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Elevated Temperature Baseplate Effect on Microstructure, Mechanical Properties, and Thermal Stress Evaluation by Numerical Simulation for Austenite Stainless Steel 316L Fabricated by Directed Energy Deposition

In the present study, the effect of material deposition at the elevated temperature baseplate on the microstructure and mechanical properties was investigated and correlated to the unique thermal history by using numerical simulation. Numerical results agreed well with the experimental results of mi...

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Autores principales: Kiran, Abhilash, Li, Ying, Koukolíková, Martina, Brázda, Michal, Hodek, Josef, Urbánek, Miroslav, Džugan, Ján, Raghavan, Srinivasan, Odehnal, Josef
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9231232/
https://www.ncbi.nlm.nih.gov/pubmed/35744224
http://dx.doi.org/10.3390/ma15124165
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author Kiran, Abhilash
Li, Ying
Koukolíková, Martina
Brázda, Michal
Hodek, Josef
Urbánek, Miroslav
Džugan, Ján
Raghavan, Srinivasan
Odehnal, Josef
author_facet Kiran, Abhilash
Li, Ying
Koukolíková, Martina
Brázda, Michal
Hodek, Josef
Urbánek, Miroslav
Džugan, Ján
Raghavan, Srinivasan
Odehnal, Josef
author_sort Kiran, Abhilash
collection PubMed
description In the present study, the effect of material deposition at the elevated temperature baseplate on the microstructure and mechanical properties was investigated and correlated to the unique thermal history by using numerical simulation. Numerical results agreed well with the experimental results of microstructure and mechanical properties. Numerical results revealed a significant decrease in temperature gradient and a 40% decrease in thermal stress due to material deposition on the elevated temperature baseplate. The reduced thermal stress and temperature gradient resulted in coarser grain features, which in turn led to a decrease in hardness and tensile strength, especially for the bottom region near the baseplate. Meanwhile, no significant effect could be found for ductility. In addition, an elevated temperature baseplate promoted less heterogeneity in hardness and tensile properties along the building direction. The current work demonstrates a collective and direct understanding of the baseplate preheating effect on thermal stress, microstructure and mechanical properties and their correlations, which is believed beneficial for the better utilization of baseplate preheating positive effects.
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spelling pubmed-92312322022-06-25 Elevated Temperature Baseplate Effect on Microstructure, Mechanical Properties, and Thermal Stress Evaluation by Numerical Simulation for Austenite Stainless Steel 316L Fabricated by Directed Energy Deposition Kiran, Abhilash Li, Ying Koukolíková, Martina Brázda, Michal Hodek, Josef Urbánek, Miroslav Džugan, Ján Raghavan, Srinivasan Odehnal, Josef Materials (Basel) Article In the present study, the effect of material deposition at the elevated temperature baseplate on the microstructure and mechanical properties was investigated and correlated to the unique thermal history by using numerical simulation. Numerical results agreed well with the experimental results of microstructure and mechanical properties. Numerical results revealed a significant decrease in temperature gradient and a 40% decrease in thermal stress due to material deposition on the elevated temperature baseplate. The reduced thermal stress and temperature gradient resulted in coarser grain features, which in turn led to a decrease in hardness and tensile strength, especially for the bottom region near the baseplate. Meanwhile, no significant effect could be found for ductility. In addition, an elevated temperature baseplate promoted less heterogeneity in hardness and tensile properties along the building direction. The current work demonstrates a collective and direct understanding of the baseplate preheating effect on thermal stress, microstructure and mechanical properties and their correlations, which is believed beneficial for the better utilization of baseplate preheating positive effects. MDPI 2022-06-12 /pmc/articles/PMC9231232/ /pubmed/35744224 http://dx.doi.org/10.3390/ma15124165 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
Kiran, Abhilash
Li, Ying
Koukolíková, Martina
Brázda, Michal
Hodek, Josef
Urbánek, Miroslav
Džugan, Ján
Raghavan, Srinivasan
Odehnal, Josef
Elevated Temperature Baseplate Effect on Microstructure, Mechanical Properties, and Thermal Stress Evaluation by Numerical Simulation for Austenite Stainless Steel 316L Fabricated by Directed Energy Deposition
title Elevated Temperature Baseplate Effect on Microstructure, Mechanical Properties, and Thermal Stress Evaluation by Numerical Simulation for Austenite Stainless Steel 316L Fabricated by Directed Energy Deposition
title_full Elevated Temperature Baseplate Effect on Microstructure, Mechanical Properties, and Thermal Stress Evaluation by Numerical Simulation for Austenite Stainless Steel 316L Fabricated by Directed Energy Deposition
title_fullStr Elevated Temperature Baseplate Effect on Microstructure, Mechanical Properties, and Thermal Stress Evaluation by Numerical Simulation for Austenite Stainless Steel 316L Fabricated by Directed Energy Deposition
title_full_unstemmed Elevated Temperature Baseplate Effect on Microstructure, Mechanical Properties, and Thermal Stress Evaluation by Numerical Simulation for Austenite Stainless Steel 316L Fabricated by Directed Energy Deposition
title_short Elevated Temperature Baseplate Effect on Microstructure, Mechanical Properties, and Thermal Stress Evaluation by Numerical Simulation for Austenite Stainless Steel 316L Fabricated by Directed Energy Deposition
title_sort elevated temperature baseplate effect on microstructure, mechanical properties, and thermal stress evaluation by numerical simulation for austenite stainless steel 316l fabricated by directed energy deposition
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9231232/
https://www.ncbi.nlm.nih.gov/pubmed/35744224
http://dx.doi.org/10.3390/ma15124165
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