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Effects of Static Magnetic Field on Compression Properties of Mg-Al-Gd Alloys Containing Gd-Rich Ferromagnetic Phase

The Mg–0.6Al–20.8Gd (wt.%) alloys were homogenized at 620 °C for 20 min under 0 T and 1 T, followed by furnace cooling, quenching, and air cooling, respectively. The effects of the magnetic field on the phase constituent, microstructure, secondary phase precipitation, and mechanical properties of th...

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Autores principales: Cai, Qi, Li, Xinyao, Li, Shukui, He, Chuan, Liu, Xingwei, Feng, Xinya
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7663578/
https://www.ncbi.nlm.nih.gov/pubmed/33158144
http://dx.doi.org/10.3390/ma13214957
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author Cai, Qi
Li, Xinyao
Li, Shukui
He, Chuan
Liu, Xingwei
Feng, Xinya
author_facet Cai, Qi
Li, Xinyao
Li, Shukui
He, Chuan
Liu, Xingwei
Feng, Xinya
author_sort Cai, Qi
collection PubMed
description The Mg–0.6Al–20.8Gd (wt.%) alloys were homogenized at 620 °C for 20 min under 0 T and 1 T, followed by furnace cooling, quenching, and air cooling, respectively. The effects of the magnetic field on the phase constituent, microstructure, secondary phase precipitation, and mechanical properties of the Mg–Al–Gd alloys were investigated. The Mg–Al–Gd alloys contained α-Mg, Mg(5)Gd, Al(2)Gd, and GdH(2) phases, and the phase constituents were hardly influenced by the applied magnetic field. However, the precipitation of the paramagnetic Mg(5)Gd upon cooling was accelerated by the magnetic field, and that of the ferromagnetic Al(2)Gd phases was inhibited. In addition, the Al(2)Gd phase was significantly refined and driven to segregate at the grain boundaries by the magnetic field, and the resultant pinning effect led to the microstructure change from dendritic α-Mg grains to rosette-like ones. When the magnetic field was only applied to the homogenization stage, the content of the Mg(5)Gd phase remained unchanged in the quenched alloy, whereas the Mg(5)Gd laths were significantly refined. By contrast, the contents of the Al(2)Gd and GdH(2) phases were increased, while the precipitation sites were still within the α-Mg grains. The Mg(5)Gd laths were incapable of providing precipitation strengthening, while the Al(2)Gd and GdH(2) particles brought positive effects on the enhancement of the mechanical properties. In the quenching condition, the hardness, compression strength, and ductility can be improved by the magnetic treatment, whereas these mechanical properties can be suppressed in the furnace cooled condition by the magnetic treatment.
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spelling pubmed-76635782020-11-14 Effects of Static Magnetic Field on Compression Properties of Mg-Al-Gd Alloys Containing Gd-Rich Ferromagnetic Phase Cai, Qi Li, Xinyao Li, Shukui He, Chuan Liu, Xingwei Feng, Xinya Materials (Basel) Article The Mg–0.6Al–20.8Gd (wt.%) alloys were homogenized at 620 °C for 20 min under 0 T and 1 T, followed by furnace cooling, quenching, and air cooling, respectively. The effects of the magnetic field on the phase constituent, microstructure, secondary phase precipitation, and mechanical properties of the Mg–Al–Gd alloys were investigated. The Mg–Al–Gd alloys contained α-Mg, Mg(5)Gd, Al(2)Gd, and GdH(2) phases, and the phase constituents were hardly influenced by the applied magnetic field. However, the precipitation of the paramagnetic Mg(5)Gd upon cooling was accelerated by the magnetic field, and that of the ferromagnetic Al(2)Gd phases was inhibited. In addition, the Al(2)Gd phase was significantly refined and driven to segregate at the grain boundaries by the magnetic field, and the resultant pinning effect led to the microstructure change from dendritic α-Mg grains to rosette-like ones. When the magnetic field was only applied to the homogenization stage, the content of the Mg(5)Gd phase remained unchanged in the quenched alloy, whereas the Mg(5)Gd laths were significantly refined. By contrast, the contents of the Al(2)Gd and GdH(2) phases were increased, while the precipitation sites were still within the α-Mg grains. The Mg(5)Gd laths were incapable of providing precipitation strengthening, while the Al(2)Gd and GdH(2) particles brought positive effects on the enhancement of the mechanical properties. In the quenching condition, the hardness, compression strength, and ductility can be improved by the magnetic treatment, whereas these mechanical properties can be suppressed in the furnace cooled condition by the magnetic treatment. MDPI 2020-11-04 /pmc/articles/PMC7663578/ /pubmed/33158144 http://dx.doi.org/10.3390/ma13214957 Text en © 2020 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Cai, Qi
Li, Xinyao
Li, Shukui
He, Chuan
Liu, Xingwei
Feng, Xinya
Effects of Static Magnetic Field on Compression Properties of Mg-Al-Gd Alloys Containing Gd-Rich Ferromagnetic Phase
title Effects of Static Magnetic Field on Compression Properties of Mg-Al-Gd Alloys Containing Gd-Rich Ferromagnetic Phase
title_full Effects of Static Magnetic Field on Compression Properties of Mg-Al-Gd Alloys Containing Gd-Rich Ferromagnetic Phase
title_fullStr Effects of Static Magnetic Field on Compression Properties of Mg-Al-Gd Alloys Containing Gd-Rich Ferromagnetic Phase
title_full_unstemmed Effects of Static Magnetic Field on Compression Properties of Mg-Al-Gd Alloys Containing Gd-Rich Ferromagnetic Phase
title_short Effects of Static Magnetic Field on Compression Properties of Mg-Al-Gd Alloys Containing Gd-Rich Ferromagnetic Phase
title_sort effects of static magnetic field on compression properties of mg-al-gd alloys containing gd-rich ferromagnetic phase
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7663578/
https://www.ncbi.nlm.nih.gov/pubmed/33158144
http://dx.doi.org/10.3390/ma13214957
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