Densities and bubble points of binary mixtures of carbon dioxide and n-heptane and ternary mixtures of n-butane, n-heptane and n-hexadecane

Citation
A. Fenghour et al., Densities and bubble points of binary mixtures of carbon dioxide and n-heptane and ternary mixtures of n-butane, n-heptane and n-hexadecane, FLU PH EQUI, 185(1-2), 2001, pp. 349-358
Citations number
10
Categorie Soggetti
Physical Chemistry/Chemical Physics","Chemical Engineering
Journal title
FLUID PHASE EQUILIBRIA
ISSN journal
03783812 → ACNP
Volume
185
Issue
1-2
Year of publication
2001
Pages
349 - 358
Database
ISI
SICI code
0378-3812(20010730)185:1-2<349:DABPOB>2.0.ZU;2-Y
Abstract
The densities of three mixtures of carbon dioxide and n-heptane and three m ixtures of n-butane, n-heptane and n-hexadecane were measured. The binary m ixtures were studied over the temperature range of 302-459 K and the pressu re range of 3.61-55.48 MPa at the following carbon dioxide mole fractions: 0.2918, 0.3888 and 0.4270. The ternary mixtures were studied over the tempe rature range of 405-469 K and the pressure range of 0.7-24 MPa at the follo wing n-butane mole fractions: 0.0904, 0.1564 and 0.1856 and corresponding n -heptane mole fractions: 0.7358, 0.6825 and 0.6588. The measurements were c arried out in an automated isochoric instrument and their accuracy is estim ated to be better than +/-0.1%. The bubble points of the mixtures were also determined from an analysis of the experimental isochores in the one- and two-phase regions. The new measurements have been used to assess the perfor mance of the Peng-Robinson equation of state and the one-fluid correspondin g states model. In single phase regions, the performance of the one-fluid m odel is found to be superior to that of the Peng-Robinson equation. The lat ter performs well for bubble points provided that optimised interaction par ameters are used. As an interpolation tool, the one fluid model is found to reproduce the ternary mixtures within the experimental uncertainty. (C) 20 01 Elsevier Science B.V. All rights reserved.