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分子动力学研究在液-气相平衡下正十二烷的蒸发和冷凝。

Molecular dynamics study on evaporation and condensation of n-dodecane at liquid-vapor phase equilibria.

机构信息

Key Laboratory for Thermal Science and Power Engineering of Ministry of Education, Department of Engineering Mechanics, Tsinghua University, Beijing 100084, People's Republic of China.

出版信息

J Chem Phys. 2011 Apr 28;134(16):164309. doi: 10.1063/1.3579457.

Abstract

Molecular dynamics simulations are performed to study the evaporation and condensation of n-dodecane (C(12)H(26)) at temperatures in the range 400-600 K. A modified optimized potential for liquid simulation model is applied to take into account the Lennard-Jones, bond bending and torsion potentials with the bond length constrained. The equilibrium liquid-vapor n-dodecane interface thickness is predicted to be ~1.2-2.0 nm. It is shown that the molecular chains lie preferentially parallel to the interface in the liquid-vapor transition region. The predicted evaporation/condensation coefficient decreased from 0.9 to 0.3 when temperature increased from 400 to 600 K. These values can be used for the formulation of boundary conditions in the kinetic modeling of droplet heating and evaporation processes; they are noticeably different from those predicted by the transition state theory. We also present the typical molecular behaviors in the evaporation and condensation processes. The molecular exchange in condensation, typical for simple molecules, has never been observed for n-dodecane molecular chains.

摘要

采用分子动力学模拟方法研究了温度在 400-600 K 范围内正十二烷(C(12)H(26))的蒸发和冷凝过程。采用修正的优化液体模拟模型来考虑 Lennard-Jones、键弯曲和扭转势,同时约束键长。预测平衡态下液-气相正十二烷界面厚度约为 1.2-2.0nm。结果表明,在液-气相转变区域分子链优先平行于界面排列。当温度从 400 K 升高到 600 K 时,蒸发/冷凝系数从 0.9 降低到 0.3。这些值可用于液滴加热和蒸发过程的动力学建模中边界条件的制定,与由过渡态理论预测的值有显著差异。我们还给出了蒸发和冷凝过程中典型的分子行为。在冷凝过程中,对于简单分子来说典型的分子交换从未在正十二烷分子链中观察到。

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