Full-text resources of PSJD and other databases are now available in the new Library of Science.
Visit https://bibliotekanauki.pl

PL EN


Preferences help
enabled [disable] Abstract
Number of results
2009 | 116 | 6 | 1044-1047

Article title

Thermal Conductivity of Square-Well Fluids

Content

Title variants

Languages of publication

EN

Abstracts

EN
The thermal conductivity of a system consisting of square-well particles has been determined by the extension of the Enskog formula of the hard-sphere model to square-well fluid. The approach is the same as applied for the diffusion coefficients and shear viscosity of square-well fluid. The addition of an attractive part in the hard-sphere potential such as square-well potential remains insensitive to influence the thermal conductivity. The results obtained are in a good agreement with the molecular dynamics results.

Keywords

EN

Year

Volume

116

Issue

6

Pages

1044-1047

Physical description

Dates

published
2009-12
received
2009-06-29
(unknown)
2009-12-01

Contributors

author
  • Department of Physics, V.S.S.D. College, Kanpur, India
author
  • Department of Physics, V.S.S.D. College, Kanpur, India

References

  • 1. S. Chapman, T.G. Cowling, The Mathematical Theory of Non-Uniform Gases, Cambridge University Press, Cambridge 1990
  • 2. U. Balucani, M. Zoppi, Dynamics of Liquid State, Clarendon, Oxford 1994
  • 3. J. Bosse, W. Gotze, M. Lucke, Phys. Rev. A 17, 434 (1978)
  • 4. E. Leutheusser, J. Phys. C 15, 2801 (1982)
  • 5. D.J. Evans, Phys. Lett. A 91, 457 (1982)
  • 6. D.M. Heyes, J. Chem. Soc. Faraday Trans. 2 80, 1363 (1984)
  • 7. D.M. Heyes, J. Phys., Condens. Matter 6, 6409 (1994)
  • 8. R.K. Sharma, K. Tankeswar, K.N. Pathak, J. Phys., Condens. Matter 7, 537 (1995)
  • 9. A.E. Nasrabad, R. Laghaei, B.C. Eu, J. Chem. Phys. 124, 084506 (2006)
  • 10. D.M. Heyes, J.G. Powles, Mol. Phys. 99, 1077 (2001)
  • 11. J.P.J. Michels, N.J. Trappeniers, Physica A 107, 158 (1981)
  • 12. A.C. Branka, D.M. Heyes, Phys. Rev. E 69, 021202 (2004)
  • 13. P. Resibois, M. de Leener, Classical Kinetic Theory of Fluids, Wiley, New York 1977, p. 168
  • 14. D.K. Dwivedee, R. Srivastava, K.N. Khanna, Fluid Phase Equilibria 263, 199 (2008)
  • 15. R. Srivastava, A. Tewari, K.N. Khanna, Indian J. Pure Appl. Phys. 47, 568 (2009)
  • 16. N.F. Carnahan, K.E. Starling, J. Chem. Phys. 51, 635 (1969)
  • 17. Y.X. Yu, M.H. Han, G.H. Gao, Phys. Chem. Chem. Phys. 3, 437 (2001)
  • 18. W.D. Monnery, W.Y. Svrcek, A.K. Meherotra, Fluid Phase Equilibria 117, 378 (1996)
  • 19. J.A. Barker, D. Henderson, Mol. Phys. 21, 187 (1971)
  • 20. M. Banaszak, Y.C. Chiew, M. Radsoz, Phys. Rev. E 48, 3760 (1993)
  • 21. A. Gil-Villegas, A. Galindo, P.J. Whitehead, S.J. Mills, G. Jackson, J. Chem. Phys. 106, 4168 (1997)
  • 22. H.C. Longuet-Higgins, J.P. Valleau, Mol. Phys. 1, 284 (1958)
  • 23. H.T. Davis, S.A. Rice, J.V. Sengers, J. Chem. Phys. 35, 2210 (1961)

Document Type

Publication order reference

Identifiers

YADDA identifier

bwmeta1.element.bwnjournal-article-appv116n612kz
JavaScript is turned off in your web browser. Turn it on to take full advantage of this site, then refresh the page.