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Empirical force field-based kinetic Monte Carlo simulation of precipitate evolution and growth in Al-Cu alloys

机译:基于经验力场的Al-Cu合金析出物生长的动力学Monte Carlo模拟

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Ability to accelerate the morphological evolution of nanoscale precipitates is a fundamental challenge for atomistic simulations. Kinetic Monte Carlo (KMC) methodology is an effective approach for accelerating the evolution of nanoscale systems that are dominated by so-called rare events. The quality and accuracy of energy landscape used in KMC calculations can be significantly improved using DFT-informed interatomic potentials. Using newly developed computational framework that uses molecular simulator LAMMPS as a library function inside KMC solver SPPARKS, we investigated formation and growth of Guiner-Preston (GP) zones in dilute Al-Cu alloys at different temperature and copper concentrations. The KMC simulations with angular dependent potential (ADP) predict formation of coherent disc-shaped monolayers of copper atoms (GPI zones) in early stage. Such monolayers are then gradually transformed into energetically favored GPII phase that has two aluminum layers sandwiched between copper layers. We analyzed the growth kinetics of KMC trajectory using Johnson-Mehl-Avrami (JMA) theory and obtained a phase transformation index close to 1.0. In the presence of grain boundaries, the KMC calculations predict the segregation of copper atoms near the grain boundaries instead of formation of GP zones. The computational framework presented in this work is based on open source potentials and MD simulator and can predict morphological changes during the evolution of the alloys in the bulk and around grain boundaries.
机译:加速纳米级沉淀物形态演变的能力是原子模拟的一项基本挑战。动力学蒙特卡洛(KMC)方法学是一种有效的方法,可加速由所谓的稀有事件主导的纳米系统的演化。使用DFT告知的原子间电势,可以显着提高KMC计算中使用的能量分布的质量和准确性。使用新开发的计算框架,该模型使用分子模拟器LAMMPS作为KMC求解器SPPARKS中的库函数,我们研究了在不同温度和铜浓度下稀Al-Cu合金中Guiner-Preston(GP)区的形成和生长。具有角度相关电位(ADP)的KMC模拟可预测铜原子(GPI区)的相干圆盘状单层的形成。然后将此类单分子层逐渐转化为具有能量优势的GPII相,该相具有两个夹在铜层之间的铝层。我们使用Johnson-Mehl-Avrami(JMA)理论分析了KMC轨迹的生长动力学,并获得了接近1.0的相变指数。在存在晶界的情况下,KMC计算可预测晶界附近铜原子的偏析,而不是形成GP区域。这项工作中提出的计算框架基于开放源电势和MD模拟器,并且可以预测合金在块体内和晶界周围的演变过程中的形态变化。

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