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利用蒙特卡罗模拟中的热力学积分法准确测定 Cu-Zr 熔体的吉布斯自由能。

Accurate determination of the Gibbs energy of Cu-Zr melts using the thermodynamic integration method in Monte Carlo simulations.

机构信息

Centre for Research in Computational Thermochemistry, Department of Chemical Engineering, École Polytechnique de Montréal, C.P. 6079, Station Downtown, Montréal (Québec) H3C 3A7, Canada.

出版信息

J Chem Phys. 2011 Aug 28;135(8):084502. doi: 10.1063/1.3624530.

Abstract

The design of multicomponent alloys used in different applications based on specific thermo-physical properties determined experimentally or predicted from theoretical calculations is of major importance in many engineering applications. A procedure based on Monte Carlo simulations (MCS) and the thermodynamic integration (TI) method to improve the quality of the predicted thermodynamic properties calculated from classical thermodynamic calculations is presented in this study. The Gibbs energy function of the liquid phase of the Cu-Zr system at 1800 K has been determined based on this approach. The internal structure of Cu-Zr melts and amorphous alloys at different temperatures, as well as other physical properties were also obtained from MCS in which the phase trajectory was modeled by the modified embedded atom model formalism. A rigorous comparison between available experimental data and simulated thermo-physical properties obtained from our MCS is presented in this work. The modified quasichemical model in the pair approximation was parameterized using the internal structure data obtained from our MCS and the precise Gibbs energy function calculated at 1800 K from the TI method. The predicted activity of copper in Cu-Zr melts at 1499 K obtained from our thermodynamic optimization was corroborated by experimental data found in the literature. The validity of the amplitude of the entropy of mixing obtained from the in silico procedure presented in this work was analyzed based on the thermodynamic description of hard sphere mixtures.

摘要

基于实验确定或理论计算预测的特定热物理性质,设计用于不同应用的多组分合金在许多工程应用中具有重要意义。本研究提出了一种基于蒙特卡罗模拟(MCS)和热力学积分(TI)方法的方法,以提高从经典热力学计算预测的热力学性质的质量。本方法确定了 1800K 下 Cu-Zr 体系液相的吉布斯能量函数。还通过 MCS 获得了 Cu-Zr 熔体和非晶合金在不同温度下的内部结构以及其他物理性质,其中通过改进的嵌入原子模型形式主义对相轨迹进行建模。本工作对可用实验数据和从我们的 MCS 获得的模拟热物理性质进行了严格比较。使用我们的 MCS 获得的内部结构数据和从 TI 方法在 1800K 计算出的精确吉布斯能量函数对配对近似的修正准化学模型进行了参数化。从我们的热力学优化中获得的 1499K 下铜在 Cu-Zr 熔体中的活度得到了文献中实验数据的证实。基于硬球混合物的热力学描述,分析了从本工作中提出的计算机模拟程序获得的混合熵幅度的有效性。

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