Microstructures and mechanical properties of a hot-extruded Mg−8Gd−3Yb−1.2Zn−0.5Zr (wt%) alloy

2019 
Abstract Microstructures and mechanical properties of a Mg−8Gd−3Yb−1.2Zn−0.5Zr (wt%) alloy have been investigated. The dominant intermetallic phases in the as-cast sample are Mg 5 RE (RE = Gd,Yb) phase, 14H-type long-period stacking ordered (LPSO) phase, and Mg 2 Zn 2 RE (W) phase and ordered Mg 12 RE phase. Furthermore, the ordered Mg 12 RE phase generally coexists with the W phase following an orientation relationship as [0 1 ¯ 1] w //[ 2 ¯ 30] Mg12RE , and ( 1 ¯ 11) w //(001) Mg12RE . After extrusion, the microstructure is consisted of un-recrystallized regions along with a small part of fine dynamically recrystallized (DRXed) regions. Simultaneously, the coarse Mg 5 RE, W and Mg 12 RE particles were disintegrated and mainly distribute at extrusion stringers while the fine LPSO plates mainly distribute in un-recrystallized regions. Moreover, amounts of nanoscale Mg 5 RE particles were dynamically precipitated in DXRed regions. Then, the as-extruded Mg−8Gd−3Yb−1.2Zn−0.5Zr alloy exhibits clearly higher strength than the classic rare-earth-containing magnesium alloys with comparative or even much higher rare earth content at both room temperature and high temperatures. The dominant strengthening mechanism was finally revealed as precipitation/dispersion strengthening.
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