材料科学
微观结构
合金
极限抗拉强度
应变率
冶金
压缩(物理)
变形机理
打滑(空气动力学)
变形(气象学)
复合材料
热力学
物理
作者
Chenkun Xu,Zhi Wang,Le Zhou,Yijian Dai,Feng Wang,Weihan Zhang,Ziqi Wei,Pingli Mao
标识
DOI:10.1177/02670836231223803
摘要
The Mg–6Zn– xCe–0.6Zr ( x = 1, 2) alloys were subjected to a dynamic compression experiment, and the change in microstructure was noticed and studied. The primary components of two alloys are α-Mg matrix, Mg 7 Zn 3 phase, and (Mg 1− x Zn x ) 11 Ce phase. The two alloys have grain diameters of 2.8 and 3.2 μm, respectively. The dynamic compressive mechanical characteristics of the two alloys show a positive strain-strengthening effect, with Mg–6Zn–1Ce–0.6Zr alloy having somewhat higher values than Mg–6Zn–2Ce–0.6Zr alloy. At a strain rate of 500 s −1 , {10[Formula: see text]2} tensile twin is the dominant deformation mechanism for two alloys, but the Mg–6Zn–2Ce–0.6Zr alloy is more prone to produce {10[Formula: see text]2} tensile twin. With the increase of the strain rate, the dominant deformation mechanism changes from {10[Formula: see text]2} tensile twin to pyramidal slip.
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