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Article

Investigations on the Heat Balance of the Melt Pool During PBF-LB/M Under Various Process Gases

by
Siegfried Baehr
1,*,†,
Fabian Fritz
2,3,†,
Stefan Adami
3,
Thomas Ammann
4,
Nikolaus A. Adams
2,3 and
Michael F. Zaeh
1
1
Institute for Machine Tools and Industrial Management (iwb), TUM School of Engineering and Design, Technical University of Munich, Boltzmannstrasse 15, 85748 Munich, Germany
2
Chair of Aerodynamics and Fluid Mechanics, TUM School of Engineering and Design, Technical University of Munich, Boltzmannstrasse 15, 85748 Munich, Germany
3
Energy and Process Engineering (MEP), Munich Institute of Integrated Materials, Technical University of Munich, Lichtenbergstrasse 4a, 85748 Munich, Germany
4
Linde GmbH, Carl-von-Linde-Strasse 25, 85716 Unterschleissheim, Germany
*
Author to whom correspondence should be addressed.
These authors contributed equally to this work.
Metals 2024, 14(9), 1058; https://doi.org/10.3390/met14091058
Submission received: 14 August 2024 / Revised: 9 September 2024 / Accepted: 13 September 2024 / Published: 16 September 2024
(This article belongs to the Special Issue Laser Processing Technology and Principles of Metal Materials)

Abstract

During the powder bed fusion of metals using a laser beam (PBF-LB/M), an inert atmosphere is maintained in the build chamber to avoid reactions of the liquid metal with ambient air leading to the creation of oxides or nitrides, which alter the mechanical properties of the processed part. A continuous gas flow is guided over the process zone to remove spatters and fumes. This flow induces a convective heat transfer from the molten metal to the gas, which, depending on the level of the heat flow, may alter the melt pool dimensions by influencing the cooling rate. The present work investigated these phenomena with single-line trials, both experimentally and numerically. For this reason, a smoothed-particle hydrodynamics model was utilized to investigate the temperatures of the melt pool, cooling rates, and the integral heat balance with various gas atmospheres. In parallel, an on-axis pyrometer was set up on an experimental PBF-LB/M machine to capture the surface emissions of the melt pool. The atmosphere in the simulations and experiments was varied between argon, helium, and two mixtures thereof. The results showed a slight increase in the cooling rates with an increasing fraction of helium in the process gas. Consistently, a slight decrease in the melt pool temperatures and dimensions was found.
Keywords: additive manufacturing; laser powder bed fusion; smoothed-particle hydrodynamics; aluminum; process gases; thermal history additive manufacturing; laser powder bed fusion; smoothed-particle hydrodynamics; aluminum; process gases; thermal history

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MDPI and ACS Style

Baehr, S.; Fritz, F.; Adami, S.; Ammann, T.; Adams, N.A.; Zaeh, M.F. Investigations on the Heat Balance of the Melt Pool During PBF-LB/M Under Various Process Gases. Metals 2024, 14, 1058. https://doi.org/10.3390/met14091058

AMA Style

Baehr S, Fritz F, Adami S, Ammann T, Adams NA, Zaeh MF. Investigations on the Heat Balance of the Melt Pool During PBF-LB/M Under Various Process Gases. Metals. 2024; 14(9):1058. https://doi.org/10.3390/met14091058

Chicago/Turabian Style

Baehr, Siegfried, Fabian Fritz, Stefan Adami, Thomas Ammann, Nikolaus A. Adams, and Michael F. Zaeh. 2024. "Investigations on the Heat Balance of the Melt Pool During PBF-LB/M Under Various Process Gases" Metals 14, no. 9: 1058. https://doi.org/10.3390/met14091058

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