TY - JOUR
T1 - Development of simple and transferable molecular models for biodiesel production with the soft-SAFT equation of state
AU - Oliveira, Mariana B.
AU - Freitas, Samuel V.D.
AU - Llovell, Felix
AU - Vega, Lourdes F.
AU - Coutinho, João A.P.
N1 - Publisher Copyright:
© 2014 The Institution of Chemical Engineers. Published by Elsevier B.V. All rights reserved.
PY - 2014/12/1
Y1 - 2014/12/1
N2 - The knowledge of fatty acid esters/biodiesels thermodynamic properties is crucial not only for developing optimal biodiesel production and purification processes, but also for enhancing biodiesels performance in engines. This work is intended to apply a simple but reliable theoretically based sound model, the soft-SAFT EoS, as a tool for the development, design, scale-up, and optimization of biodiesels production and purification processes. A molecular model within the soft-SAFT EoS framework is proposed for the fatty acid esters, and the Density Gradient Theory approach is coupled into soft-SAFT for the description of interfacial properties, while the Free-Volume Theory is used for the calculation of viscosities, in an integrated model. For pressures up to 150 MPa, and in the temperature range 288.15-423.15 K, density, surface tension, viscosity and speed of sound data for fatty acid methyl and ethyl esters, ranging from C8:0 to C24:0, with up to three unsaturated bonds, are described with deviations inferior to 5%. Finally, in order to validate the predictive ability of the model to be applied in the biodiesel groundwork, the high pressure densities and viscosities for 8 biodiesels were predicted with the soft-SAFT EoS, reinforcing the validity of the approach to obtain reliable predictions for engineering purposes.
AB - The knowledge of fatty acid esters/biodiesels thermodynamic properties is crucial not only for developing optimal biodiesel production and purification processes, but also for enhancing biodiesels performance in engines. This work is intended to apply a simple but reliable theoretically based sound model, the soft-SAFT EoS, as a tool for the development, design, scale-up, and optimization of biodiesels production and purification processes. A molecular model within the soft-SAFT EoS framework is proposed for the fatty acid esters, and the Density Gradient Theory approach is coupled into soft-SAFT for the description of interfacial properties, while the Free-Volume Theory is used for the calculation of viscosities, in an integrated model. For pressures up to 150 MPa, and in the temperature range 288.15-423.15 K, density, surface tension, viscosity and speed of sound data for fatty acid methyl and ethyl esters, ranging from C8:0 to C24:0, with up to three unsaturated bonds, are described with deviations inferior to 5%. Finally, in order to validate the predictive ability of the model to be applied in the biodiesel groundwork, the high pressure densities and viscosities for 8 biodiesels were predicted with the soft-SAFT EoS, reinforcing the validity of the approach to obtain reliable predictions for engineering purposes.
KW - Biodiesels
KW - Density gradient theory
KW - Fatty acid esters
KW - Free-volume theory
KW - Soft-SAFT EoS
KW - Thermophysical properties
UR - http://www.scopus.com/inward/record.url?scp=84914670698&partnerID=8YFLogxK
U2 - 10.1016/j.cherd.2014.02.025
DO - 10.1016/j.cherd.2014.02.025
M3 - Article
AN - SCOPUS:84914670698
SN - 0263-8762
VL - 92
SP - 1898
EP - 1911
JO - Chemical Engineering Research and Design
JF - Chemical Engineering Research and Design
IS - 12
ER -