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Wire Laser Metal Deposition Additive Manufacturing of Duplex Stainless Steel Components—Development of a Systematic Methodology

A systematic four-stage methodology was developed and applied to the Laser Metal Deposition with Wire (LMDw) of a duplex stainless steel (DSS) cylinder > 20 kg. In the four stages, single-bead passes, a single-bead wall, a block, and finally a cylinder were produced. This stepwise approach allowe...

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Autores principales: Baghdadchi, Amir, Hosseini, Vahid A., Valiente Bermejo, Maria Asuncion, Axelsson, Björn, Harati, Ebrahim, Högström, Mats, Karlsson, Leif
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8658715/
https://www.ncbi.nlm.nih.gov/pubmed/34885325
http://dx.doi.org/10.3390/ma14237170
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author Baghdadchi, Amir
Hosseini, Vahid A.
Valiente Bermejo, Maria Asuncion
Axelsson, Björn
Harati, Ebrahim
Högström, Mats
Karlsson, Leif
author_facet Baghdadchi, Amir
Hosseini, Vahid A.
Valiente Bermejo, Maria Asuncion
Axelsson, Björn
Harati, Ebrahim
Högström, Mats
Karlsson, Leif
author_sort Baghdadchi, Amir
collection PubMed
description A systematic four-stage methodology was developed and applied to the Laser Metal Deposition with Wire (LMDw) of a duplex stainless steel (DSS) cylinder > 20 kg. In the four stages, single-bead passes, a single-bead wall, a block, and finally a cylinder were produced. This stepwise approach allowed the development of LMDw process parameters and control systems while the volume of deposited material and the geometrical complexity of components increased. The as-deposited microstructure was inhomogeneous and repetitive, consisting of highly ferritic regions with nitrides and regions with high fractions of austenite. However, there were no cracks or lack of fusion defects; there were only some small pores, and strength and toughness were comparable to those of the corresponding steel grade. A heat treatment for 1 h at 1100 °C was performed to homogenize the microstructure, remove nitrides, and balance the ferrite and austenite fractions compensating for nitrogen loss occurring during LMDw. The heat treatment increased toughness and ductility and decreased strength, but these still matched steel properties. It was concluded that implementing a systematic methodology with a stepwise increase in the deposited volume and geometrical complexity is a cost-effective way of developing additive manufacturing procedures for the production of significantly sized metallic components.
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spelling pubmed-86587152021-12-10 Wire Laser Metal Deposition Additive Manufacturing of Duplex Stainless Steel Components—Development of a Systematic Methodology Baghdadchi, Amir Hosseini, Vahid A. Valiente Bermejo, Maria Asuncion Axelsson, Björn Harati, Ebrahim Högström, Mats Karlsson, Leif Materials (Basel) Article A systematic four-stage methodology was developed and applied to the Laser Metal Deposition with Wire (LMDw) of a duplex stainless steel (DSS) cylinder > 20 kg. In the four stages, single-bead passes, a single-bead wall, a block, and finally a cylinder were produced. This stepwise approach allowed the development of LMDw process parameters and control systems while the volume of deposited material and the geometrical complexity of components increased. The as-deposited microstructure was inhomogeneous and repetitive, consisting of highly ferritic regions with nitrides and regions with high fractions of austenite. However, there were no cracks or lack of fusion defects; there were only some small pores, and strength and toughness were comparable to those of the corresponding steel grade. A heat treatment for 1 h at 1100 °C was performed to homogenize the microstructure, remove nitrides, and balance the ferrite and austenite fractions compensating for nitrogen loss occurring during LMDw. The heat treatment increased toughness and ductility and decreased strength, but these still matched steel properties. It was concluded that implementing a systematic methodology with a stepwise increase in the deposited volume and geometrical complexity is a cost-effective way of developing additive manufacturing procedures for the production of significantly sized metallic components. MDPI 2021-11-25 /pmc/articles/PMC8658715/ /pubmed/34885325 http://dx.doi.org/10.3390/ma14237170 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
Baghdadchi, Amir
Hosseini, Vahid A.
Valiente Bermejo, Maria Asuncion
Axelsson, Björn
Harati, Ebrahim
Högström, Mats
Karlsson, Leif
Wire Laser Metal Deposition Additive Manufacturing of Duplex Stainless Steel Components—Development of a Systematic Methodology
title Wire Laser Metal Deposition Additive Manufacturing of Duplex Stainless Steel Components—Development of a Systematic Methodology
title_full Wire Laser Metal Deposition Additive Manufacturing of Duplex Stainless Steel Components—Development of a Systematic Methodology
title_fullStr Wire Laser Metal Deposition Additive Manufacturing of Duplex Stainless Steel Components—Development of a Systematic Methodology
title_full_unstemmed Wire Laser Metal Deposition Additive Manufacturing of Duplex Stainless Steel Components—Development of a Systematic Methodology
title_short Wire Laser Metal Deposition Additive Manufacturing of Duplex Stainless Steel Components—Development of a Systematic Methodology
title_sort wire laser metal deposition additive manufacturing of duplex stainless steel components—development of a systematic methodology
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8658715/
https://www.ncbi.nlm.nih.gov/pubmed/34885325
http://dx.doi.org/10.3390/ma14237170
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