Estimation of the Thermodynamic Properties of Branched Hydrocarbons

Author:

He Hui1,Metghalchi Mohamad1,Keck James C.2

Affiliation:

1. Department of Mechanical, Industrial and Manufacturing Engineering, 360 Huntington Avenue, Northeastern University, Boston, MA 02115

2. Massachusetts Institute of Technology Cambridge, MA 02139

Abstract

A simple model has been developed to estimate the sensible thermodynamic properties such as Gibbs free energy, enthalpy, heat capacity, and entropy of hydrocarbons over a wide range of temperatures with special attention to the branched molecules. The model is based on statistical thermodynamic expressions incorporating translational, rotational and vibrational motions of the atoms. A method to determine the number of degrees of freedom for different motion modes (bending and torsion) has been established. Branched rotational groups, such as CH3 and OH, have been considered. A modification of the characteristic temperatures for different motion mode has been made which improves the agreement with the exact values for simple cases. The properties of branched alkanes up to 2,3,4,-trimthylpentane have been calculated and the results are in good agreement with the experimental data. A relatively small number of parameters are needed in this model to estimate the sensible thermodynamic properties of a wide range of species. The model may also be used to estimate the properties of molecules and their isomers, which have not been measured, and is simple enough to be easily programmed as a subroutine for on-line kinetic calculations. [S0195-0738(00)00902-X]

Publisher

ASME International

Subject

Geochemistry and Petrology,Mechanical Engineering,Energy Engineering and Power Technology,Fuel Technology,Renewable Energy, Sustainability and the Environment

Reference11 articles.

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2. Gordon, S., and McBride, B. J., 1971, “Computer Program for Calculation of Complex Chemical Equilibrium Compositions, Rocket Performance, Incident and Reflected Shocks and Chapman-Jouguet Detonations,” NASA SP-237.

3. Domalski, Eugene S., and Hearing, Elizabeth D., 1994, NIST Estimation of the Chemical Thermodynamic Properties for Organic Compounds at 298.15 K, Version 5.2, U.S. Department of Commerce.

4. Benson, S. W., 1976, Thermochemical Kinetics, Second Edition, Wiley, New York, NY.

5. Thermodynamics Research Center, 1991, The Texas A&M University System, College Station, TRC Thermodynamic Tables—Hydrocarbons, TX77843-3111.

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