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首页> 外文期刊>The journal of physical chemistry, B. Condensed matter, materials, surfaces, interfaces & biophysical >Excess Thermodynamic Properties of Mixtures Involving Xenon and Light Alkanes: A Study of Their Temperature Dependence by Computer Simulation
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Excess Thermodynamic Properties of Mixtures Involving Xenon and Light Alkanes: A Study of Their Temperature Dependence by Computer Simulation

机译:涉及氙和轻烷烃的混合物的过度热力学性质:通过计算机模拟研究其温度依赖性

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As a natural extension of a previous work, excess molar enthalpies and excess molar volumes as a function of composition in a wide range of temperatures have been obtained for binary mixtures of xenon with ethane, propane, and n-butane by Monte Carlo computer simulation. Xenon was modeled by a simple spherical Lennard-Jones potential, and the TraPPE-UA force field was Used to describe the n-alkanes. One of the main goals of this study is to investigate the temperature dependence of the excess properties for mixtures of xenon and n-alkanes and, if possible, to supplement the lack of experimental data. For all three systems, the simulation results predicted excess volumes in good agreement with the experimental data. As for the excess enthalpies, in the case of (xenon + ethane), the simulation results confirm the negative experimental result and the weak temperature dependence. In the case of (xenon + propane) and (xenon + n-butane), however, the simulation predicts negative excess enthalpies, but those estimated from experimental data are positive. Both excess volumes and enthalpies display a complex dependence on temperature that in some aspects resembles that found for mixtures of n-alkanes,The structure of the liquid mixtures was also investigated by calculating radial distribution functions [gαβ(r)] between each pair of interaction groups for all the binary systems at all temperatures. It is found that the mean distance between xenon and CH2 groups is systematically higher than the distance between xenon and CH3. In addition, the number of groups around xenon in the first coordination sphere was calculated and seems to be proportionally more populated by methyl groups than by methylene groups. The results seem to reflect a preferential and stronger interaction between xenon and CH3, in agreement with previous findings.
机译:作为先前工作的自然延伸,通过蒙特卡洛计算机模拟,已经获得了氙与乙烷,丙烷和正丁烷的二元混合物在较大温度范围内的过量摩尔焓和过量摩尔体积随组成变化的函数。氙是通过简单的球形Lennard-Jones势建模的,并且TraPPE-UA力场用于描述正构烷烃。这项研究的主要目标之一是研究氙和正构烷烃混合物过剩性能的温度依赖性,并在可能的情况下补充缺乏实验数据。对于所有三个系统,仿真结果预测的多余体积与实验数据完全吻合。至于过量的焓,在(氙气+乙烷)的情况下,仿真结果证实了实验结果是负面的并且对温度的依赖性很弱。然而,在(氙气+丙烷)和(氙气+正丁烷)的情况下,模拟预测的负焓为负,但从实验数据估计的焓为正。过量的体积和焓都显示出对温度的复杂依赖性,在某些方面类似于正构烷烃混合物的温度。还通过计算每对相互作用之间的径向分布函数[gαβ(r)]研究了液体混合物的结构所有温度下所有二进制系统的分组。发现氙与CH2基团之间的平均距离系统地高于氙与CH3之间的距离。另外,计算了在第一配位领域中氙周围的基团数目,并且似乎成比例地由甲基而不是亚甲基构成。该结果似乎反映了氙和CH3之间优先且更强的相互作用,与先前的发现一致。

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