Nagashima H, Tsuda S, Tsuboi N, Koshi M, Hayashi K A, Tokumasu T
School of Engineering, Tohoku University, 2-1-1 Katahira, Aoba-ku, Sendai 980-8577, Japan.
Department of Mechanical Systems Engineering, Shinshu University, Nagano 380-8553, Japan.
J Chem Phys. 2014 Apr 7;140(13):134506. doi: 10.1063/1.4870036.
In this paper, we describe the analysis of the thermodynamic properties of cryogenic hydrogen using classical molecular dynamics (MD) and path integral MD (PIMD) method to understand the effects of the quantum nature of hydrogen molecules. We performed constant NVE MD simulations across a wide density-temperature region to establish an equation of state (EOS). Moreover, the quantum effect on the difference of molecular mechanism of pressure-volume-temperature relationship was addressed. The EOS was derived based on the classical mechanism idea only using the MD simulation results. Simulation results were compared with each MD method and experimental data. As a result, it was confirmed that although the EOS on the basis of classical MD cannot reproduce the experimental data of saturation property of hydrogen in the high-density region, the EOS on the basis of PIMD well reproduces those thermodynamic properties of hydrogen. Moreover, it was clarified that taking quantum effects into account makes the repulsion force larger and the potential well shallower. Because of this mechanism, the intermolecular interaction of hydrogen molecules diminishes and the virial pressure increases.
在本文中,我们描述了使用经典分子动力学(MD)和路径积分分子动力学(PIMD)方法对低温氢的热力学性质进行分析,以了解氢分子量子性质的影响。我们在很宽的密度 - 温度区域进行了正则NVE MD模拟,以建立状态方程(EOS)。此外,还探讨了量子效应对压力 - 体积 - 温度关系分子机制差异的影响。仅使用MD模拟结果,基于经典机制思想推导了EOS。将模拟结果与每种MD方法和实验数据进行了比较。结果证实,尽管基于经典MD的EOS无法再现高密度区域氢的饱和性质实验数据,但基于PIMD的EOS能很好地再现氢的那些热力学性质。此外,还阐明了考虑量子效应会使排斥力增大且势阱变浅。由于这种机制,氢分子的分子间相互作用减弱,维里压力增加。