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Laser Directed Energy Deposition of an AlMgScZr-Alloy in High-Speed Process Regimes

Aluminum-magnesium-scandium-zirconium (AlMgScZr) alloys need to be rapidly cooled from the liquid state to obtain a high degree of solute supersaturation that helps to exploit the precipitation hardening potential of the material. While AlMgScZr alloys have been successfully used in laser powder bed...

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Autores principales: Zhao, Tong, Chen, Teng, Wang, Yuhan, Wang, Mengjie, Bakir, Maha, Dahmen, Marius, Cai, Wangcan, Hong, Chen, Schopphoven, Thomas, Pirch, Norbert, Brucki, Matthias, Gasser, Andres, Häfner, Constantin Leon
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9788228/
https://www.ncbi.nlm.nih.gov/pubmed/36556758
http://dx.doi.org/10.3390/ma15248951
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author Zhao, Tong
Chen, Teng
Wang, Yuhan
Wang, Mengjie
Bakir, Maha
Dahmen, Marius
Cai, Wangcan
Hong, Chen
Schopphoven, Thomas
Pirch, Norbert
Brucki, Matthias
Gasser, Andres
Häfner, Constantin Leon
author_facet Zhao, Tong
Chen, Teng
Wang, Yuhan
Wang, Mengjie
Bakir, Maha
Dahmen, Marius
Cai, Wangcan
Hong, Chen
Schopphoven, Thomas
Pirch, Norbert
Brucki, Matthias
Gasser, Andres
Häfner, Constantin Leon
author_sort Zhao, Tong
collection PubMed
description Aluminum-magnesium-scandium-zirconium (AlMgScZr) alloys need to be rapidly cooled from the liquid state to obtain a high degree of solute supersaturation that helps to exploit the precipitation hardening potential of the material. While AlMgScZr alloys have been successfully used in laser powder bed fusion (LPBF) processes, there has been little research in the field of laser directed energy deposition (DED) of the material. The limited previous studies have shown that the performance of AlMgScZr parts fabricated with DED only reached about 60% of that of the parts fabricated with LPBF. In view of breaking through the limitation associated with the process conditions of conventional DED, this work demonstrates the DED of AlMgScZr alloys in high-speed process regimes and elucidates the mechanism of enhancing the hardness and tensile strength of AlMgScZr alloys by increasing the cooling rate by one to two orders of magnitudes, as well as reducing the track overlapping and the porosity of the specimens during the process. A maximum average hardness of nearly 150 HV0.1 and a max. tensile strength of 407 MPa are obtained by using an energy per unit length of 5400 J/m and a powder feed rate per unit length of 0.25 g/m.
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spelling pubmed-97882282022-12-24 Laser Directed Energy Deposition of an AlMgScZr-Alloy in High-Speed Process Regimes Zhao, Tong Chen, Teng Wang, Yuhan Wang, Mengjie Bakir, Maha Dahmen, Marius Cai, Wangcan Hong, Chen Schopphoven, Thomas Pirch, Norbert Brucki, Matthias Gasser, Andres Häfner, Constantin Leon Materials (Basel) Article Aluminum-magnesium-scandium-zirconium (AlMgScZr) alloys need to be rapidly cooled from the liquid state to obtain a high degree of solute supersaturation that helps to exploit the precipitation hardening potential of the material. While AlMgScZr alloys have been successfully used in laser powder bed fusion (LPBF) processes, there has been little research in the field of laser directed energy deposition (DED) of the material. The limited previous studies have shown that the performance of AlMgScZr parts fabricated with DED only reached about 60% of that of the parts fabricated with LPBF. In view of breaking through the limitation associated with the process conditions of conventional DED, this work demonstrates the DED of AlMgScZr alloys in high-speed process regimes and elucidates the mechanism of enhancing the hardness and tensile strength of AlMgScZr alloys by increasing the cooling rate by one to two orders of magnitudes, as well as reducing the track overlapping and the porosity of the specimens during the process. A maximum average hardness of nearly 150 HV0.1 and a max. tensile strength of 407 MPa are obtained by using an energy per unit length of 5400 J/m and a powder feed rate per unit length of 0.25 g/m. MDPI 2022-12-14 /pmc/articles/PMC9788228/ /pubmed/36556758 http://dx.doi.org/10.3390/ma15248951 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
Zhao, Tong
Chen, Teng
Wang, Yuhan
Wang, Mengjie
Bakir, Maha
Dahmen, Marius
Cai, Wangcan
Hong, Chen
Schopphoven, Thomas
Pirch, Norbert
Brucki, Matthias
Gasser, Andres
Häfner, Constantin Leon
Laser Directed Energy Deposition of an AlMgScZr-Alloy in High-Speed Process Regimes
title Laser Directed Energy Deposition of an AlMgScZr-Alloy in High-Speed Process Regimes
title_full Laser Directed Energy Deposition of an AlMgScZr-Alloy in High-Speed Process Regimes
title_fullStr Laser Directed Energy Deposition of an AlMgScZr-Alloy in High-Speed Process Regimes
title_full_unstemmed Laser Directed Energy Deposition of an AlMgScZr-Alloy in High-Speed Process Regimes
title_short Laser Directed Energy Deposition of an AlMgScZr-Alloy in High-Speed Process Regimes
title_sort laser directed energy deposition of an almgsczr-alloy in high-speed process regimes
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9788228/
https://www.ncbi.nlm.nih.gov/pubmed/36556758
http://dx.doi.org/10.3390/ma15248951
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