材料科学
软化
晶体孪晶
动态再结晶
变形机理
硬化(计算)
应变率
合金
冶金
变形(气象学)
本构方程
复合材料
应变硬化指数
分离式霍普金森压力棒
电子背散射衍射
微观结构
热力学
热加工
有限元法
物理
图层(电子)
作者
Wanru Tang,Shimeng Liu,Zheng Liu,Shuang Kang,Pingli Mao,Hui Guo
标识
DOI:10.1016/j.msea.2020.139208
摘要
Dynamic compression experiments of fine grained Mg–7Gd–5Y–1.2Nd–0.5Zr alloy were measured by the split-Hopkinson pressure bar test at the strain rates in the range 1000–2000 s−1 and the temperature range 293–573 K along the transverse direction. The microstructure of the alloy was characterized by electron back-scattering diffraction and transmission electron microscopy. The results showed that the deformation hardening mechanisms dominated by pyramidal slip and assisted by many mechanisms such as tension twinning, while the deformation softening mechanism just dominated by a partial dynamic recrystallization at the grain boundaries. During the entire deformation process at different temperatures, softening was found as the only accompanying mechanism of hardening. Even at 573 K, the fully recrystallized structure was not achieved, and the hardening mechanism was always dominant until they tend to balance. Based on these deformation mechanisms, especially the continuous attenuation mechanism of dynamic recrystallization softening associated with hardening, the Johnson–Cook model was modified, and a unified constitutive equation for deformation under high strain rate at different temperatures was constructed. The resulted obtained by this equation were in good agreement with the experimental results.
科研通智能强力驱动
Strongly Powered by AbleSci AI