article · Journal of Materials Research and Technology
Selective Laser Melting (SLM) has great potential for fabricating high performance and complex parts but its application in Mg alloys is rather limited due to the trade-off between corrosion resistance and the strength-ductility properties. In this work, the properties of SLM-fabricated AZ91D alloy have been investigated as a function of heat treatment conditions and the evolution of microstructure has been quantified. It has been found that the size, distribution, and morphology of the β-Mg 17 Al 12 phase are the core factors determining the comprehensive performance of the alloy. At T4 heat treatment, nearly complete dissolution of the β-phase has been achieved, while the formation of a coarse discontinuous β-phase network along grain boundaries has been observed after T5 heat treatment. Dispersed precipitation of fine needle-like β-phase within the matrix are observed after T6 heat treatment, resulting in optimal strength-ductility balance of the alloy. The strengthening mechanism was dominated by dislocation strengthening, and supplemented by Orowan strengthening, reaching an ultimate tensile strength of 308 MPa. Micro-galvanic corrosion between the β-phase and the a-Mg matrix has been observed, whereas the uniform distribution of precipitates improves corrosion resistance. Therefore, the mechanism of tailoring both strength-ductility together with corrosion resistance by controlling β phase size and distribution has been found for SLM-fabricated AZ91D alloy, providing further process optimization strategy for additively manufactured Mg alloys.
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DOI: 10.1016/j.jmrt.2026.08.222
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