhrin, Aleksey, Shadrina, Iana, Chuvil’deev, Vladimir, Kopylov, Vladimir, Berendeev, Nikolay, Murashov, Artem, Bobrov, Aleksandr, Tabachkova, Nataliya, Smirnova, Elena, Faddeev, Mikhail
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8745996/
https://www.ncbi.nlm.nih.gov/pubmed/35009330
http://dx.doi.org/10.3390/ma15010185
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author Nokhrin, Aleksey
Shadrina, Iana
Chuvil’deev, Vladimir
Kopylov, Vladimir
Berendeev, Nikolay
Murashov, Artem
Bobrov, Aleksandr
Tabachkova, Nataliya
Smirnova, Elena
Faddeev, Mikhail
author_facet Nokhrin, Aleksey
Shadrina, Iana
Chuvil’deev, Vladimir
Kopylov, Vladimir
Berendeev, Nikolay
Murashov, Artem
Bobrov, Aleksandr
Tabachkova, Nataliya
Smirnova, Elena
Faddeev, Mikhail
author_sort Nokhrin, Aleksey
collection PubMed
description Thermal stability of composite bimetallic wires from five novel microalloyed aluminum alloys with different contents of alloying elements (Zr, Sc, and Hf) is investigated. The alloy workpieces were obtained by induction-casting in a vacuum, preliminary severe plastic deformation, and annealing providing the formation of a uniform microstructure and the nucleation of stabilizing intermetallide Al(3)(Zr,Sc,Hf) nanoparticles. The wires of 0.26 mm in diameter were obtained by simultaneous deformation of the Al alloy with Cu shell. The bimetallic wires demonstrated high strength and improved thermal stability. After annealing at 450–500 °C, a uniform fine-grained microstructure formed in the wire (the mean grain sizes in the annealed Al wires are 3–5 μm). An increased hardness and strength due to nucleation of the Al(3)(Sc,Hf) particles was observed. A diffusion of Cu from the shell into the surface layers of the Al wire was observed when heating up to 400–450 °C. The Cu diffusion depth into the annealed Al wire surfaces reached 30–40 μm. The maximum elongation to failure of the wires (20–30%) was achieved after annealing at 350 °C. The maximum values of microhardness (H(v) = 500–520 MPa) and of ultimate strength (σ(b) = 195–235 MPa) after annealing at 500 °C were observed for the wires made from the Al alloys alloyed with 0.05–0.1% Sc.
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spelling pubmed-87459962022-01-11 Investigation of Thermal Stability of Microstructure and Mechanical Properties of Bimetallic Fine-Grained Wires from Al–0.25%Zr–(Sc,Hf) Alloys Nokhrin, Aleksey Shadrina, Iana Chuvil’deev, Vladimir Kopylov, Vladimir Berendeev, Nikolay Murashov, Artem Bobrov, Aleksandr Tabachkova, Nataliya Smirnova, Elena Faddeev, Mikhail Materials (Basel) Article Thermal stability of composite bimetallic wires from five novel microalloyed aluminum alloys with different contents of alloying elements (Zr, Sc, and Hf) is investigated. The alloy workpieces were obtained by induction-casting in a vacuum, preliminary severe plastic deformation, and annealing providing the formation of a uniform microstructure and the nucleation of stabilizing intermetallide Al(3)(Zr,Sc,Hf) nanoparticles. The wires of 0.26 mm in diameter were obtained by simultaneous deformation of the Al alloy with Cu shell. The bimetallic wires demonstrated high strength and improved thermal stability. After annealing at 450–500 °C, a uniform fine-grained microstructure formed in the wire (the mean grain sizes in the annealed Al wires are 3–5 μm). An increased hardness and strength due to nucleation of the Al(3)(Sc,Hf) particles was observed. A diffusion of Cu from the shell into the surface layers of the Al wire was observed when heating up to 400–450 °C. The Cu diffusion depth into the annealed Al wire surfaces reached 30–40 μm. The maximum elongation to failure of the wires (20–30%) was achieved after annealing at 350 °C. The maximum values of microhardness (H(v) = 500–520 MPa) and of ultimate strength (σ(b) = 195–235 MPa) after annealing at 500 °C were observed for the wires made from the Al alloys alloyed with 0.05–0.1% Sc. MDPI 2021-12-27 /pmc/articles/PMC8745996/ /pubmed/35009330 http://dx.doi.org/10.3390/ma15010185 Text en © 2021 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
Nokhrin, Aleksey
Shadrina, Iana
Chuvil’deev, Vladimir
Kopylov, Vladimir
Berendeev, Nikolay
Murashov, Artem
Bobrov, Aleksandr
Tabachkova, Nataliya
Smirnova, Elena
Faddeev, Mikhail
Investigation of Thermal Stability of Microstructure and Mechanical Properties of Bimetallic Fine-Grained Wires from Al–0.25%Zr–(Sc,Hf) Alloys
title Investigation of Thermal Stability of Microstructure and Mechanical Properties of Bimetallic Fine-Grained Wires from Al–0.25%Zr–(Sc,Hf) Alloys
title_full Investigation of Thermal Stability of Microstructure and Mechanical Properties of Bimetallic Fine-Grained Wires from Al–0.25%Zr–(Sc,Hf) Alloys
title_fullStr Investigation of Thermal Stability of Microstructure and Mechanical Properties of Bimetallic Fine-Grained Wires from Al–0.25%Zr–(Sc,Hf) Alloys
title_full_unstemmed Investigation of Thermal Stability of Microstructure and Mechanical Properties of Bimetallic Fine-Grained Wires from Al–0.25%Zr–(Sc,Hf) Alloys
title_short Investigation of Thermal Stability of Microstructure and Mechanical Properties of Bimetallic Fine-Grained Wires from Al–0.25%Zr–(Sc,Hf) Alloys
title_sort investigation of thermal stability of microstructure and mechanical properties of bimetallic fine-grained wires from al–0.25%zr–(sc,hf) alloys
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8745996/
https://www.ncbi.nlm.nih.gov/pubmed/35009330
http://dx.doi.org/10.3390/ma15010185
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