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Alloying Elements Effect on the Recrystallization Process in Magnesium-Rich Aluminum Alloy

This paper addresses the study of the complex effect of alloying elements (magnesium, manganese, copper and zirconium) on changes in magnesium-rich aluminum alloy composition, fine and coarse particle size and number, recrystallization characteristics and mechanical properties. The data obtained mad...

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Autores principales: Aryshenskii, Vladimir, Grechnikov, Fedor, Aryshenskii, Evgenii, Erisov, Yaroslav, Konovalov, Sergey, Tepterev, Maksim, Kuzin, Alexander
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9605260/
https://www.ncbi.nlm.nih.gov/pubmed/36295128
http://dx.doi.org/10.3390/ma15207062
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author Aryshenskii, Vladimir
Grechnikov, Fedor
Aryshenskii, Evgenii
Erisov, Yaroslav
Konovalov, Sergey
Tepterev, Maksim
Kuzin, Alexander
author_facet Aryshenskii, Vladimir
Grechnikov, Fedor
Aryshenskii, Evgenii
Erisov, Yaroslav
Konovalov, Sergey
Tepterev, Maksim
Kuzin, Alexander
author_sort Aryshenskii, Vladimir
collection PubMed
description This paper addresses the study of the complex effect of alloying elements (magnesium, manganese, copper and zirconium) on changes in magnesium-rich aluminum alloy composition, fine and coarse particle size and number, recrystallization characteristics and mechanical properties. The data obtained made it possible to analyze change in the chemical composition, sizes of intermetallic compounds and dispersoids depending on alloying elements content. The effect of the chemical composition on the driving force and the number of recrystallization nuclei was studied. It was established that the addition of alloying elements leads to grain refinement, including through the activation of a particle-stimulated nucleation mechanism. As a result, with Mg increase from 4 to 5%, addition of 0.5% Mn and 0.5% Cu, the grain size decreased from 72 to 15 µm. Grain refinement occurred due to an increase in the number of particle-stimulated nuclei, the number of which at minimal alloying rose from 3.47 × 10(11) to 81.2 × 10(11) with the maximum concentration of Mg, Mn, Cu additives. The retarding force of recrystallization, which in the original alloy was 1.57 × 10(−3) N/m(2), increased to 5.49 × 10(−3) N/m(2) at maximum alloying. The influence of copper was especially noticeable, the introduction of 0.5% increasing the retarding force of recrystallization by 2.39 × 10(−3) N/m(2). This is due to the fact that copper has the most significant effect on the size and number of intermetallic particles. It was established that strength increase without ductility change occurs when magnesium, manganese and copper content increases.
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spelling pubmed-96052602022-10-27 Alloying Elements Effect on the Recrystallization Process in Magnesium-Rich Aluminum Alloy Aryshenskii, Vladimir Grechnikov, Fedor Aryshenskii, Evgenii Erisov, Yaroslav Konovalov, Sergey Tepterev, Maksim Kuzin, Alexander Materials (Basel) Article This paper addresses the study of the complex effect of alloying elements (magnesium, manganese, copper and zirconium) on changes in magnesium-rich aluminum alloy composition, fine and coarse particle size and number, recrystallization characteristics and mechanical properties. The data obtained made it possible to analyze change in the chemical composition, sizes of intermetallic compounds and dispersoids depending on alloying elements content. The effect of the chemical composition on the driving force and the number of recrystallization nuclei was studied. It was established that the addition of alloying elements leads to grain refinement, including through the activation of a particle-stimulated nucleation mechanism. As a result, with Mg increase from 4 to 5%, addition of 0.5% Mn and 0.5% Cu, the grain size decreased from 72 to 15 µm. Grain refinement occurred due to an increase in the number of particle-stimulated nuclei, the number of which at minimal alloying rose from 3.47 × 10(11) to 81.2 × 10(11) with the maximum concentration of Mg, Mn, Cu additives. The retarding force of recrystallization, which in the original alloy was 1.57 × 10(−3) N/m(2), increased to 5.49 × 10(−3) N/m(2) at maximum alloying. The influence of copper was especially noticeable, the introduction of 0.5% increasing the retarding force of recrystallization by 2.39 × 10(−3) N/m(2). This is due to the fact that copper has the most significant effect on the size and number of intermetallic particles. It was established that strength increase without ductility change occurs when magnesium, manganese and copper content increases. MDPI 2022-10-11 /pmc/articles/PMC9605260/ /pubmed/36295128 http://dx.doi.org/10.3390/ma15207062 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
Aryshenskii, Vladimir
Grechnikov, Fedor
Aryshenskii, Evgenii
Erisov, Yaroslav
Konovalov, Sergey
Tepterev, Maksim
Kuzin, Alexander
Alloying Elements Effect on the Recrystallization Process in Magnesium-Rich Aluminum Alloy
title Alloying Elements Effect on the Recrystallization Process in Magnesium-Rich Aluminum Alloy
title_full Alloying Elements Effect on the Recrystallization Process in Magnesium-Rich Aluminum Alloy
title_fullStr Alloying Elements Effect on the Recrystallization Process in Magnesium-Rich Aluminum Alloy
title_full_unstemmed Alloying Elements Effect on the Recrystallization Process in Magnesium-Rich Aluminum Alloy
title_short Alloying Elements Effect on the Recrystallization Process in Magnesium-Rich Aluminum Alloy
title_sort alloying elements effect on the recrystallization process in magnesium-rich aluminum alloy
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9605260/
https://www.ncbi.nlm.nih.gov/pubmed/36295128
http://dx.doi.org/10.3390/ma15207062
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