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Phase-Field Simulations at the Atomic Scale in Comparison to Molecular Dynamics

机译:与分子动力学相比,原子尺度的相场模拟

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Early solidification is investigated using two different simulation techniques: the molecular dynamics (MD) and the phase-field (PF) methods. While the first describes the evolution of a system on the basis of motion equations of particles, the second grounds on the evolution of continuous local order parameter field. The aim of this study is to probe the ability of the mesoscopic phase-field method to make predictions of growth velocity at the nanoscopic length scale. For this purpose the isothermal growth of a spherical crystalline cluster embedded in a melt is considered. The system in study is Ni modeled with the embedded atom method (EAM). The bulk and interfacial properties required in the PF method are obtained from MD simulations. Also the initial configuration obtained from MD data is used in the PF as input. Results for the evolution of the cluster volume at high and moderate undercooling are presented.
机译:使用两种不同的仿真技术研究了早期凝固:分子动力学(MD)和相场(PF)方法。虽然首先描述了基于粒子的运动方程的系统的演变,第二种地面是连续局部阶参数场的演变。本研究的目的是探讨介于介面的相现场方法在纳米镜下长度下进行生长速度预测的能力。为此目的,考虑嵌入熔体中的球形晶体簇的等温生长。研究中的系统是用嵌入的原子方法(EAM)建模的NI。 PF方法中所需的体积和界面特性是从MD仿真获得的。此外,从MD数据获得的初始配置在PF中使用为输入。提出了高和中等过冷时簇体积演变的结果。

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