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Two-phase CFD simulation of the monodyspersed suspension hydraulic behaviour in the tank apparatus from a circulatory pipe Cover

Two-phase CFD simulation of the monodyspersed suspension hydraulic behaviour in the tank apparatus from a circulatory pipe

Open Access
|Apr 2008

References

  1. Isaachsen, I. & Jeremiassen, F. (1925). Ein neues industrielles Kristallisierungs-verfahren, Zeitsch. Ang. Chem., 38, 317 - 322.10.1002/ange.19250381505
  2. Ulrich, J. & Stepanski, M. (1987). Einfluß der Oberflächen-Beschaffenheit auf das Kristallwachstum aus Lösungen, Chem.-Ing.-Tech., 59, 5, 402 - 404.10.1002/cite.330590508
  3. Frances, C., Biscans, B. & Laguerie, C. (1994). Modelling of a continuous fluidized-bed crystallizer Effect of mixing and segregation on crystal size distribution during the crystallization of tetrahydrate sodium perborate, Chem. Engng Sci. 49, 3269 - 3276.10.1016/0009-2509(94)00135-9
  4. Mohameed, H. A. & Ulrich, J. (1996). Influence of the pH-Value on the growth and dissolution rate of potassium chloride, Cryst. Res. Technol., 31, 1, 27 - 31.10.1002/crat.2170310107
  5. Belcu, M. & Turtoi, D. (1996). Simulation of the fluidized-bed crystallizers (I) Influence of parameters, Cryst.Res.Technol., 31, 8, 1015 - 1023.10.1002/crat.2170310809
  6. Omar, W. & Ulrich, J. (1997). Influence of the Fe+2 ions on the dissolution rate of potassium chloride, Cryst.Res.Technol., 32, 6, 789 - 797.10.1002/crat.2170320609
  7. Pulley, C. A. (1962). The Krystal crystallizer, The Ind. Chem., 38, 63 - 66, 127 - 132, 175 - 178.
  8. Matz, G. (1964). Untersuchungsmethoden für die klassifizierende Krystallisation, Wärme, 70, 3, 99 - 107.
  9. Bransom, S. H. (1965). Continuous crystallizer design, Chem.Proc.Eng., 46, 12, 647 - 653.
  10. Shirotsuka, T., Toyokura, K. & Sekiya, Y. (1965). Method for calculating the height of the continuous clasified-bed type crystallizer, Kagaku Kogaku, 29, 698 - 704,.10.1252/kakoronbunshu1953.29.698
  11. Mullin, J. W. & Nývlt, J. (1970). Design of classifying crystallizers, Trans. Instn Chem. Engrs, 48, T7 - T14.
  12. Wójcik, J. (1997). Population balance in a fluidized-bed crystallizer with ideal classification, Inż. Chem. Proc., 18, 3, 411 - 426 (in Polish).
  13. Toyokura, K., Tanaka, H. & Tanahashi, J. (1973). Size distribution of crystals from classified bed type crystallizer, J. Chem. Eng. Jap., 6, 4, 325 - 331.10.1252/jcej.6.325
  14. Kennedy, S. C. & Bretton, R. H. (1966). Axial dispersion of spheras fluidized with liquids, AIChEJ, 12, 1, 24 - 32.10.1002/aic.690120108
  15. Wójcik, J. & Plewik, R. (2007). CFD modelling of a fluidized-bed crystallizer, Inż Chem. Proc. 28, 75 - 83.
  16. Synowiec, P., Kwiecień, J. & Tomanek, G. (2003). Opracowanie metody obliczeniowej odnogi klasyfikującej w krystalizatorach przemysłowych, IChN report 4268, Gliwice.
  17. Messing, T. & Hofmann, G. (1980). Industrielle Kristallisation - Moderne grobtechnische Anlagen und Fallstudien, Chem.-Ing.-Tech. 52, 11, 870 - 874.
  18. Rumford, F. & Bain, J. (1960). The controlled crystallization of sodium chloride, Trans. Instn. Chem. Engrs, 38, 10 - 20.
  19. Jaworski, Z. (2005). Numeryczna mechanika płynów w inżynierii chemicznej i procesowej, A. O.W. EXIT, Warszawa.
  20. Sha, Z. & Palosaari, S. (2000). Mixing and crystallization in suspensions Chem. Eng. Sci., 55, 1797 - 1806.10.1016/S0009-2509(99)00458-3
  21. Bałdyga, J. (2001). Zastosowanie obliczeniowej mechaniki płynów (CFD) w inżynierii chemicznej i procesowej, Inż. Chem. Proc., 22, 3A, 3 - 14.
Language: English
Page range: 22 - 27
Published on: Apr 3, 2008
Published by: West Pomeranian University of Technology, Szczecin
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2008 Roch Plewik, Piotr Synowiec, Janusz Wójcik, published by West Pomeranian University of Technology, Szczecin
This work is licensed under the Creative Commons License.

Volume 10 (2008): Issue 1 (March 2008)