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Article

Effect of Heat Treatment on Ductility and Precipitation Size of Additively Manufactured AlSi10Mg

by
Sandra Megahed
1,*,
Jannik Bühring
2,
Tobias Duffe
3,
Aleksandar Bach
4,
Kai-Uwe Schröder
2 and
Johannes Henrich Schleifenbaum
1
1
Digital Additive Production, RWTH Aachen University, Campus-Boulevard 73, 52074 Aachen, Germany
2
Institute of Structural Mechanics and Lightweight Design, RWTH Aachen University, Wülnerstraße 7, 52062 Aachen, Germany
3
Ford Product Development Center Cologne, Spessartstr, 50725 Köln-Merkenich, Germany
4
Ford Research & Innovation Center Aachen, Süsterfeldstr. 200, 52072 Aachen, Germany
*
Author to whom correspondence should be addressed.
Metals 2022, 12(8), 1311; https://doi.org/10.3390/met12081311
Submission received: 10 July 2022 / Revised: 27 July 2022 / Accepted: 29 July 2022 / Published: 4 August 2022

Abstract

Laser powder bed fusion (LPBF) is a promising technology to manufacture complex components. Aluminium (Al) alloys are extensively implemented in automotive and aerospace applications for their exceptional strength and stiffness to weight ratios. AlSi10Mg is a precipitation strengthened alloy. Due to the high cooling rate during the LPBF process, a fine microstructure in as-built samples is expected, increasing strength and hardness values. However, the ductility of as-built AlSi10Mg alloys is limited. Heat treatment allows control of microstructure influencing the mechanical properties and ductility. In this study, AlSi10Mg samples with a relative density >99.5% were manufactured with LPBF. Surface roughness values of 10.86 µm were achieved. Tensile and three-point bending samples were printed for analysis. Since load conditions of lattice structures in compression are much more complex compared to that of volume samples, increasing tensile ductility is not sufficient to determine the suitability of lattice structures for applications where high deformations are required. Therefore, lattice structures for compression testing were manufactured and individually heat treated to achieve a ductility of at least 20%. The precipitation size was found to increase depending on heat treatment from 0.44 µm up to 2.25 µm, giving insight on deformation behavior.
Keywords: laser powder bed fusion; heat treatment; AlSi10Mg; ductility; compression testing; tensile testing; lattice structures; face-centered cubic cells; precipitation size laser powder bed fusion; heat treatment; AlSi10Mg; ductility; compression testing; tensile testing; lattice structures; face-centered cubic cells; precipitation size
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MDPI and ACS Style

Megahed, S.; Bühring, J.; Duffe, T.; Bach, A.; Schröder, K.-U.; Schleifenbaum, J.H. Effect of Heat Treatment on Ductility and Precipitation Size of Additively Manufactured AlSi10Mg. Metals 2022, 12, 1311. https://doi.org/10.3390/met12081311

AMA Style

Megahed S, Bühring J, Duffe T, Bach A, Schröder K-U, Schleifenbaum JH. Effect of Heat Treatment on Ductility and Precipitation Size of Additively Manufactured AlSi10Mg. Metals. 2022; 12(8):1311. https://doi.org/10.3390/met12081311

Chicago/Turabian Style

Megahed, Sandra, Jannik Bühring, Tobias Duffe, Aleksandar Bach, Kai-Uwe Schröder, and Johannes Henrich Schleifenbaum. 2022. "Effect of Heat Treatment on Ductility and Precipitation Size of Additively Manufactured AlSi10Mg" Metals 12, no. 8: 1311. https://doi.org/10.3390/met12081311

APA Style

Megahed, S., Bühring, J., Duffe, T., Bach, A., Schröder, K.-U., & Schleifenbaum, J. H. (2022). Effect of Heat Treatment on Ductility and Precipitation Size of Additively Manufactured AlSi10Mg. Metals, 12(8), 1311. https://doi.org/10.3390/met12081311

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