Export citation

Export citation

Choose format for download:

Download Citation
  • Access by Xinjiang University

Practical expressions for the internal energy and pressure of Yukawa fluids

Sergey A. Khrapak* and Hubertus M. Thomas

  • Forschungsgruppe Komplexe Plasmen, Deutsches Zentrum für Luft und Raumfahrt, Oberpfaffenhofen, Germany

  • *Also at Joint Institute for High Temperatures, Russian Academy of Sciences, Moscow, Russia.

Phys. Rev. E 91, 023108 – Published 25 February, 2015

DOI: https://doi.org/10.1103/PhysRevE.91.023108

Abstract

Simple practical expressions that allow estimation of thermodynamic properties of Yukawa fluids in a wide range of coupling, up to the fluid-solid phase transition, are presented. These expressions demonstrate excellent agreement with the available results from numerical simulations. The approach provides simple and accurate tools to estimate thermodynamic properties of Yukawa fluids and related systems in a broad range of parameters.

Article Text

References (32)

  1. A. Ivlev, H. Löwen, G. Morfill, and C. P. Royall, Complex Plasmas and Colloidal Dispersions: Particle-resolved Studies of Classical Liquids and Solids (World Scientific, Singapore, 2012).
  2. Complex and Dusty Plasmas: From Laboratory to Space, edited by V. E. Fortov and G. E. Morfill (CRC Press, Boca Raton, 2010).
  3. V. E. Fortov, A. G. Khrapak, S. A. Khrapak, V. I. Molotkov, and O. F. Petrov, Phys. Usp. 47, 447 (2004); Fortov, A. V. Ivlev, S. A. Khrapak, A. G. Khrapak, and G. E. Morfill, Phys. Rep. 421, 1 (2005).
  4. S. A. Khrapak, B. A. Klumov, and G. E. Morfill, Phys. Rev. Lett. 100, 225003 (2008).
  5. S. Khrapak and G. Morfill, Contrib. Plasma Phys. 49, 148 (2009).
  6. G. E. Morfill, A. V. Ivlev, and H. M. Thomas, Phys. Plasmas 19, 055402 (2012).
  7. M. O. Robbins, K. Kremer, and G. S. Grest, J. Chem. Phys. 88, 3286 (1988).
  8. E. J. Meijer and D. Frenkel, J. Chem. Phys. 94, 2269 (1991).
  9. S. Hamaguchi, R. T. Farouki, and D. H. E. Dubin, Phys. Rev. E 56, 4671 (1997).
  10. J. M. Caillol and D. Gilles, J. Stat. Phys. 100, 933 (2000).
  11. C. F. Tejero, J. F. Lutsko, J. L. Colot, and M. Baus, Phys. Rev. A 46, 3373 (1992).
  12. G. J. Kalman, M. Rosenberg, and H. DeWitt, J. Phys. IV France 10, 403 (2000).
  13. G. Faussurier, Phys. Rev. E 69, 066402 (2004).
  14. P. Tolias, S. Ratynskaia, and U. de Angelis, Phys. Rev. E 90, 053101 (2014).
  15. H. Totsuji, J. Phys. A: Math. Gen. 39, 4565 (2006).
  16. H. Totsuji, Phys. Plasmas 15, 072111 (2008).
  17. O. S. Vaulina, X. G. Koss, Yu. V. Khrustalyov, O. F. Petrov, and V. E. Fortov, Phys. Rev. E 82, 056411 (2010).
  18. S. A. Khrapak, A. G. Khrapak, A. V. Ivlev, and G. E. Morfill, Phys. Rev. E 89, 023102 (2014).
  19. S. A. Khrapak, A. G. Khrapak, A. V. Ivlev, and H. M. Thomas, Phys. Plasmas 21, 123705 (2014).
  20. Y. Rosenfeld and P. Tarazona, Mol. Phys. 95, 141 (1998).
  21. Y. Rosenfeld, Phys. Rev. E 62, 7524 (2000).
  22. R. T. Farouki and S. Hamaguchi, J. Chem. Phys. 101, 9885 (1994).
  23. G. S. Stringfellow, H. E. DeWitt, and W. L. Slattery, Phys. Rev. A 41, 1105 (1990).
  24. D. H. E. Dubin and T. M. O'Neil, Rev. Mod. Phys. 71, 87 (1999).
  25. S. A. Khrapak and A. G. Khrapak, Phys. Plasmas 21, 104505 (2014).
  26. Y. Rosenfeld, J. Chem. Phys. 64, 1248 (1976); Mol. Phys. 32, 963 (1976).
  27. S. A. Khrapak and G. E. Morfill, Phys. Rev. Lett. 103, 255003 (2009).
  28. S. A. Khrapak, M. Chaudhuri, and G. E. Morfill, J. Chem. Phys. 134, 241101 (2011).
  29. S. A. Khrapak and F. Saija, Mol. Phys. 109, 2417 (2011).
  30. O. S. Vaulina and S. A. Khrapak, JETP 90, 287 (2000).
  31. O. Vaulina, S. Khrapak, and G. Morfill, Phys. Rev. E 66, 016404 (2002).
  32. S. Hamaguchi and R. T. Farouki, J. Chem. Phys. 101, 9876 (1994).

Sign In to Your Journals Account

Filter

Filter

Article Lookup

Enter a citation