Published December 2015 | Version v1
Journal article

Viscosity of heavy n-alkanes and diffusion of gases therein based on molecular dynamics simulations and empirical correlations

  • 1. National Center for Scientific Research "Demokritos", Institute of Nanoscience and Nanotechnology, Molecular Thermodynamics and Modelling of Materials Laboratory, GR-153 10 Aghia Paraskevi Attikis (Greece)
  • 2. Erlangen Graduate School in Advanced Optical Technologies (SAOT), University of Erlangen-Nuremberg, Paul-Gordan-Straße 6, D-91052 Erlangen (Germany)
  • 3. Department of Chemical and Biological Engineering, Institute of Engineering Thermodynamics, University of Erlangen-Nuremberg, Am Weichselgarten 8, D-91058 Erlangen (Germany)
  • 4. Shell Global Solutions International B.V., Grasweg 31, 1031 HW Amsterdam (Netherlands)
  • 5. Texas A&M University at Qatar, Chemical Engineering Program, Education City, PO Box 23874, Doha (Qatar)

Description

Highlights: • Molecular dynamics simulations to predict viscosity of heavy n-alkanes. • Molecular dynamics simulations to predict diffusivity of gases in heavy n-alkanes. • Empirical correlation for the diffusivity of gases in heavy n-alkanes. - Abstract: The viscosity of pure n-alkanes and n-alkane mixtures was studied by molecular dynamics (MD) simulations using the Green–Kubo method. n-Alkane molecules were modeled based on the Transferable Potential for Phase Equilibria (TraPPE) united atom force field. MD simulations at constant number of molecules or particles, volume and temperature (NVT) were performed for n-C8 up to n-C96 at different temperatures as well as for binary and six-component n-alkane mixtures which are considered as prototypes for the hydrocarbon wax produced during the Gas-To-Liquid (GTL) Fischer–Tropsch process. For the pure n-alkanes, good agreement between our simulated viscosities and existing experimental data was observed. In the case of the n-alkane mixtures, the composition dependence of viscosity was examined. The simulated viscosity results were compared with literature empirical correlations. Moreover, a new macroscopic empirical correlation for the calculation of self-diffusion coefficients of hydrogen, carbon monoxide, and water in n-alkanes and mixtures of n-alkanes was developed by combining viscosity and self-diffusion coefficient values in n-alkanes. The correlation was compared with the simulation data and an average absolute deviation (AAD) of 11.3% for pure n-alkanes and 14.3% for n-alkane mixtures was obtained.

Availability note (English)

Available from http://dx.doi.org/10.1016/j.jct.2015.07.026

Additional details

Identifiers

DOI
10.1016/j.jct.2015.07.026;
PII
S0021-9614(15)00250-5;

Publishing Information

Journal Title
Journal of Chemical Thermodynamics
Journal Volume
91
Journal Page Range
p. 101-107
ISSN
0021-9614
CODEN
JCTDAF

Optional Information

Copyright
Copyright (c) 2015 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.