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首页> 外文期刊>Fluid Phase Equilibria >Prediction of fluid-phase behavior of symmetrical binary Yukawa fluids using transition matrix Monte Carlo
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Prediction of fluid-phase behavior of symmetrical binary Yukawa fluids using transition matrix Monte Carlo

机译:过渡矩阵蒙特卡罗预测对称二元汤河流体的液相行为

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Binary fluid mixtures display a wide array of fluid phase behavior ranging from simple vapor-liquid equilibrium diagrams to more complicated topology like azeotropy and heteroazeotropy. As a first step towards understanding the phenomena of equilibrium of binary molecular systems, the properties of binary monoatomic fluids have been studied in this work. An additional simplification made in this work is that of a symmetrical binary system where all similar molecules interact via the hard-core Yukawa (HCY) potential, u(r), while the dissimilar molecules interact via a potential, delta u(r) where delta is a scalar parameter. The value of delta here is 0.75, which leads to the dissimilar molecules showing a tendency to dislike one another and the resulting phase diagram is such that the mixing-demixing line intersects the vapor-liquid equilibrium curve away from the vapor-liquid critical point. The effect of the variable potential range parameter of the HCY potential on the topology of the phase diagrams is investigated using grand canonical transition matrix Monte Carlo simulations and the conditions of temperature and pressure at which the system exhibits azeotropy and heteroazeotropy are ascertained. We find that the densities of the mixtures, as predicted by our simulation at equimolar concentrations, are in close agreement with the self-consistent Ornstein-Zernike approximation results of Scholl-Paschinger and co-workers. (C) 2016 Elsevier B.V. All rights reserved.
机译:二元流体混合物显示了从简单的气液平衡图到更复杂的拓扑结构(如共沸和异共沸)的各种液相行为。作为理解二元分子系统平衡现象的第一步,已在这项工作中研究了二元单原子流体的性质。这项工作的另一个简化是对称二元系统,其中所有相似的分子都通过硬核汤河(HCY)势u(r)相互作用,而异种分子则通过电势delta u(r)相互作用,其中增量是标量参数。此处的δ值是0.75,这导致异种分子表现出彼此不喜欢的趋势,并且所得到的相图使得混合-脱附线与汽-液平衡曲线相交,远离汽-液临界点。使用大正则转换矩阵蒙特卡洛模拟研究了HCY电位的可变电位范围参数对相图拓扑的影响,并确定了系统表现出共沸和异相的温度和压力条件。我们发现,根据我们在等摩尔浓度下的模拟预测,混合物的密度与Scholl-Paschinger及其同事的自洽Ornstein-Zernike逼近结果非常吻合。 (C)2016 Elsevier B.V.保留所有权利。

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