International Journal of Thermophysics

, Volume 8, Issue 6, pp 641–647 | Cite as

Viscosity of liquid toluene in the temperature range 25–75°C

  • F. A. Gonçalves
  • K. Hamano
  • J. V. Sengers
  • J. Kestin
Article

Abstract

New accurate experimental data are presented for the viscosity of liquid toluene. The viscosity was measured relative to the viscosity of liquid water with the aid of an Ubbelohde capillary viscometer. The data cover a temperature range from approximately 25 to 75°C and are represented with high precision by an Arrhenius equation

Key words

Arrhenius equation capillary-flow viscometry toluene Ubbelohde viscometer viscosity 

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References

  1. 1.
    C. A. Nieto de Castro, S. F. Y. Li, A. Nagashima, R. D. Trengrove, and W. A. Wakeham, J. Phys. Chem. Ref. Data. 15:1073 (1986).Google Scholar
  2. 2.
    V. M. Shulga, F. G. Eldarov, Yu. A. Atanov, and A. A. Kuyumchev, Int. J. Thermophys. 7:1147 (1986).Google Scholar
  3. 3.
    A. H. Krall, J. V. Sengers, and J. Kestin, to be published.Google Scholar
  4. 4.
    L. Ubbelohde, Ind. Eng. Chem. Anal. Ed. 9:85 (1937).Google Scholar
  5. 5.
    F. A. Gonçalves, Problems in the Viscometry of Liquids, Ph.D. thesis (Classical University of Lisbon, Lisbon, 1977).Google Scholar
  6. 6.
    F. A. Gonçalves, J. Kestin and J. V. Sengers, to be published.Google Scholar
  7. 7.
    J. F. Swindells, R. Ullman, and H. Mark, in Techniques of Organic Chemistry, Vol. I, part 1, A. Weissberger, ed. (Interscience, New York, 1949), p. 609.Google Scholar
  8. 8.
    R. C. Hardy, NBS Viscometer Calibrating Liquids and Capillary Tube Viscometers, NBS Monograph 55 (U.S. Government Printing Office, Washington, D.C., 1962).Google Scholar
  9. 9.
    J. R. Van Wazer, J. W. Lyong, K. Y. Kim, and R. E. Colwell, Viscosity and Flow Measurement (Wiley, New York, 1963).Google Scholar
  10. 10.
    J. V. Sengers and J. T. R. Watson, J. Phys. Chem. Ref. Data 15:1291 (1986).Google Scholar
  11. 11.
    J. Kestin and J. V. Sengers, J. Phys. Chem. Ref. Data 15:305 (1986).Google Scholar
  12. 12.
    J. Kestin, J. V. Sengers, B. Kamgar-Parsi, and J. M. H. Levelt Sengers, J. Phys. Chem. Ref. Data 13:175 (1984).Google Scholar
  13. 13.
    H. Kashiwagi, T. Hashimoto, Y. Tanaka, H. Kubota, and T. Makita, Int. J. Thermophys. 3:201 (1982).Google Scholar
  14. 14.
    J. T. R. Watson, R. S. Basu, and J. V. Sengers, J. Phys. Chem. Ref. Data 9:1255 (1980).Google Scholar
  15. 15.
    J. Kendall and K. P. Monroe, J. Am. Chem. Soc. 39:1787 (1917).Google Scholar
  16. 16.
    J. R. Lewis, J. Am. Chem. Soc. 47:626 (1925).Google Scholar
  17. 17.
    J. Timmermans, Physico-Chemical Constants of Pure Organic Compounds (Elsevier, Amsterdam, 1950), Vol. I, p. 152.Google Scholar
  18. 18.
    L. W. Hammond, K. S. Howard, and R. A. McAllister, J. Phys. Chem. 62:637 (1958).Google Scholar
  19. 19.
    A. Riddick and W. B. Bunger, Organic Solvents (Wiley, New York, 1970), Vol. 2.Google Scholar
  20. 20.
    A. S. Teja and P. Rice, Chem. Eng. Sci. 36:7 (1981).Google Scholar
  21. 21.
    J. Nath and B. Narain, J. Chem. Eng. Data 27:283 (1982).Google Scholar
  22. 22.
    H. Kashiwagi and T. Makita, Int. J. Thermophys. 3:289 (1982).Google Scholar
  23. 23.
    R. Singh and C. P. Sinka, J. Chem. Eng. Data 29:132 (1984).Google Scholar
  24. 24.
    H. Bauer and G. Meerlender, Rheol. Acta 23:514 (1984).Google Scholar
  25. 25.
    J. H. Dymond and J. Robertson, Int. J. Thermophys. 6:21 (1985).Google Scholar

Copyright information

© Plenum Publishing Corporation 1987

Authors and Affiliations

  • F. A. Gonçalves
    • 1
  • K. Hamano
    • 1
  • J. V. Sengers
    • 1
  • J. Kestin
    • 1
    • 2
  1. 1.Institute for Physical Science and TechnologyUniversity of MarylandCollege ParkUSA
  2. 2.Division of EngineeringBrown UniversityProvidenceUSA

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