Ma Zongwen, Hu Fengya, Wang Zhongjun, Fu Kuijun, Wei Zhenxiong, Wang Jiaji, Li Weijuan
School of Materials and Metallurgy, University of Science and Technology Liaoning, Anshan 114051, China.
State Key Laboratory of Metal Material for Marine Equipment and Application, Ansteel Group Corporation, Anshan 114009, China.
Materials (Basel). 2020 Jul 12;13(14):3107. doi: 10.3390/ma13143107.
A Gleeble-2000D thermal simulation machine was used to investigate the high-temperature hot compression deformation of an extruded Mg-16Al magnesium alloy under various strain rates (0.0001-0.1 s) and temperatures (523-673 K). Combined with the strain compensation Arrhenius equation and the Zener-Hollomon () parameter, the constitutive equation of the alloy was constructed. The average deformation activation energy, , was 144 KJ/mol, and the strain hardening index (n ≈ 3) under different strain variables indicated that the thermal deformation mechanism was controlled by dislocation slip. The Mg-16Al alloy predicted by the Sellars model was characterized by a small dynamic recrystallization (DRX) critical strain, indicating that MgAl particles precipitated during the compression deformation promoted the nucleation of DRX. Hot processing maps of the alloy were established based on the dynamic material model. These maps indicated that the high Al content, precipitation of numerous MgAl phases, and generation of microcracks at low temperature and low strain rate led to an unstable flow of the alloy. The range of suitable hot working parameters of the experimental alloy was relatively small, i.e., the temperature range was 633-673 K, and the strain rate range was 0.001-0.1 s.
采用Gleeble-2000D热模拟机研究了挤压态Mg-16Al镁合金在不同应变速率(0.0001-0.1 s)和温度(523-673 K)下的高温热压缩变形。结合应变补偿Arrhenius方程和Zener-Hollomon()参数,建立了该合金的本构方程。平均变形激活能为144 KJ/mol,不同应变变量下的应变硬化指数(n≈3)表明热变形机制由位错滑移控制。Sellars模型预测的Mg-16Al合金具有较小的动态再结晶(DRX)临界应变,表明压缩变形过程中析出的MgAl颗粒促进了DRX的形核。基于动态材料模型建立了该合金的热加工图。这些图表明,高Al含量、大量MgAl相的析出以及低温低应变速率下微裂纹的产生导致合金流动不稳定。实验合金合适的热加工参数范围相对较小,即温度范围为633-673 K,应变速率范围为0.001-0.1 s。