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On the Microstructure of Laser Beam Powder Bed Fusion Alloy 718 and Its Influence on the Low Cycle Fatigue Behaviour

Additive manufacturing of Alloy 718 has become a popular subject of research in recent years. Understanding the process-microstructure-property relationship of additively manufactured Alloy 718 is crucial for maturing the technology to manufacture critical components. Fatigue behaviour is a key mech...

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Autores principales: Balachandramurthi, Arun Ramanathan, Jaladurgam, Nitesh Raj, Kumara, Chamara, Hansson, Thomas, Moverare, Johan, Gårdstam, Johannes, Pederson, Robert
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7698544/
https://www.ncbi.nlm.nih.gov/pubmed/33213052
http://dx.doi.org/10.3390/ma13225198
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author Balachandramurthi, Arun Ramanathan
Jaladurgam, Nitesh Raj
Kumara, Chamara
Hansson, Thomas
Moverare, Johan
Gårdstam, Johannes
Pederson, Robert
author_facet Balachandramurthi, Arun Ramanathan
Jaladurgam, Nitesh Raj
Kumara, Chamara
Hansson, Thomas
Moverare, Johan
Gårdstam, Johannes
Pederson, Robert
author_sort Balachandramurthi, Arun Ramanathan
collection PubMed
description Additive manufacturing of Alloy 718 has become a popular subject of research in recent years. Understanding the process-microstructure-property relationship of additively manufactured Alloy 718 is crucial for maturing the technology to manufacture critical components. Fatigue behaviour is a key mechanical property that is required in applications such as gas turbines. Therefore, in the present work, low cycle fatigue behaviour of Alloy 718 manufactured by laser beam powder bed fusion process has been investigated. The material was tested in as-built condition as well as after two different thermal post-treatments. Three orientations with respect to the building direction were tested to evaluate the anisotropy. Testing was performed at room temperature under controlled amplitudes of strain. It was found that defects, inclusions, strengthening precipitates, and Young’s modulus influence the fatigue behaviour under strain-controlled conditions. The strengthening precipitates affected the deformation mechanism as well as the cycle-dependent hardening/softening behaviour. The defects and the inclusions had a detrimental effect on fatigue life. The presence of Laves phase in LB-PBF Alloy 718 did not have a detrimental effect on fatigue life. Young’s modulus was anisotropic and it contributed to the anisotropy in strain-life relationship. Pseudo-elastic stress vs. fatigue life approach could be used to handle the modulus-induced anisotropy in the strain-life relationship.
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spelling pubmed-76985442020-11-29 On the Microstructure of Laser Beam Powder Bed Fusion Alloy 718 and Its Influence on the Low Cycle Fatigue Behaviour Balachandramurthi, Arun Ramanathan Jaladurgam, Nitesh Raj Kumara, Chamara Hansson, Thomas Moverare, Johan Gårdstam, Johannes Pederson, Robert Materials (Basel) Article Additive manufacturing of Alloy 718 has become a popular subject of research in recent years. Understanding the process-microstructure-property relationship of additively manufactured Alloy 718 is crucial for maturing the technology to manufacture critical components. Fatigue behaviour is a key mechanical property that is required in applications such as gas turbines. Therefore, in the present work, low cycle fatigue behaviour of Alloy 718 manufactured by laser beam powder bed fusion process has been investigated. The material was tested in as-built condition as well as after two different thermal post-treatments. Three orientations with respect to the building direction were tested to evaluate the anisotropy. Testing was performed at room temperature under controlled amplitudes of strain. It was found that defects, inclusions, strengthening precipitates, and Young’s modulus influence the fatigue behaviour under strain-controlled conditions. The strengthening precipitates affected the deformation mechanism as well as the cycle-dependent hardening/softening behaviour. The defects and the inclusions had a detrimental effect on fatigue life. The presence of Laves phase in LB-PBF Alloy 718 did not have a detrimental effect on fatigue life. Young’s modulus was anisotropic and it contributed to the anisotropy in strain-life relationship. Pseudo-elastic stress vs. fatigue life approach could be used to handle the modulus-induced anisotropy in the strain-life relationship. MDPI 2020-11-17 /pmc/articles/PMC7698544/ /pubmed/33213052 http://dx.doi.org/10.3390/ma13225198 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
Balachandramurthi, Arun Ramanathan
Jaladurgam, Nitesh Raj
Kumara, Chamara
Hansson, Thomas
Moverare, Johan
Gårdstam, Johannes
Pederson, Robert
On the Microstructure of Laser Beam Powder Bed Fusion Alloy 718 and Its Influence on the Low Cycle Fatigue Behaviour
title On the Microstructure of Laser Beam Powder Bed Fusion Alloy 718 and Its Influence on the Low Cycle Fatigue Behaviour
title_full On the Microstructure of Laser Beam Powder Bed Fusion Alloy 718 and Its Influence on the Low Cycle Fatigue Behaviour
title_fullStr On the Microstructure of Laser Beam Powder Bed Fusion Alloy 718 and Its Influence on the Low Cycle Fatigue Behaviour
title_full_unstemmed On the Microstructure of Laser Beam Powder Bed Fusion Alloy 718 and Its Influence on the Low Cycle Fatigue Behaviour
title_short On the Microstructure of Laser Beam Powder Bed Fusion Alloy 718 and Its Influence on the Low Cycle Fatigue Behaviour
title_sort on the microstructure of laser beam powder bed fusion alloy 718 and its influence on the low cycle fatigue behaviour
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7698544/
https://www.ncbi.nlm.nih.gov/pubmed/33213052
http://dx.doi.org/10.3390/ma13225198
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