用分子动力学计算单组分和双组分液体的热传递系数

C. Hoheisel, R. Vogelsang
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引用次数: 73

摘要

介绍了用分子动力学方法测定液体输运系数的方法。非平衡分子动力学(NEMD)和平衡分子动力学(MD)都被考虑。然而,虽然对MD进行了详尽的处理,但对NEMD方法的报道只是简要的。对于后者,我们只关心所谓的减法技术。单组分和双组分系统被认为是由Lennard-Jones 1中心对势模拟的。在某些情况下,结果也几乎与阿尔戈的三相点相对应。然而,为了与实验数据进行比较,我们进一步考虑了热力学状态。对于双组分系统,我们经常在液态处理Ar-Kr系统,以便与实验数据进行比较。详细讨论了自扩散系数、互扩散系数、体积粘度和剪切粘度、导热系数和热扩散系数(Soret/Dufour效应)的时间相关函数。给出了各种电流的详细分子形式,例如压力张量元。分别分析了它们对总相关函数的部分贡献。给出了计算的技术细节,并对计算系数的精度进行了全面的估计。概述了与散射相关函数的关系,并给出了与波矢量相关的输运系数的一些结果以供比较。最后,我们对Ar和Ar- kr的计算和测量数据进行了有限的比较。
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Thermal transport coefficients for one-and two-component liquids from time correlation functions computed by molecular dynamics

The determination of transport coefficients of liquids by molecular dynamics methods is described. Both non-equilibrium (NEMD) and equilibrium molecular dynamics (MD) are considered. However, while the MD is exhaustively treated, NEMD methods are reported only briefly. For the latter, we are only concerned with the so-called subtraction technique. One- and two-component systems are considered modelled by Lennard-Jones 1-centre pair potentials. In some cases also results virtually corresponding to the triple point of argo. However, for comparison with experimental data, we consider further thermodynamic states. For the two-component system, we frequently treat the Ar-Kr system at a liquid state to allow comparison with experimental data. In detail are discussed the time correlation functions for: the self-diffusion coefficient, the mutual diffusion coefficient, the bulk and shear viscosity, the thermal conductivity and the thermal diffusion coefficient (Soret/Dufour effect). The detailed molecular formulation of the various currents, e.g. the pressure tensor elements, are given. The partial contributions of these to the total correlation functions are separately analysed. Technical details of the computations are presented, and the accuracy of the calculated coefficients is thoroughly estimated. Relations to scattering correlation functions are outlined and some results for wave-vector dependent tranport coefficients are presented for comparison. We conclude the article with a limited comparison of computed and measured data for Ar and Ar-Kr.

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The dynamics of molecule-surface interaction Contents to volume 12 The knowledge-based system GRAPE and its application to Landau theory analysis for magnetic space groups The knowledge-based system GRAPE and its application to Landau theory analysis for magnetic space groups Preface
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