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Molecular dynamics simulations and flow injection studies of hydrothermal fluids.

机译:热液流体的分子动力学模拟和流动注射研究。

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Hydrothermal fluids near and above the critical point of water have unique and potentially very useful thermophysical properties. At present, the lack of knowledge of supercritical water chemistry hinders implementation of innovative hydrothermal technologies. The development of new experimental methods and application of molecular modeling tools is clearly warranted to provide a better understanding of the complex properties of aqueous systems at elevated temperatures and pressures.;The thermodynamic, dielectric and transport properties of hydrothermal fluids are investigated using Molecular Dynamics (MD) simulation and flow injection techniques. The spatial hydration structures and self-diffusion coefficients of phenol, aniline and naphthalene in aqueous infinitely dilute solution are examined from ambient to supercritical conditions by means of MD simulations. It is shown that the solvation shell around aromatic molecules undergoes significant changes along the liquid-vapour coexistence curve and, essentially, disappears at supercritical conditions. The changes in hydration structures are reflected in the values of the self-diffusion coefficients which dramatically increase near the critical point of water. The thermodynamic and dielectric properties of the Simple Point Charge Extended (SPC/E) water model are examined over a broad range of sub- and supercritical states. Accurate thermodynamic and dielectric equations of state (EOS) for the SPC/E water model are presented. The parameterizations provide the most accurate, up-to-date description of the properties of high-temperature SPC/E water, thus enabling for the direct comparison of molecular simulation results with experimental data via the corresponding states principle.;The experimental methodology for the study of aqueous fluids at extreme conditions by using the ex situ flow injection technique is presented. The methodology significantly simplifies the technical aspects of flow injection analysis in hydrothermal fluids as sample injection and detection are performed at ambient temperature, thus allowing the use of standard on-line detection methods. The proposed ex situ experimental technique is applied to the examination of the hydrodynamic regime of a flow-through tubular reactor from ambient to supercritical water conditions. Application of the ex situ Taylor dispersion technique to measurements of the binary diffusion coefficients in hot compressed water is also presented. The ex situ flow injection methodology provides a basis for further development of flow injection analysis techniques at supercritical water conditions.
机译:在水的临界点附近和之上的热液具有独特的并且可能非常有用的热物理性质。目前,缺乏对超临界水化学的了解阻碍了创新水热技术的实施。显然有必要开发新的实验方法和应用分子建模工具,以更好地了解高温和高压下水系统的复杂特性。;使用分子动力学研究了热液的热力学,介电和传输性质( MD)模拟和流动注射技术。通过MD模拟,从环境到超临界条件,研究了无限稀释水溶液中苯酚,苯胺和萘的空间水合结构和自扩散系数。结果表明,芳族分子周围的溶剂化壳沿液-汽共存曲线发生了显着变化,基本上在超临界条件下消失。水化结构的变化反映在自扩散系数的值上,自扩散系数在水的临界点附近急剧增加。在广泛的亚临界和超临界状态下检查了简单点电荷扩展(SPC / E)水模型的热力学和介电性质。给出了SPC / E水模型的精确热力学和介电状态方程(EOS)。这些参数化提供了关于高温SPC / E水特性的最准确,最新的描述,从而可以通过相应的状态原理将分子模拟结果与实验数据直接进行比较。提出了利用异位流动注射技术研究极端条件下的水性流体的方法。该方法极大地简化了热液流体流动注射分析的技术方面,因为样品注射和检测是在环境温度下进行的,因此可以使用标准的在线检测方法。拟议的非现场实验技术被应用于从环境水到超临界水条件下流通式管式反应器的流体力学研究。还介绍了非原位泰勒色散技术在热压缩水中二元扩散系数的测量中的应用。异地流动注射方法为超临界水条件下流动注射分析技术的进一步发展提供了基础。

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