High strength and ductility in a rare-earth free magnesium alloy processed by rotary swaging and flash annealing
作者:Yunhao Fan, Yizhuang Li, Hui Guo, Gaoming Zhu, Boyu Liu, Hao Wang, Hao Zhou, Yuling Xu, Xiaoqin Zeng, Leyun Wang · 发表于:Communications Materials · 年份:2025 · DOI:10.1038/s43246-025-00736-z · 被引用次数:10 · 研究领域:Magnesium Alloys: Properties and Applications、Aluminum Alloys Composites Properties、Aluminum Alloy Microstructure Properties
Magnesium (Mg) is the lightest structural metal. It is promising for aerospace applications if its mechanical properties can be improved at a reasonable cost, without using expensive alloying elements or time-consuming processing routes. Here, we develop a rare-earth free Mg-Al-Ca alloy, processed through rotary swaging followed by flash annealing. The resulting alloy exhibits superior strength and ductility, surpassing nearly all reported rare-earth free magnesium alloys. Nanosized Al-Ca precipitates and clusters, formed largely during rotary swaging and flash annealing, significantly strengthen the alloy. Deformation twinning is suppressed, necessitating the formation of more <c + a> dislocations to accommodate the severe plastic strain induced by rotary swaging. These <c + a> dislocations are retained during flash annealing due to the high climb energy barrier and pinning by those nanosized Al-Ca precipitates and clusters. This retention of <c + a> dislocations contributes to high ductility and provides forest hardening, further increasing strength. This study offers a simple strategy for designing and fabricating high-performance magnesium alloys. Retarded dislocation activity in magnesium alloys typically limits ductility. Here, high strength and ductility are achieved in a rotary swaged and flash annealed rare earth-free magnesium alloy, attributed to nanosized Al-Ca precipitates and dislocation activation with limited twinning.