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Additive Manufacturing Processes in Selected Corrosion Resistant Materials: A State of Knowledge Review

HIGHLIGHTS: A full review article on the corrosion behaviour of additive manufacturing (AM) of metallic parts is presented with the aim of covering the significant lack of information on this subject. Corrosion resistance of light metallic systems and duplex stainless steels objects obtained by addi...

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Autores principales: Biserova-Tahchieva, Alisiya, Biezma-Moraleda, Maria V., Llorca-Isern, Núria, Gonzalez-Lavin, Judith, Linhardt, Paul
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10004084/
https://www.ncbi.nlm.nih.gov/pubmed/36903006
http://dx.doi.org/10.3390/ma16051893
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author Biserova-Tahchieva, Alisiya
Biezma-Moraleda, Maria V.
Llorca-Isern, Núria
Gonzalez-Lavin, Judith
Linhardt, Paul
author_facet Biserova-Tahchieva, Alisiya
Biezma-Moraleda, Maria V.
Llorca-Isern, Núria
Gonzalez-Lavin, Judith
Linhardt, Paul
author_sort Biserova-Tahchieva, Alisiya
collection PubMed
description HIGHLIGHTS: A full review article on the corrosion behaviour of additive manufacturing (AM) of metallic parts is presented with the aim of covering the significant lack of information on this subject. Corrosion resistance of light metallic systems and duplex stainless steels objects obtained by additive manufacturing (AM) processes is critically discussed, based on the synergism between variables linked with chemical composition, manufacturing processes, and service conditions. Methodologies for improving the corrosion resistance of metallic parts produced by additive manufacturing (AM) are highlighted. The available data allow us to state that potentiodynamic corrosion tests are the best methodology to characterize metal additive manufacturing (MAM) corrosion and this unique test should be selected for the evaluation of this phenomenon. There is a gap in knowledge and test procedure to properly identify the relationship between defects and corrosion behaviour of the most studied metal additive manufacturing (MAM) systems. ABSTRACT: Additive manufacturing is an important and promising process of manufacturing due to its increasing demand in all industrial sectors, with special relevance in those related to metallic components since it permits the lightening of structures, producing complex geometries with a minimum waste of material. There are different techniques involved in additive manufacturing that must be carefully selected according to the chemical composition of the material and the final requirements. There is a large amount of research devoted to the technical development and the mechanical properties of the final components; however, not much attention has been paid yet to the corrosion behaviour in different service conditions. The aim of this paper is to deeply analyze the interaction between the chemical composition of different metallic alloys, the additive manufacturing processing, and their corrosion behaviour, determining the effects of the main microstructural features and defects associated with these specific processes, such as grain size, segregation, and porosity, among others. The corrosion resistance of the most-used systems obtained by additive manufacturing (AM) such as aluminum alloys, titanium alloys, and duplex stainless steels is analyzed to provide knowledge that can be a platform to create new ideas for materials manufacturing. Some conclusions and future guidelines for establishing good practices related to corrosion tests are proposed.
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spelling pubmed-100040842023-03-11 Additive Manufacturing Processes in Selected Corrosion Resistant Materials: A State of Knowledge Review Biserova-Tahchieva, Alisiya Biezma-Moraleda, Maria V. Llorca-Isern, Núria Gonzalez-Lavin, Judith Linhardt, Paul Materials (Basel) Review HIGHLIGHTS: A full review article on the corrosion behaviour of additive manufacturing (AM) of metallic parts is presented with the aim of covering the significant lack of information on this subject. Corrosion resistance of light metallic systems and duplex stainless steels objects obtained by additive manufacturing (AM) processes is critically discussed, based on the synergism between variables linked with chemical composition, manufacturing processes, and service conditions. Methodologies for improving the corrosion resistance of metallic parts produced by additive manufacturing (AM) are highlighted. The available data allow us to state that potentiodynamic corrosion tests are the best methodology to characterize metal additive manufacturing (MAM) corrosion and this unique test should be selected for the evaluation of this phenomenon. There is a gap in knowledge and test procedure to properly identify the relationship between defects and corrosion behaviour of the most studied metal additive manufacturing (MAM) systems. ABSTRACT: Additive manufacturing is an important and promising process of manufacturing due to its increasing demand in all industrial sectors, with special relevance in those related to metallic components since it permits the lightening of structures, producing complex geometries with a minimum waste of material. There are different techniques involved in additive manufacturing that must be carefully selected according to the chemical composition of the material and the final requirements. There is a large amount of research devoted to the technical development and the mechanical properties of the final components; however, not much attention has been paid yet to the corrosion behaviour in different service conditions. The aim of this paper is to deeply analyze the interaction between the chemical composition of different metallic alloys, the additive manufacturing processing, and their corrosion behaviour, determining the effects of the main microstructural features and defects associated with these specific processes, such as grain size, segregation, and porosity, among others. The corrosion resistance of the most-used systems obtained by additive manufacturing (AM) such as aluminum alloys, titanium alloys, and duplex stainless steels is analyzed to provide knowledge that can be a platform to create new ideas for materials manufacturing. Some conclusions and future guidelines for establishing good practices related to corrosion tests are proposed. MDPI 2023-02-24 /pmc/articles/PMC10004084/ /pubmed/36903006 http://dx.doi.org/10.3390/ma16051893 Text en © 2023 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 Review
Biserova-Tahchieva, Alisiya
Biezma-Moraleda, Maria V.
Llorca-Isern, Núria
Gonzalez-Lavin, Judith
Linhardt, Paul
Additive Manufacturing Processes in Selected Corrosion Resistant Materials: A State of Knowledge Review
title Additive Manufacturing Processes in Selected Corrosion Resistant Materials: A State of Knowledge Review
title_full Additive Manufacturing Processes in Selected Corrosion Resistant Materials: A State of Knowledge Review
title_fullStr Additive Manufacturing Processes in Selected Corrosion Resistant Materials: A State of Knowledge Review
title_full_unstemmed Additive Manufacturing Processes in Selected Corrosion Resistant Materials: A State of Knowledge Review
title_short Additive Manufacturing Processes in Selected Corrosion Resistant Materials: A State of Knowledge Review
title_sort additive manufacturing processes in selected corrosion resistant materials: a state of knowledge review
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10004084/
https://www.ncbi.nlm.nih.gov/pubmed/36903006
http://dx.doi.org/10.3390/ma16051893
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