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Microstructure and Properties of Additively Manufactured AlCoCr(0.75)Cu(0.5)FeNi Multicomponent Alloy: Controlling Magnetic Properties by Laser Powder Bed Fusion via Spinodal Decomposition

A non-equiatomic AlCoCr(0.75)Cu(0.5)FeNi alloy has been identified as a potential high strength alloy, whose microstructure and consequently properties can be widely varied. In this research, the phase structure, hardness, and magnetic properties of AlCoCr(0.75)Cu(0.5)FeNi alloy fabricated by laser...

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Autores principales: Yang, Xuan, Heczko, Oleg, Lehtonen, Joonas, Björkstrand, Roy, Salmi, Mika, Uhlenwinkel, Volker, Ge, Yanling, Hannula, Simo-Pekka
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8911743/
https://www.ncbi.nlm.nih.gov/pubmed/35269032
http://dx.doi.org/10.3390/ma15051801
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author Yang, Xuan
Heczko, Oleg
Lehtonen, Joonas
Björkstrand, Roy
Salmi, Mika
Uhlenwinkel, Volker
Ge, Yanling
Hannula, Simo-Pekka
author_facet Yang, Xuan
Heczko, Oleg
Lehtonen, Joonas
Björkstrand, Roy
Salmi, Mika
Uhlenwinkel, Volker
Ge, Yanling
Hannula, Simo-Pekka
author_sort Yang, Xuan
collection PubMed
description A non-equiatomic AlCoCr(0.75)Cu(0.5)FeNi alloy has been identified as a potential high strength alloy, whose microstructure and consequently properties can be widely varied. In this research, the phase structure, hardness, and magnetic properties of AlCoCr(0.75)Cu(0.5)FeNi alloy fabricated by laser powder bed fusion (LPBF) are investigated. The results demonstrate that laser power, scanning speed, and volumetric energy density (VED) contribute to different aspects in the formation of microstructure thus introducing alterations in the properties. Despite the different input parameters studied, all the as-built specimens exhibit the body-centered cubic (BCC) phase structure, with the homogeneous elemental distribution at the micron scale. A microhardness of up to 604.6 ± 6.8 HV0.05 is achieved owing to the rapidly solidified microstructure. Soft magnetic behavior is determined in all as-printed samples. The saturation magnetization (M(s)) is dependent on the degree of spinodal decomposition, i.e., the higher degree of decomposition into A2 and B2 structure results in a larger M(s). The results introduce the possibility to control the degree of spinodal decomposition and thus the degree of magnetization by altering the input parameters of the LPBF process. The disclosed application potentiality of LPBF could benefit the development of new functional materials.
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spelling pubmed-89117432022-03-11 Microstructure and Properties of Additively Manufactured AlCoCr(0.75)Cu(0.5)FeNi Multicomponent Alloy: Controlling Magnetic Properties by Laser Powder Bed Fusion via Spinodal Decomposition Yang, Xuan Heczko, Oleg Lehtonen, Joonas Björkstrand, Roy Salmi, Mika Uhlenwinkel, Volker Ge, Yanling Hannula, Simo-Pekka Materials (Basel) Article A non-equiatomic AlCoCr(0.75)Cu(0.5)FeNi alloy has been identified as a potential high strength alloy, whose microstructure and consequently properties can be widely varied. In this research, the phase structure, hardness, and magnetic properties of AlCoCr(0.75)Cu(0.5)FeNi alloy fabricated by laser powder bed fusion (LPBF) are investigated. The results demonstrate that laser power, scanning speed, and volumetric energy density (VED) contribute to different aspects in the formation of microstructure thus introducing alterations in the properties. Despite the different input parameters studied, all the as-built specimens exhibit the body-centered cubic (BCC) phase structure, with the homogeneous elemental distribution at the micron scale. A microhardness of up to 604.6 ± 6.8 HV0.05 is achieved owing to the rapidly solidified microstructure. Soft magnetic behavior is determined in all as-printed samples. The saturation magnetization (M(s)) is dependent on the degree of spinodal decomposition, i.e., the higher degree of decomposition into A2 and B2 structure results in a larger M(s). The results introduce the possibility to control the degree of spinodal decomposition and thus the degree of magnetization by altering the input parameters of the LPBF process. The disclosed application potentiality of LPBF could benefit the development of new functional materials. MDPI 2022-02-28 /pmc/articles/PMC8911743/ /pubmed/35269032 http://dx.doi.org/10.3390/ma15051801 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
Yang, Xuan
Heczko, Oleg
Lehtonen, Joonas
Björkstrand, Roy
Salmi, Mika
Uhlenwinkel, Volker
Ge, Yanling
Hannula, Simo-Pekka
Microstructure and Properties of Additively Manufactured AlCoCr(0.75)Cu(0.5)FeNi Multicomponent Alloy: Controlling Magnetic Properties by Laser Powder Bed Fusion via Spinodal Decomposition
title Microstructure and Properties of Additively Manufactured AlCoCr(0.75)Cu(0.5)FeNi Multicomponent Alloy: Controlling Magnetic Properties by Laser Powder Bed Fusion via Spinodal Decomposition
title_full Microstructure and Properties of Additively Manufactured AlCoCr(0.75)Cu(0.5)FeNi Multicomponent Alloy: Controlling Magnetic Properties by Laser Powder Bed Fusion via Spinodal Decomposition
title_fullStr Microstructure and Properties of Additively Manufactured AlCoCr(0.75)Cu(0.5)FeNi Multicomponent Alloy: Controlling Magnetic Properties by Laser Powder Bed Fusion via Spinodal Decomposition
title_full_unstemmed Microstructure and Properties of Additively Manufactured AlCoCr(0.75)Cu(0.5)FeNi Multicomponent Alloy: Controlling Magnetic Properties by Laser Powder Bed Fusion via Spinodal Decomposition
title_short Microstructure and Properties of Additively Manufactured AlCoCr(0.75)Cu(0.5)FeNi Multicomponent Alloy: Controlling Magnetic Properties by Laser Powder Bed Fusion via Spinodal Decomposition
title_sort microstructure and properties of additively manufactured alcocr(0.75)cu(0.5)feni multicomponent alloy: controlling magnetic properties by laser powder bed fusion via spinodal decomposition
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8911743/
https://www.ncbi.nlm.nih.gov/pubmed/35269032
http://dx.doi.org/10.3390/ma15051801
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