Nonisothermal Dissolution Kinetics on Mg17Al12 Intermetallic in Mg-Al Alloys

Renhai Shi
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引用次数: 13

Abstract

In this work, nonisothermal dissolution of intermetallic Mg17Al12 in Mg-Al alloy has been firstly studied via Differential Scanning Calorimetry-DSC, X-Ray Diffraction-XRD and Scanning Electron Microscope-SEM as well as CALPHAD_based dissolution models and molecular dynamics simulation. The size and volume fraction of Mg17Al12 phase could be predicted via the present kinetic dissolution model and agree well with experimental results. Also, the data-driven screening calculation shows that there is a range of temperature for significantly dissolving Mg17Al12 phase, which could be increased with the increase of heating rate. The evolution of structural order for Mg17Al12 phase has also been performed via molecular dynamics simulation with LAMMPS. The simulated results indicate that the structural order of Mg17Al12 phase during heating is mainly affected by the Al-contained atomic pairs (Al-Al and Al-Mg), suggested that Mg atoms are thermodynamically and kinetically more active than Al atoms in Mg17Al12 phase during heating, which has also been approved via the calculated atomic mobility of Mg and Al atoms in Mg17Al12 phase in this work. Therefore, the atomic mobility of Mg atoms is mainly attributed to the interdiffusion coefficient of Mg17Al12 phase which determines the dissolution of Mg17Al12 phase during heating. The fundamental principle in this work could be used for other intermetallics and offers the greatly valuable information for optimizing the thermal processing in application of metal structural materials.
Mg17Al12金属间化合物在Mg-Al合金中的非等温溶解动力学
本文首次采用差示扫描量热法(dsc)、x射线衍射法(xrd)、扫描电镜(sem)以及基于calphad_2的溶解模型和分子动力学模拟,研究了金属间化合物Mg17Al12在mg -铝合金中的非等温溶解。通过建立的动力学溶解模型可以预测Mg17Al12相的尺寸和体积分数,与实验结果吻合较好。数据驱动的筛选计算表明,存在一个Mg17Al12相显著溶解的温度范围,该温度范围随升温速率的增大而增大。利用LAMMPS进行分子动力学模拟,研究了Mg17Al12相结构顺序的演化过程。模拟结果表明,加热过程中Mg17Al12相的结构顺序主要受含Al的原子对(Al-Al和Al-Mg)的影响,表明加热过程中Mg原子比Mg17Al12相中的Al原子在热力学和动力学上更活跃,这也通过计算Mg17Al12相中Mg和Al原子的原子迁移率得到了证实。因此,Mg原子的原子迁移率主要取决于Mg17Al12相的相互扩散系数,它决定了Mg17Al12相在加热过程中的溶解。本工作的基本原理可用于其他金属间化合物,并为优化金属结构材料的热加工提供了有价值的信息。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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