Title of article
Molecular dynamics simulations of self-diffusion coefficient and thermal conductivity of methane at low and moderate densities
Author/Authors
Liang، نويسنده , , Zhi-Ren Tsai، نويسنده , , Hai-Lung، نويسنده ,
Issue Information
روزنامه با شماره پیاپی سال 2010
Pages
6
From page
40
To page
45
Abstract
This article demonstrates a highly accurate molecular dynamics (MD) simulation of thermal conductivity of methane using an ab initio intermolecular potential. The quantum effects of the vibrational contribution to thermal conductivity are more efficiently accounted for in the present MD model by an analytical correction term as compared to by the Monte Carlo method. The average deviations between the calculated thermal conductivity and the experimental data are 0.92% for dilute methane and 1.29% for methane at moderate densities, as compared to approximately 20% or more in existing MD calculations. The results demonstrate the importance of considering vibrational contribution to the thermal conductivity which is mainly through the self-diffusion process.
Keywords
Methane , Molecular dynamics , transport coefficients , Vibration
Journal title
Fluid Phase Equilibria
Serial Year
2010
Journal title
Fluid Phase Equilibria
Record number
1988061
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