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Adapting SAFT-γ perturbation theory to site-based molecular dynamics simulation. I. Homogeneous fluids

机译:将SAFT-γ扰动理论应用于基于位置的分子动力学模拟。一,均质流体

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In this work, we aim to develop a version of the Statistical Associating Fluid Theory (SAFT)-γ equation of state (EOS) that is compatible with united-atom force fields, rather than experimental data. We rely on the accuracy of the force fields to provide the relation to experimental data. Although, our objective is a transferable theory of interfacial properties for soft and fused heteronuclear chains, we first clarify the details of the SAFT-γ approach in terms of site-based simulations for homogeneous fluids. We show that a direct comparison of Helmholtz free energy to molecular simulation, in the framework of a third orderWeeks-Chandler-Andersen perturbation theory, leads to an EOS that takes force field parameters as input and reproduces simulation results for Vapor-Liquid Equilibria (VLE) calculations. For example, saturated liquid density and vapor pressure of n-alkanes ranging from methane to dodecane deviate from those of the Transferable Potential for Phase Equilibria (TraPPE) force field by about 0.8% and 4%, respectively. Similar agreement between simulation and theory is obtained for critical properties and second virial coefficient. The EOS also reproduces simulation data of mixtures with about 5% deviation in bubble point pressure. Extension to inhomogeneous systems and united-atom site types beyond those used in description of n-alkanes will be addressed in succeeding papers.
机译:在这项工作中,我们旨在开发一种与联合原子力场兼容的统计关联流体理论(SAFT)-γ状态方程(EOS)的版本,而不是与实验数据兼容。我们依靠力场的准确性来提供与实验数据的关系。尽管我们的目标是针对软链和稠合异核链的界面性质的可转移理论,但我们首先从基于均质流体的现场模拟方面阐明了SAFT-γ方法的细节。我们表明,在三阶Weeks-Chandler-Andersen扰动理论的框架下,直接将亥姆霍兹自由能与分子模拟进行比较,可以得出以力场参数为输入并重现蒸气-液体平衡(VLE)的EOS的EOS。 )计算。例如,从甲烷到十二烷的正构烷烃的饱和液体密度和蒸气压分别偏离相平衡转移势(TraPPE)力场的饱和液体密度和蒸气压分别约0.8%和4%。对于关键特性和第二维里系数,在仿真和理论之间获得了相似的一致性。 EOS还可以复制气泡点压力偏差约为5%的混合物的模拟数据。在随后的论文中将讨论扩展到非均相系统和联合原子位点类型的扩展,这些描述将超出对正构烷烃的描述。

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