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Effect of Scan Strategies and Use of Support Structures on Surface Quality and Hardness of L-PBF AlSi10Mg Parts

Additive manufacturing allows for a great degree of design freedom and is rapidly becoming a mainstream manufacturing process. However, as in all manufacturing processes, it has its limitations and specificities. Equipping engineers with this knowledge allows for a higher degree of optimization, ext...

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Autores principales: Gouveia, Ronny M., Silva, Francisco J. G., Atzeni, Eleonora, Sormaz, Dušan, Alves, Jorge Lino, Pereira, António Bastos
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7288107/
https://www.ncbi.nlm.nih.gov/pubmed/32414193
http://dx.doi.org/10.3390/ma13102248
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author Gouveia, Ronny M.
Silva, Francisco J. G.
Atzeni, Eleonora
Sormaz, Dušan
Alves, Jorge Lino
Pereira, António Bastos
author_facet Gouveia, Ronny M.
Silva, Francisco J. G.
Atzeni, Eleonora
Sormaz, Dušan
Alves, Jorge Lino
Pereira, António Bastos
author_sort Gouveia, Ronny M.
collection PubMed
description Additive manufacturing allows for a great degree of design freedom and is rapidly becoming a mainstream manufacturing process. However, as in all manufacturing processes, it has its limitations and specificities. Equipping engineers with this knowledge allows for a higher degree of optimization, extracting the most out of this technology. Therefore, a specific part design was devised and created via L-PBF (Laser Powder Bed Fusion) using AlSi10Mg powder. Certain parameters were varied to identify the influence on material density, hardness, roughness, residual stress and microstructures. It was found that on heat treated parts laser pattern strategy is one of the most influential aspects, showing that chessboard and stripes 67° improved outcome; average R(a) roughness varied between 8–12 µm, residual stress was higher on vertical surfaces than horizontal surfaces, with the combination of support structures and stripes 67° strategies generating the lowest residual stress (205 MPa on a lateral/vertical face), hardness was non-orientation dependent and larger on samples with chessboard fabrication strategies, while microstructures were composed of α–Al dendrites surrounded by Si particles. The distribution and grain size of the microstructure is dependent on location regarding melt pool and HAZ area. Furthermore, Al–Mg oxides were encountered on the surface, along with pores generating from lack of fusion.
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spelling pubmed-72881072020-06-17 Effect of Scan Strategies and Use of Support Structures on Surface Quality and Hardness of L-PBF AlSi10Mg Parts Gouveia, Ronny M. Silva, Francisco J. G. Atzeni, Eleonora Sormaz, Dušan Alves, Jorge Lino Pereira, António Bastos Materials (Basel) Article Additive manufacturing allows for a great degree of design freedom and is rapidly becoming a mainstream manufacturing process. However, as in all manufacturing processes, it has its limitations and specificities. Equipping engineers with this knowledge allows for a higher degree of optimization, extracting the most out of this technology. Therefore, a specific part design was devised and created via L-PBF (Laser Powder Bed Fusion) using AlSi10Mg powder. Certain parameters were varied to identify the influence on material density, hardness, roughness, residual stress and microstructures. It was found that on heat treated parts laser pattern strategy is one of the most influential aspects, showing that chessboard and stripes 67° improved outcome; average R(a) roughness varied between 8–12 µm, residual stress was higher on vertical surfaces than horizontal surfaces, with the combination of support structures and stripes 67° strategies generating the lowest residual stress (205 MPa on a lateral/vertical face), hardness was non-orientation dependent and larger on samples with chessboard fabrication strategies, while microstructures were composed of α–Al dendrites surrounded by Si particles. The distribution and grain size of the microstructure is dependent on location regarding melt pool and HAZ area. Furthermore, Al–Mg oxides were encountered on the surface, along with pores generating from lack of fusion. MDPI 2020-05-13 /pmc/articles/PMC7288107/ /pubmed/32414193 http://dx.doi.org/10.3390/ma13102248 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
Gouveia, Ronny M.
Silva, Francisco J. G.
Atzeni, Eleonora
Sormaz, Dušan
Alves, Jorge Lino
Pereira, António Bastos
Effect of Scan Strategies and Use of Support Structures on Surface Quality and Hardness of L-PBF AlSi10Mg Parts
title Effect of Scan Strategies and Use of Support Structures on Surface Quality and Hardness of L-PBF AlSi10Mg Parts
title_full Effect of Scan Strategies and Use of Support Structures on Surface Quality and Hardness of L-PBF AlSi10Mg Parts
title_fullStr Effect of Scan Strategies and Use of Support Structures on Surface Quality and Hardness of L-PBF AlSi10Mg Parts
title_full_unstemmed Effect of Scan Strategies and Use of Support Structures on Surface Quality and Hardness of L-PBF AlSi10Mg Parts
title_short Effect of Scan Strategies and Use of Support Structures on Surface Quality and Hardness of L-PBF AlSi10Mg Parts
title_sort effect of scan strategies and use of support structures on surface quality and hardness of l-pbf alsi10mg parts
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7288107/
https://www.ncbi.nlm.nih.gov/pubmed/32414193
http://dx.doi.org/10.3390/ma13102248
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