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Microstructural evolution and superplastic behavior of a fine-grained Mg-Gd alloy processed by constrained groove pressing

机译:由约束槽压制加工细粒镁基金合金的微观结构演化与超塑性

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In the current study, microstructural evolution and superplasticity of an extruded Mg-2wt% Gd sheet were studied after the constrained groove pressing (CGP) process. Microstructural observations by scanning electron microscopy and electron backscattered diffraction revealed that after 4 cycles of CGP, a rather homogeneous fine-grained microstructure with an average grain size of 4.3 mu m, and a large fraction of high angle grain boundaries was obtained. By performing shear punch tests (SPT) at different temperatures and various shear strain rates, a peak strain rate sensitivity index (m-value) of 0.49 was obtained after 4 cycles of CGP process at 673 K, while peak m-values of 0.31 and 0.36 were obtained for the as-extruded and 2 cycle CGP process conditions, respectively. An m-value of 0.49 and an activation energy of 113 kJ/mol, obtained for the fine-grained material after 4 cycles of CGP, suggest that the dominant deformation mechanism in the superplastic regime is grain boundary sliding (GBS) controlled by grain boundary diffusion.
机译:在目前的研究中,在受约束的凹槽压制(CGP)工艺之后,研究了挤出的Mg-2wt%GD片的微观结构演化和超塑性。通过扫描电子显微镜和电子反向散射衍射的微观结构观测显示,在4次CGP循环后,获得了平均晶粒尺寸为4.3μm的相当均匀的细粒细胞和大部分的高角度晶界。通过在不同温度和各种剪切应变速率下进行剪切冲头试验(SPT),在673 k下的CGP过程的4个循环后获得0.49的峰应变率灵敏度指数(m值),而峰值M值为0.31和分别获得0.36分别用于挤出和2周期CGP工艺条件。在CGP的4个循环后,为0.49的M值为0.49和113kJ / mol的活化能,表明超塑性方案中的主要变形机制是由晶界控制的晶界滑动(GBS)扩散。

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