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Lennard-Jones Energy Parameter for Pure Fluids from Scaled Particle Theory

机译:基于比例粒子理论的纯流体Lennard-Jones能量参数

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By considering the fact that the surface tension of a real fluid arises from a combination of both repulsive and attractive forces between molecules, a new expression for the interfacial tension has been derived from scaled particle theory (SPT) based on the work of cavity formation and the interaction energy between molecules. At the critical temperature, the interfacial tension between coexisting liquid and vapour phases vanishes and the intermolecular attractive forces must exactly counterbalance the repulsive forces associated with cavity formation. The effective Lennard-Jones energy parameter has been calculated by using a simple equation derived from SPT for a range of pure fluids including noble gases, diatomic and triatomic gases, short and medium length hydrocarbons, aromatic compounds, oxygen containing compounds. The evaluated Lennard-Jones energy parameters and Reiss's SPT theory were used to calculate the surface tension of pure compounds near critical temperature and were compared with the experimental data. The results indicated that the developed SPT in this work calculates the surface tensions much closer to the experimental data compared with those Reiss's SPT theory.
机译:考虑到实际流体的表面张力是由分子之间的排斥力和吸引力共同产生的,因此基于腔体形成和扩散的理论,基于比例粒子理论(SPT)得出了界面张力的新表达式。分子之间的相互作用能。在临界温度下,液相和气相共存的界面张力消失,分子间吸引力必须恰好抵消了与腔体形成有关的排斥力。有效的Lennard-Jones能量参数已通过使用从SPT导出的简单方程式来计算,该方程式适用于一系列纯流体,包括稀有气体,双原子和三原子气体,短和中等长度的烃,芳族化合物,含氧化合物。评估的Lennard-Jones能量参数和Reiss的SPT理论用于计算接近临界温度的纯化合物的表面张力,并与实验数据进行比较。结果表明,与Reiss的SPT理论相比,这项工作中开发的SPT计算出的表面张力与实验数据更为接近。

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