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Year 2012, Volume: 15 Issue: 2, 103 - 110, 17.05.2012

Abstract

References

  • Bae, H. K. Hur, B. K. (1996). Solubility of Disperse Dyes in Supercritical Carbon Dioxide. J. KIChe 34, 379-382.
  • Clifford, A. Bartle, K. D. (1996). Supercritical Fluid Drying. Textile Technol. Int. 6, 113-117.
  • Cooper, A.I. (2003). Porous Materials and Supercritical Fluids. Adv. Mater. 15, 1049–1059.
  • Kikic, I. Vecchione, F. (2003). Supercritical impregnation of polymers. Curr. Opin. Solid St. M. 7, 399–405.
  • Meng, L. Duan, Y. Y. Li, L. (2004). Correlations for Second and Third Virial Coefficients of Pure Fluids. Fluid Phase Equilib. 226, 109–120.
  • Mohebbi, A. Mohammadikhah, R. (2007). A Simple Equation of State for Calculating the Compressibility Factor of Pure Fluids Based on the Virial EOS, J. Phys. Chem: An Ind. J. 2, 1-6.
  • Nicola, D. G., Giuliani, G. Polonara, F. Stryjek, R. (2005). Second and Third Virial Coefficients for the R41+N2O System. Fluid Phase Equilib. 228, 373–379.
  • Pires, A. P. Mohamed, R. S. Mansoori, G. A. (2001). An Equation of State for Property Prediction of Alcohol– Hydrocarbon and Water–Hydrocarbon Systems. J. Pet. Sci. Eng. 32, 103–114.
  • Pitzer, K. S. Curl, R. F. (1957). The Volumetric and Thermodynamic Properties of Fluids. III. Empirical Equation for the Second Virial Coefficient. J. Am. Chem. Soc. 79, 2369–2376.
  • Prausnitz, J. M. Lichtenthaler, R. N. De Azevedo, E. G. (1999). Molecular Thermodynamics of Fluid-Phase Equilibria, 3rd ed. Prentice Hall PTR, Upper Saddle River, NJ pp.351.
  • Reid, R.C. Prausnitz, J. M. Poling, B. E. (1978). The Properties of Gases & Liquids, 4th Edition, Mc Graw- Hill, New York.
  • Robinson, D. B. Peng, D. Y. (1976). A New Two-Constant Equation of State. Ind. Eng. Chem. Fund, 15, 59–564.
  • Saus, W. GmbH, J. (1975). SFD-Dry Dyeing of Polyester in CO2. Textile Technol. Int. 5, 145-150.
  • Teja, A.S. Eckert, C.A. (2000). Commentary on Supercritical Fluids: Research and Applications. Ind. Eng. Chem. Res. 39, 4442–4444.
  • Tsonopoulos, G. (1975). Second Virial Coefficients of Polar Haloalkanes. J. AICHE 21, 827–836.
  • Vetere, A. (1999). An Improved Method to Predict the Second Virial Coefficients of Pure Compounds. Fluid Phase Equilib. 164, 49–59.

Solubility prediction of some disperse Azo dyes in supercritical carbon dioxide using equation of states (EOSs)

Year 2012, Volume: 15 Issue: 2, 103 - 110, 17.05.2012

Abstract

The solubility of three disperse azo dyes, 4-(N,N-dimethylamino)-4’-itroazobenzene (D1), 4-(N,N-diethylamino)-4’-nitroazobenzene (D2) and Parared (D3) in supercritical carbon dioxide have been correlated with two equation of state. All critical properties have been estimated with a group contribution method (GCM). As far we know, solubility data for these dyes never has been correlated using an equation of state (EOS). Therefore, it is worthwhile to model the solubility of these disperse Azo dyes. In this work, the aim is correlating reported data with a new EOS and comparing obtained results with the results of Peng-Robinson EOS (PR-EOS) together with two adjustable parameter van der Waals mixing and combining rules.  The calculated results showed that new EOS is more accurate than PR-EOS. It can be employed to speed up the process of SCF applications in industry.

References

  • Bae, H. K. Hur, B. K. (1996). Solubility of Disperse Dyes in Supercritical Carbon Dioxide. J. KIChe 34, 379-382.
  • Clifford, A. Bartle, K. D. (1996). Supercritical Fluid Drying. Textile Technol. Int. 6, 113-117.
  • Cooper, A.I. (2003). Porous Materials and Supercritical Fluids. Adv. Mater. 15, 1049–1059.
  • Kikic, I. Vecchione, F. (2003). Supercritical impregnation of polymers. Curr. Opin. Solid St. M. 7, 399–405.
  • Meng, L. Duan, Y. Y. Li, L. (2004). Correlations for Second and Third Virial Coefficients of Pure Fluids. Fluid Phase Equilib. 226, 109–120.
  • Mohebbi, A. Mohammadikhah, R. (2007). A Simple Equation of State for Calculating the Compressibility Factor of Pure Fluids Based on the Virial EOS, J. Phys. Chem: An Ind. J. 2, 1-6.
  • Nicola, D. G., Giuliani, G. Polonara, F. Stryjek, R. (2005). Second and Third Virial Coefficients for the R41+N2O System. Fluid Phase Equilib. 228, 373–379.
  • Pires, A. P. Mohamed, R. S. Mansoori, G. A. (2001). An Equation of State for Property Prediction of Alcohol– Hydrocarbon and Water–Hydrocarbon Systems. J. Pet. Sci. Eng. 32, 103–114.
  • Pitzer, K. S. Curl, R. F. (1957). The Volumetric and Thermodynamic Properties of Fluids. III. Empirical Equation for the Second Virial Coefficient. J. Am. Chem. Soc. 79, 2369–2376.
  • Prausnitz, J. M. Lichtenthaler, R. N. De Azevedo, E. G. (1999). Molecular Thermodynamics of Fluid-Phase Equilibria, 3rd ed. Prentice Hall PTR, Upper Saddle River, NJ pp.351.
  • Reid, R.C. Prausnitz, J. M. Poling, B. E. (1978). The Properties of Gases & Liquids, 4th Edition, Mc Graw- Hill, New York.
  • Robinson, D. B. Peng, D. Y. (1976). A New Two-Constant Equation of State. Ind. Eng. Chem. Fund, 15, 59–564.
  • Saus, W. GmbH, J. (1975). SFD-Dry Dyeing of Polyester in CO2. Textile Technol. Int. 5, 145-150.
  • Teja, A.S. Eckert, C.A. (2000). Commentary on Supercritical Fluids: Research and Applications. Ind. Eng. Chem. Res. 39, 4442–4444.
  • Tsonopoulos, G. (1975). Second Virial Coefficients of Polar Haloalkanes. J. AICHE 21, 827–836.
  • Vetere, A. (1999). An Improved Method to Predict the Second Virial Coefficients of Pure Compounds. Fluid Phase Equilib. 164, 49–59.
There are 16 citations in total.

Details

Primary Language English
Subjects Engineering
Journal Section Regular Original Research Article
Authors

Shahryar Jafari Nejad

Milad Asgarpour Khansary This is me

Farshad Amiri This is me

Publication Date May 17, 2012
Published in Issue Year 2012 Volume: 15 Issue: 2

Cite

APA Jafari Nejad, S., Asgarpour Khansary, M., & Amiri, F. (2012). Solubility prediction of some disperse Azo dyes in supercritical carbon dioxide using equation of states (EOSs). International Journal of Thermodynamics, 15(2), 103-110.
AMA Jafari Nejad S, Asgarpour Khansary M, Amiri F. Solubility prediction of some disperse Azo dyes in supercritical carbon dioxide using equation of states (EOSs). International Journal of Thermodynamics. May 2012;15(2):103-110.
Chicago Jafari Nejad, Shahryar, Milad Asgarpour Khansary, and Farshad Amiri. “Solubility Prediction of Some Disperse Azo Dyes in Supercritical Carbon Dioxide Using Equation of States (EOSs)”. International Journal of Thermodynamics 15, no. 2 (May 2012): 103-10.
EndNote Jafari Nejad S, Asgarpour Khansary M, Amiri F (May 1, 2012) Solubility prediction of some disperse Azo dyes in supercritical carbon dioxide using equation of states (EOSs). International Journal of Thermodynamics 15 2 103–110.
IEEE S. Jafari Nejad, M. Asgarpour Khansary, and F. Amiri, “Solubility prediction of some disperse Azo dyes in supercritical carbon dioxide using equation of states (EOSs)”, International Journal of Thermodynamics, vol. 15, no. 2, pp. 103–110, 2012.
ISNAD Jafari Nejad, Shahryar et al. “Solubility Prediction of Some Disperse Azo Dyes in Supercritical Carbon Dioxide Using Equation of States (EOSs)”. International Journal of Thermodynamics 15/2 (May 2012), 103-110.
JAMA Jafari Nejad S, Asgarpour Khansary M, Amiri F. Solubility prediction of some disperse Azo dyes in supercritical carbon dioxide using equation of states (EOSs). International Journal of Thermodynamics. 2012;15:103–110.
MLA Jafari Nejad, Shahryar et al. “Solubility Prediction of Some Disperse Azo Dyes in Supercritical Carbon Dioxide Using Equation of States (EOSs)”. International Journal of Thermodynamics, vol. 15, no. 2, 2012, pp. 103-10.
Vancouver Jafari Nejad S, Asgarpour Khansary M, Amiri F. Solubility prediction of some disperse Azo dyes in supercritical carbon dioxide using equation of states (EOSs). International Journal of Thermodynamics. 2012;15(2):103-10.