Damage mechanisms in selective laser melted AlSi10Mg under as built and different post-treatment conditions

Zhao, Lv;Santos Macias, Juan Guillermo;Ding, Lipeng;Idrissi, Hosni;Simar, Aude
(2019) Materials Science and Engineering: A — Vol. 764, p. 138210 (2019)

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Authors
  • Zhao, Lvorcid-logoHuazhong University of Science and Technology
    Author
  • Santos Macias, Juan GuillermoUCLouvain
    Author
  • Ding, LipengUCLouvain
    Author
  • Author
  • Simar, Audeorcid-logoUCLouvain
    Author
Abstract
Selective laser melting (SLM) manufactured AlSi10Mg alloys present a fine silicon-rich network and precipitates which grant high mechanical strength but low ductility. Post-treatments, aiming at eliminating inherent defects related to SLM such as residual stresses, porosity or inhomogeneity, result in significant changes in the microstructure and impact both the hardening and the damage mechanisms of the post-treated material. The present work is dedicated to the investigation of the fracture of SLM AlSi10Mg under as built and three post-treatment conditions, namely two stress relieve heat treatments and friction stir processing (FSP). It is found that the interconnected Si network fosters damage at low strain due to the brittleness of the Si phase. The onset of damage transfers load to the enclosed Al phase which then fractures quickly under high stress, thus leading to low material ductility. In contrast, when the Si network is globularized into Si particles, the ductility is highly increased even in the case where the porosity and inhomogeneity of the microstructure remain after the posttreatment. The ductility enhancement results from the delay in void nucleation on the Si particles as well as from the tolerance for void growth in the Al matrix.
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Citations

Zhao, L., Santos Macias, J. G., Ding, L., Idrissi, H., & Simar, A. (2019). Damage mechanisms in selective laser melted AlSi10Mg under as built and different post-treatment conditions. Materials Science and Engineering: A, 764, 138210. https://doi.org/10.1016/j.msea.2019.138210 (Original work published 2019)