动态再结晶
材料科学
再结晶(地质)
层错能
电子背散射衍射
热加工
结晶学
应变率
活化能
复合材料
微观结构
地质学
化学
物理化学
古生物学
作者
Shiyang Liu,Damon Kent,Hongyi Zhan,Nghiem Doan,Chang Wang,Sen Yu,Matthew S. Dargusch,Gui Wang
标识
DOI:10.1016/j.jmst.2020.12.077
摘要
This work investigates the strain rate dependence of dynamic recrystallization behaviour of high-purity zinc in room temperature compression under strain rates of 10−4 s-1, 10-2 s-1 and 0.5 s-1. Results from electron backscatter diffraction provide insight into the deformation and dynamic recrystallization mechanisms operative. Continuous dynamic recrystallization, twin-induced dynamic recrystallization, and discontinuous dynamic recrystallization are all active under compressive deformation at room temperature. Due to the high stacking fault energy of Zn, continuous dynamic recrystallization is the dominant mechanism while discontinuous dynamic recrystallization only operates in the early stages of compression at 10−4 s-1. Dynamic recrystallization kinetics are enhanced at higher strain rates (10-2 s-1 and 0.5 s-1) due to an increased contribution from twin-induced dynamic recrystallization. The present study reveals that the controlling mechanisms for continuous dynamic recrystallization are basal < a> slip and 2nd order pyramidal < c + a> slip activity. Because the activation of slip systems is mainly determined by crystallographic orientation, continuous dynamic recrystallization behaviour varies with grain orientation according to their propensity for basal and 2nd order pyramidal slip.
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