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• First systematic investigation of microstructure evolution and mechanical properties in wire arc additive manufacturing (WAAM) Mg-xAl-Zn alloys using consistent process parameters to focus on the influence of Al content alone. • The correlation between Al content and the microstructure-property relationship of WAAM Mg-xAl-Zn alloys is established. • WAAM Mg-xAl-Zn alloys with ∼6 wt% Al exhibit favorable comprehensive performance for direct use without heat treatment; Al content exceeding 9 wt% requires heat treatment to optimize microstructure and enhance ductility. Aluminum (Al) acts as the primary alloying element in Mg-Al-Zn alloys, so its content is of crucial importance for the samples fabricated by wire arc additive manufacturing (WAAM). However, microstructure and property fluctuations of the alloys induced by varying WAAM processes hinder the extracting of consistent Al content-microstructure-property relationships from existing studies. In this study, Mg-xAl-Zn ( x = 3, 6, 9, 12) alloys were fabricated via WAAM using consistent process parameters to focus on the influence of Al content alone. The results indicate that all of the four alloys primarily consist of α-Mg grains and Mg 17 Al 12 phase. As Al content increases, the α-Mg grain size decreases from 43.1 μm in Mg-3Al-Zn to 19.7 μm in Mg-12Al-Zn. The content of Mg 17 Al 12 phase increases from near 0% in Mg-3Al-Zn to 7.78% in Mg-12Al-Zn, and a sudden increase observed when Al content reached 12 wt%. The microhardness and yield strength of WAAM Mg-xAl-Zn alloys increase linearly with the increasing of Al content, which is attributed to the synergistic effects of grain refinement strengthening, solid solution strengthening, and second-phase strengthening induced by Al content. However, when the Al content reaches 9 wt%, the elongation and tensile strength decreased because of the excessive Mg 17 Al 12 phase. Among the investigated alloys, Mg-6Al-Zn achieves the optimal strength-ductility balance, with a tensile strength of 266.3 ± 0.4 MPa and an elongation of 13.9 ± 1.4%. Thus, alloys with an Al content of approximately 6 wt% exhibit favorable performance and can be used without heat treatment, while those with Al content exceeding 9 wt% require heat treatment to optimize microstructure and improve ductility.
Tu et al. (Sun,) studied this question.