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Published on: January 24, 2014
Prediction of global vapor-liquid equilibria for mixtures containing polar and associating components with improved
Jianguo Mi1, Yiping Tang, Chongli Zhong
1Department of Chemical Engineering, The Key Lab of Bioprocess of Beijing, Beijing University of Chemical Technology, Beijing 100029, China.
Abstract:
Our recently improved renormalization group (RG) theory is further reformulated within the context of density functional theory. To improve the theory for polar and associating fluids, an explicit and complete expression of the theory is derived in which the density fluctuation is expanded up to the third-order term instead of the original second-order term. A new predictive equation of state based on the first-order mean spherical approximation statistical associating fluid theory (FMSA-SAFT) and the newly improved RG theory is proposed for systems containing polar and associating fluids. The calculated results for both pure fluids and mixtures are in good agreement with experimental data both inside and outside the critical region. This work demonstrates that the RG theory incorporated with the solution of FMSA is a promising route for accurately describing the global phase behavior of complex fluids and mixtures.
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