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Residual Lattice Strain and Phase Distribution in Ti-6Al-4V Produced by Electron Beam Melting

Residual stress/strain and microstructure used in additively manufactured material are strongly dependent on process parameter combination. With the aim to better understand and correlate process parameters used in electron beam melting (EBM) of Ti-6Al-4V with resulting phase distributions and resid...

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Autores principales: Maimaitiyili, Tuerdi, Woracek, Robin, Neikter, Magnus, Boin, Mirko, Wimpory, Robert C., Pederson, Robert, Strobl, Markus, Drakopoulos, Michael, Schäfer, Norbert, Bjerkén, Christina
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6416553/
https://www.ncbi.nlm.nih.gov/pubmed/30813435
http://dx.doi.org/10.3390/ma12040667
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author Maimaitiyili, Tuerdi
Woracek, Robin
Neikter, Magnus
Boin, Mirko
Wimpory, Robert C.
Pederson, Robert
Strobl, Markus
Drakopoulos, Michael
Schäfer, Norbert
Bjerkén, Christina
author_facet Maimaitiyili, Tuerdi
Woracek, Robin
Neikter, Magnus
Boin, Mirko
Wimpory, Robert C.
Pederson, Robert
Strobl, Markus
Drakopoulos, Michael
Schäfer, Norbert
Bjerkén, Christina
author_sort Maimaitiyili, Tuerdi
collection PubMed
description Residual stress/strain and microstructure used in additively manufactured material are strongly dependent on process parameter combination. With the aim to better understand and correlate process parameters used in electron beam melting (EBM) of Ti-6Al-4V with resulting phase distributions and residual stress/strains, extensive experimental work has been performed. A large number of polycrystalline Ti-6Al-4V specimens were produced with different optimized EBM process parameter combinations. These specimens were post-sequentially studied by using high-energy X-ray and neutron diffraction. In addition, visible light microscopy, scanning electron microscopy (SEM) and electron backscattered diffraction (EBSD) studies were performed and linked to the other findings. Results show that the influence of scan speed and offset focus on resulting residual strain in a fully dense sample was not significant. In contrast to some previous literature, a uniform α- and β-Ti phase distribution was found in all investigated specimens. Furthermore, no strong strain variations along the build direction with respect to the deposition were found. The magnitude of strain in α and β phase show some variations both in the build plane and along the build direction, which seemed to correlate with the size of the primary β grains. However, no relation was found between measured residual strains in α and β phase. Large primary β grains and texture appear to have a strong effect on X-ray based stress results with relatively small beam size, therefore it is suggested to use a large beam for representative bulk measurements and also to consider the prior β grain size in experimental planning, as well as for mathematical modelling.
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spelling pubmed-64165532019-03-29 Residual Lattice Strain and Phase Distribution in Ti-6Al-4V Produced by Electron Beam Melting Maimaitiyili, Tuerdi Woracek, Robin Neikter, Magnus Boin, Mirko Wimpory, Robert C. Pederson, Robert Strobl, Markus Drakopoulos, Michael Schäfer, Norbert Bjerkén, Christina Materials (Basel) Article Residual stress/strain and microstructure used in additively manufactured material are strongly dependent on process parameter combination. With the aim to better understand and correlate process parameters used in electron beam melting (EBM) of Ti-6Al-4V with resulting phase distributions and residual stress/strains, extensive experimental work has been performed. A large number of polycrystalline Ti-6Al-4V specimens were produced with different optimized EBM process parameter combinations. These specimens were post-sequentially studied by using high-energy X-ray and neutron diffraction. In addition, visible light microscopy, scanning electron microscopy (SEM) and electron backscattered diffraction (EBSD) studies were performed and linked to the other findings. Results show that the influence of scan speed and offset focus on resulting residual strain in a fully dense sample was not significant. In contrast to some previous literature, a uniform α- and β-Ti phase distribution was found in all investigated specimens. Furthermore, no strong strain variations along the build direction with respect to the deposition were found. The magnitude of strain in α and β phase show some variations both in the build plane and along the build direction, which seemed to correlate with the size of the primary β grains. However, no relation was found between measured residual strains in α and β phase. Large primary β grains and texture appear to have a strong effect on X-ray based stress results with relatively small beam size, therefore it is suggested to use a large beam for representative bulk measurements and also to consider the prior β grain size in experimental planning, as well as for mathematical modelling. MDPI 2019-02-23 /pmc/articles/PMC6416553/ /pubmed/30813435 http://dx.doi.org/10.3390/ma12040667 Text en © 2019 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
Maimaitiyili, Tuerdi
Woracek, Robin
Neikter, Magnus
Boin, Mirko
Wimpory, Robert C.
Pederson, Robert
Strobl, Markus
Drakopoulos, Michael
Schäfer, Norbert
Bjerkén, Christina
Residual Lattice Strain and Phase Distribution in Ti-6Al-4V Produced by Electron Beam Melting
title Residual Lattice Strain and Phase Distribution in Ti-6Al-4V Produced by Electron Beam Melting
title_full Residual Lattice Strain and Phase Distribution in Ti-6Al-4V Produced by Electron Beam Melting
title_fullStr Residual Lattice Strain and Phase Distribution in Ti-6Al-4V Produced by Electron Beam Melting
title_full_unstemmed Residual Lattice Strain and Phase Distribution in Ti-6Al-4V Produced by Electron Beam Melting
title_short Residual Lattice Strain and Phase Distribution in Ti-6Al-4V Produced by Electron Beam Melting
title_sort residual lattice strain and phase distribution in ti-6al-4v produced by electron beam melting
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6416553/
https://www.ncbi.nlm.nih.gov/pubmed/30813435
http://dx.doi.org/10.3390/ma12040667
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