TY  - JOUR
T1  - Densities, Sound Speeds, and Refractive Indices of 1-Propanol + Cyclohexane (or Cyclohexene or Cyclohexanone) Binary Mixtures at Various Temperatures Under Atmospheric Pressure
T2  - Experimental and Modeling Study
AU  - Hernández, Ariel
AU  - Zeqiraj, Arbër Zymer
AU  - Aliaj, Fisnik Rrustem
N1  - Publisher Copyright:
© 2023, The Author(s), under exclusive licence to Springer Science+Business Media, LLC, part of Springer Nature.
PY  - 2023/7
Y1  - 2023/7
N2  - Experimental densities ρ and sound speeds u at (293.15, 298.15, 303.15, 308.15, 313.15, and 318.15) K and refractive indices n D at 298.15 K are reported for the 1-propanol + cyclohexane, 1-propanol + cyclohexene, and 1-propanol + cyclohexanone binary mixtures covering the entire composition ranges and under atmospheric pressure. The excess molar volumes VmE , isentropic compressibility deviations Δ κS , and refractive index deviations Δn D were derived from the experimental data. Redlich–Kister polynomial was the mathematical model of choice to correlate the derived properties of the studied mixtures. In each case, the Redlich–Kister polynomial with an optimal number of parameters provided a statistically significant mathematical representation of the derived properties with standard deviations compared to the estimated expanded uncertainties of corresponding properties. Furthermore, the Perturbed Chain Statistical Associating Fluid Theory (PC-SAFT) was used to correctly model the density of pure fluids and mixtures, whereas the coupling of PC-SAFT with Schaaff’s collision factor theory (SCFT) and Laplace mixing rules proved to be successful approaches for modeling the speed of sound and refractive index, respectively.
AB  - Experimental densities ρ and sound speeds u at (293.15, 298.15, 303.15, 308.15, 313.15, and 318.15) K and refractive indices n D at 298.15 K are reported for the 1-propanol + cyclohexane, 1-propanol + cyclohexene, and 1-propanol + cyclohexanone binary mixtures covering the entire composition ranges and under atmospheric pressure. The excess molar volumes VmE , isentropic compressibility deviations Δ κS , and refractive index deviations Δn D were derived from the experimental data. Redlich–Kister polynomial was the mathematical model of choice to correlate the derived properties of the studied mixtures. In each case, the Redlich–Kister polynomial with an optimal number of parameters provided a statistically significant mathematical representation of the derived properties with standard deviations compared to the estimated expanded uncertainties of corresponding properties. Furthermore, the Perturbed Chain Statistical Associating Fluid Theory (PC-SAFT) was used to correctly model the density of pure fluids and mixtures, whereas the coupling of PC-SAFT with Schaaff’s collision factor theory (SCFT) and Laplace mixing rules proved to be successful approaches for modeling the speed of sound and refractive index, respectively.
KW  - Density
KW  - Liquid mixtures
KW  - PC-SAFT equation of state
KW  - Redlich–Kister polynomial
KW  - Refractive index
KW  - Sound speed
UR  - http://www.scopus.com/inward/record.url?scp=85160013014&partnerID=8YFLogxK
U2  - 10.1007/s10765-023-03211-4
DO  - 10.1007/s10765-023-03211-4
M3  - Article
AN  - SCOPUS:85160013014
SN  - 0195-928X
VL  - 44
JO  - International Journal of Thermophysics
JF  - International Journal of Thermophysics
IS  - 7
M1  - 102
ER  -