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Pyrometric-Based Melt Pool Monitoring Study of CuCr1Zr Processed Using L-PBF

The potential of in situ melt pool monitoring (MPM) for parameter development and furthering the process understanding in Laser Powder Bed Fusion (LPBF) of CuCr1Zr was investigated. Commercial MPM systems are currently being developed as a quality monitoring tool with the aim of detecting faulty par...

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Autores principales: Artzt, Katia, Siggel, Martin, Kleinert, Jan, Riccius, Joerg, Requena, Guillermo, Haubrich, Jan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7603023/
https://www.ncbi.nlm.nih.gov/pubmed/33081329
http://dx.doi.org/10.3390/ma13204626
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author Artzt, Katia
Siggel, Martin
Kleinert, Jan
Riccius, Joerg
Requena, Guillermo
Haubrich, Jan
author_facet Artzt, Katia
Siggel, Martin
Kleinert, Jan
Riccius, Joerg
Requena, Guillermo
Haubrich, Jan
author_sort Artzt, Katia
collection PubMed
description The potential of in situ melt pool monitoring (MPM) for parameter development and furthering the process understanding in Laser Powder Bed Fusion (LPBF) of CuCr1Zr was investigated. Commercial MPM systems are currently being developed as a quality monitoring tool with the aim of detecting faulty parts already in the build process and, thus, reducing costs in LPBF. A detailed analysis of coupon specimens allowed two processing windows to be established for a suitably dense material at layer thicknesses of 30 µm and 50 µm, which were subsequently evaluated with two complex thermomechanical-fatigue (TMF) panels. Variations due to the location on the build platform were taken into account for the parameter development. Importantly, integrally averaged MPM intensities showed no direct correlation with total porosities, while the robustness of the melting process, impacted strongly by balling, affected the scattering of the MPM response and can thus be assessed. However, the MPM results, similar to material properties such as porosity, cannot be directly transferred from coupon specimens to components due to the influence of the local part geometry and heat transport on the build platform. Different MPM intensity ranges are obtained on cuboids and TMF panels despite similar LPBF parameters. Nonetheless, besides identifying LPBF parameter windows with a stable process, MPM allowed the successful detection of individual defects on the surface and in the bulk of the large demonstrators and appears to be a suitable tool for quality monitoring during fabrication and non-destructive evaluation of the LPBF process.
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spelling pubmed-76030232020-11-01 Pyrometric-Based Melt Pool Monitoring Study of CuCr1Zr Processed Using L-PBF Artzt, Katia Siggel, Martin Kleinert, Jan Riccius, Joerg Requena, Guillermo Haubrich, Jan Materials (Basel) Article The potential of in situ melt pool monitoring (MPM) for parameter development and furthering the process understanding in Laser Powder Bed Fusion (LPBF) of CuCr1Zr was investigated. Commercial MPM systems are currently being developed as a quality monitoring tool with the aim of detecting faulty parts already in the build process and, thus, reducing costs in LPBF. A detailed analysis of coupon specimens allowed two processing windows to be established for a suitably dense material at layer thicknesses of 30 µm and 50 µm, which were subsequently evaluated with two complex thermomechanical-fatigue (TMF) panels. Variations due to the location on the build platform were taken into account for the parameter development. Importantly, integrally averaged MPM intensities showed no direct correlation with total porosities, while the robustness of the melting process, impacted strongly by balling, affected the scattering of the MPM response and can thus be assessed. However, the MPM results, similar to material properties such as porosity, cannot be directly transferred from coupon specimens to components due to the influence of the local part geometry and heat transport on the build platform. Different MPM intensity ranges are obtained on cuboids and TMF panels despite similar LPBF parameters. Nonetheless, besides identifying LPBF parameter windows with a stable process, MPM allowed the successful detection of individual defects on the surface and in the bulk of the large demonstrators and appears to be a suitable tool for quality monitoring during fabrication and non-destructive evaluation of the LPBF process. MDPI 2020-10-16 /pmc/articles/PMC7603023/ /pubmed/33081329 http://dx.doi.org/10.3390/ma13204626 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
Artzt, Katia
Siggel, Martin
Kleinert, Jan
Riccius, Joerg
Requena, Guillermo
Haubrich, Jan
Pyrometric-Based Melt Pool Monitoring Study of CuCr1Zr Processed Using L-PBF
title Pyrometric-Based Melt Pool Monitoring Study of CuCr1Zr Processed Using L-PBF
title_full Pyrometric-Based Melt Pool Monitoring Study of CuCr1Zr Processed Using L-PBF
title_fullStr Pyrometric-Based Melt Pool Monitoring Study of CuCr1Zr Processed Using L-PBF
title_full_unstemmed Pyrometric-Based Melt Pool Monitoring Study of CuCr1Zr Processed Using L-PBF
title_short Pyrometric-Based Melt Pool Monitoring Study of CuCr1Zr Processed Using L-PBF
title_sort pyrometric-based melt pool monitoring study of cucr1zr processed using l-pbf
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7603023/
https://www.ncbi.nlm.nih.gov/pubmed/33081329
http://dx.doi.org/10.3390/ma13204626
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