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Prediction of fluid phase equilibria and interfacial tension of triangle-well fluids using transition matrix Monte Carlo

机译:过渡矩阵蒙特卡洛法预测三角井流体的液相平衡和界面张力

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摘要

The triangle-well (TW) potential is a simple model which is able to capture the essence of the intermolecular attraction in real molecules. Transition matrix Monte Carlo simulations in the grand canonical ensemble (GC-TMMC) are performed to investigate the role of the range of attraction on the features of fluid phase equilibria. As the TW potential range increases, the vapour-liquid coexistence curves shift towards a higher temperature range with the critical temperature and pressure increasing, and the critical density values decreasing. These GC-TMMC results are in excellent agreement with the predictions of Gibbs ensemble Monte Carlo and replica exchange Monte Carlo (REMC) simulations reported in literature. Using the GC-TMMC method, the vapour pressures are also computed directly from the particle number probability distributions (PNPDs). It has been noted in literature that the surface tension values are computationally more expensive and difficult to determine than other coexistence properties using molecular simulations. The PNPDs from GC-TMMC simulations along with Binder's formalism allow for the calculation of the interfacial tension with relative ease. Also, our simulation generated results for the interfacial tension are in good agreement with the literature data obtained using REMC (via the virial route) and the plots of our interfacial tension values as a function of temperature are smooth unlike the literature data. (C) 2016 Elsevier B.V. All rights reserved.
机译:三角阱(TW)势是一个简单的模型,它可以捕获真实分子中分子间引力的本质。在大正则合奏(GC-TMMC)中进行了转换矩阵蒙特卡罗模拟,以研究吸引范围对液相平衡特征的作用。随着TW电位范围的增加,随着临界温度和压力的增加,蒸气-液体共存曲线移向更高的温度范围,临界密度值减小。这些GC-TMMC结果与文献报道的Gibbs系谱Monte Carlo预测和副本交换Monte Carlo(REMC)模拟非常吻合。使用GC-TMMC方法,还可以直接从颗粒数概率分布(PNPDs)中计算出蒸汽压力。在文献中已经注意到,与使用分子模拟的其他共存特性相比,表面张力值在计算上更昂贵并且难以确定。来自GC-TMMC模拟的PNPD以及Binder的形式主义使得可以相对轻松地计算界面张力。而且,我们的界面张力模拟生成结果与使用REMC(通过病毒途径)获得的文献数据非常吻合,而且与文献数据不同,我们的界面张力值随温度变化的曲线也很平滑。 (C)2016 Elsevier B.V.保留所有权利。

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