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1,8-桉叶素的性质:热物理与理论研究

Properties of 1,8-cineole: a thermophysical and theoretical study.

作者信息

Aparicio Santiago, Alcalde Rafael, Dávila María J, García Begoña, Leal José M

机构信息

Departamento de Química, Universidad de Burgos, 09001 Burgos, Spain.

出版信息

J Phys Chem B. 2007 Mar 29;111(12):3167-77. doi: 10.1021/jp067405b. Epub 2007 Mar 3.

Abstract

This paper reports on an experimental and theoretical study of 1,8-cineole, one of the main components of essential oils in different plants. The pressure-volume-temperature behavior of this fluid was evaluated accurately over wide temperature and pressure ranges and correlated successfully with the empirical TRIDEN equation. From the measured data, the relevant derived coefficients isothermal compressibility, isobaric expansibility, and internal pressure were calculated. The isobaric heat capacities at high pressure were extrapolated from the data measured at atmospheric pressure. The cubic equations of state by Soave, Peng-Robinson, Stryjek-Vera modification of Peng-Robinson, Patel-Teja, Sako-Wu-Prausnitz, and the SAFT and PC-SAFT molecularly based equations of state were used to predict the PVT behavior. The SAFT and PC-SAFT parameters for 1,8-cineole were obtained from correlation of available saturation literature data; the best results were provided by Sako-Wu-Prausnitz and PC-SAFT equations of state, whereas the classical ones were shown to be inadequate. The molecular structure was studied by quantum computations at the B3LYP/6-311++g(d) level and classical molecular dynamics simulations in the NPT ensemble with the OPLS-AA forcefield. On the basis of both macroscopic and microscopic studies, a complex fluid structure was inferred.

摘要

本文报道了对1,8-桉叶素(不同植物精油的主要成分之一)的实验和理论研究。在较宽的温度和压力范围内精确评估了该流体的压力-体积-温度行为,并成功地将其与经验TRIDEN方程相关联。根据测量数据,计算了相关的导出系数——等温压缩系数、等压膨胀系数和内压。高压下的等压热容是根据在大气压下测量的数据外推得到的。使用Soave、Peng-Robinson、Peng-Robinson的Stryjek-Vera修正、Patel-Teja、Sako-Wu-Prausnitz的立方状态方程以及基于分子的SAFT和PC-SAFT状态方程来预测PVT行为。1,8-桉叶素的SAFT和PC-SAFT参数是通过对现有饱和文献数据的关联获得的;Sako-Wu-Prausnitz和PC-SAFT状态方程给出了最佳结果,而经典方程则被证明是不适用的。通过在B3LYP/6-311++g(d)水平上的量子计算以及在NPT系综中使用OPLS-AA力场的经典分子动力学模拟研究了分子结构。基于宏观和微观研究,推断出了一种复杂的流体结构。

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