Jiao Xueyan, Li Xinjie, Zhan Liqiang, Wang Gang, Ding Jin, Yang Jianlei
School of Naval Architecture and Port Engineering, Shandong Jiaotong University, 1508 Hexing Road, Weihai 264310, China.
Weihai Lightweight Materials and Forming Engineering Research Center, Weihai 264209, China.
Materials (Basel). 2022 May 16;15(10):3556. doi: 10.3390/ma15103556.
The microstructure evolution and grain growth kinetics of the fine-grained extruded Mg-Nd-Zn-Zr alloy were investigated by holding the extruded plate for a wide range of time in the temperature range of 470 °C to 530 °C. By observing the optical micrographs, it was found that the material showed abnormal grain growth at the experimental condition of 470 °C × 24 h, and the time point of abnormal grain growth appeared significantly earlier with the increase in the experimental temperature. The evaluation of the second phase content within the alloy indicates that the presence of the second phase contributes to the microstructural stability of the Mg-Nd-Zn-Zr alloy. However, the slow coarsening/dissolution of the second phase is an important cause of abnormal grain growth. Based on the experimental data, the isothermal grain growth kinetic models of the fine-grained extruded Mg-Nd-Zn-Zr alloy were developed based on the Sellars model. The grain growth exponent was in the range of 5.5-8 and decreased gradually with the increase in the experimental temperature. The grain growth activation energy is approximately 150.00 kJ/mol, which is close to the bulk diffusion activation energy of magnesium, indicating that the grain growth is controlled by lattice diffusion. By energy spectrometry (EDS), the compositional changes of the second phase within this alloy at 500 °C were investigated.
通过在470℃至530℃的温度范围内将挤压板材保持不同时间,研究了细晶挤压态Mg-Nd-Zn-Zr合金的微观结构演变和晶粒生长动力学。通过观察光学显微照片发现,在470℃×24 h的实验条件下,该材料出现了异常晶粒生长,并且随着实验温度的升高,异常晶粒生长的时间点显著提前。对合金中第二相含量的评估表明,第二相的存在有助于Mg-Nd-Zn-Zr合金的微观结构稳定性。然而,第二相的缓慢粗化/溶解是异常晶粒生长的一个重要原因。基于实验数据,基于塞拉斯模型建立了细晶挤压态Mg-Nd-Zn-Zr合金的等温晶粒生长动力学模型。晶粒生长指数在5.5 - 8范围内,并随着实验温度的升高而逐渐降低。晶粒生长激活能约为150.00 kJ/mol,这与镁的体扩散激活能相近,表明晶粒生长受晶格扩散控制。通过能谱分析(EDS),研究了该合金在500℃时第二相的成分变化。