A study of a nonprimitive model for electrolyte solutions based on perturbation theory |
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Authors: | Wei Cong Yigui Li Jiufang Lu |
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Affiliation: | (1) Department of Chemical Engineering, Tsinghua University, 100084 Beijing, P. R. China |
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Abstract: | The equation for the Helmholtz free energy for systems of small anisotropic molecules and ions is deduced by substituting the complete expression for various potential energies (including repulsive, dispersive, electrostatic, and induced energies) into the perturbation expansion. The equation is applied to pure water. The relative dielectric constant is set at unity. Based on the equal chemical potentials of equilibrated vapor and liquid phases, the molecular parameters of water are regressed from the densities of saturated vapor in the temperature range of 0 to 370°C. The ARD of regression is 1.16%. These parameters are used to predict the heat of vaporization and densities of saturated vapor and liquid phases of water in the same temperature range. The ARDs of prediction are 4.5% and 9.8%, respectively. The equation is used to correlate the osmotic coefficients of twelve 1:1 electrolyte solutions. The relative dielectric constant is set at unity. The parameters (Soft-sphere diameter and dispersive constant) of seven ions (Na+, K+, Rb+, Cs+, Cl–, Br–, and I–) are obtained. The total average absolute deviation between calculated and experimental values of the osmotic coefficient is 0.041. The parameters of ions can keep constant in different systems. |
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Keywords: | Perturbation theory nonprimitive model osmotic coefficient electrolyte |
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