2017
DOI: 10.15446/dyna.v84n203.56364
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Vapor-Liquid equilibria modeling using gray-box neural networks as binary interaction parameters predictor

Abstract: Simulations of vapor-liquid equilibrium (VLE) are widely used given their impact on the scale, design, and extrapolation of different operational units. However, due to a number of factors, it is almost impossible to experimentally study each of the VLE systems. VLE simulations can be developed using representations that are strongly dependent on the nature and interactions of the compounds forming mixtures. A model that helps in predicting these interactions would facilitate simulation processes. A Gray Box N… Show more

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