The laser powder bed fusion (LPBF) additively manufactured AlSi10Mg alloy has been subjected to numerous investigations addressing its microstructure and mechanical properties. However, there is still a gap in the understanding of the correlation between the microstructure and fracture behavior, in particular when the melt pool border is oriented differently to tensile load. In this work, damage nucleation sites and fracture path of as built LPBF AlSi10Mg were analyzed and compared for two loading directions. For the first time, the orientation of the melt pool border is shown to present negligible effect on a ductility exceeding 10%, in contrast to previous works. Through observation and statistical analysis of damage, it is found for both loading directions that the melt pool border does not exhibit damage localization. When the melt pool border is perpendicular to tensile load, the crack propagates frequently along the coarse melt pool due to easier damage growth in this relatively softer region. Nevertheless, the ductility is barely compromised owing to delayed damage coalescence across larger α-Al cells.
Huazhong University of Science and TechnologyDepartment of Mechanics, School of Aerospace Engineering
Université de LyonMateis, INSA Lyon, UMR5510 CNRS
Hubei Key Laboratory of Engineering Structural Analysis and Safety Assessment
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Zhao, L., Santos Macias, J. G., Douillard, T., Li, Z., & Simar, A. (2021). Unveiling damage sites and fracture path in laser powder bed fusion AlSi10Mg: Comparison between horizontal and vertical loading directions. Materials Science and Engineering: A, 807, 140845. https://doi.org/10.1016/j.msea.2021.140845 (Original work published 2021)