Molecular dynamic simulation and equation of state of Lennard-Jones chain fluids

被引:10
作者
Chang, J [1 ]
Kim, H [1 ]
机构
[1] Seoul Natl Univ, Dept Chem Engn, Seoul 151742, South Korea
关键词
equation of state; molecular dynamics; thermodynamic perturbation theory; Lennard-Jones; chain fluid;
D O I
10.1007/BF02707107
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
In order to study the thermodynamic properties of chain and polymeric fluids at the molecular level, we perform constant temperature molecular dynamics simulations of 'repulsive' and 'full' Lennard-Jones (LJ) chain fluids of lengths up to 16. In the simulation, the RATTLE algorithm to determine constraint forces and the Nose-Hoover thermostat to sample the canonical ensemble are used. For repulsive LT chains, the compressibility factor of the chain fluids is predicted from first-order thermodynamic perturbation theory combined with the Week-Chandler-Andersen (TPT1-WCA) perturbation theory, and is compared to the simulation results. A good agreement between the theory and the simulation results is found particularly at liquid-like densities. For full LJ chains, two different versions of TPT1 are used to calculate the compressibility factor: one is TPT1-WCA and the other is TPT1 with the Percus-Yevick approximation for the radial distribution function of the LJ spheres (TPT1-PY). At low and intermediate densities, TPT1-PY gives better predictions for the compressibility of the LJ chain fluids, whereas at high densities TPT1-WCA is mole reliable.
引用
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页码:544 / 551
页数:8
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