화학공학소재연구정보센터
Korean Journal of Chemical Engineering, Vol.16, No.3, 343-350, May, 1999
The Transport Properties of CO2 and CH4 for Brominated Polysulfone Membrane
E-mail:
The sorption and permeation properties of CO2 and CH4 for synthesized brominated polysulfone, BPSf(bromobisphenol A polysulfone) were measured, and compared with the values for PSf (bisphenol A polysulfone), MPSf (bisphenol A methylated polysulfone) and TMSPSf (bisphenol A trimethylsilylated polysulfone) to investigate the structure-property relationships. Especially, the effect of polarity of substituents on the transport properties was studied. The effect of operating pressure on the permeation properties of polysulfones was examined. The permeation properties far a mixture of CO2 and CH4 were also measured, and these results were compared with those obtained from the experiments of pure gases. The sorbed concentrations and permeability coefficients are well fitted to the dual mode model. The permeability coefficients of each gas of a binary mixture are less than those of pure gases, and the extent of reduction in permeability coefficient is larger far less permeable polymer. The ideal separation factor for four polysulfones increases in the following order : TMSPSf< PSf< BPSf< MPSf. The ideal separation factor for BPSf is higher than other polysulfones having similar permeability coefficients of CO2 with BPSf. It can be explained that the strong polarity of bromine in BPSf increases cohesive energy density of polymer, and reduces the chain packing-inhibiting ability. The ranking of permeability coefficient correlates well with fractional free volume. The variation of d-spacing is not consistent with the permeability coefficient.
  1. Aitken CL, Koros WJ, Paul DR, Macromolecules, 25, 3424 (1992) 
  2. Bae SY, Kim HT, Kumazawa H, Korean J. Chem. Eng., 11(3), 211 (1994)
  3. Bae SY, Lee KH, Yi SC, Kim HT, Kim YH, Kumazawa H, Korean J. Chem. Eng., 15(2), 223 (1998)
  4. Balta-Calleja FJ, Vonk CG, "The Theory of Coherent X-ray Scattering," in "X-ray Scattering of Synthetic Polymers," Elsevier, Amsterdam, The Netherlands, 1 (1989)
  5. Bhide BD, Stern SA, J. Membr. Sci., 81, 209 (1993) 
  6. Bollinger WA, MacLean DL, Narayan RS, Chem. Eng. Prog., Oct., 27 (1982)
  7. Bondi A, J. Phys. Chem., 68, 441 (1964)
  8. Chern RT, Koros WJ, Yuri B, Hopenberg HB, Stanett VT, J. Polym. Sci. B: Polym. Phys., 22, 1061 (1984)
  9. Dhingra SS, Marand E, J. Membr. Sci., 141(1), 45 (1998) 
  10. Ghosal K, Chern RT, Freeman BD, Daly WH, Negulescu II, Macromolecules, 29(12), 4360 (1996) 
  11. Guiver MD, Kutowy O, ApSimon JW, Polymer, 30, 1137 (1989) 
  12. Jacobson SH, Polym. Prepr., 32, 39 (1991)
  13. Kim HJ, Hong SI, Korean J. Chem. Eng., 14(3), 168 (1997)
  14. Kim HJ, Hong SI, Korean J. Chem. Eng., 14(5), 382 (1997)
  15. Kim HJ, Shin WC, Yu BS, Hong I, HWAHAK KONGHAK, 34(5), 564 (1996)
  16. Kim TH, Koros WJ, Husk GR, O'Brien KC, J. Membr. Sci., 37, 45 (1988) 
  17. Kesting RE, Fritsche AK, "Theory of Gas Transport in Membranes," in "Polymeric Gas Separation Membranes," John Wiley & Sons, New York, NY, 19 (1993)
  18. Koros WJ, J. Polym. Sci. B: Polym. Phys., 18, 981 (1980)
  19. Koros WJ, Chern RT, "Separation of Gaseous Mixtures Using Polymer Membranes," in Rousseau, R.W. (Ed.), "Handbook of Separation Process," Wiley-Interscience, New York, NY, 862 (1987)
  20. Koros WJ, Fleming GK, J. Membr. Sci., 83, 1 (1993) 
  21. McHattie JS, Koros WJ, Paul DR, Polymer, 32, 840 (1991) 
  22. McHattie JS, Koros WJ, Paul DR, Polymer, 32, 2618 (1991) 
  23. McHattie JS, Koros WJ, Paul DR, Polymer, 33, 1701 (1992) 
  24. Paul DR, Koros WJ, J. Polym. Sci. B: Polym. Phys., 14, 675 (1976)
  25. Pixton MR, Paul DR, Polymer, 36(16), 3165 (1995) 
  26. Rautenbach R, Welsch K, J. Membr. Sci., 87(1-2), 107 (1994) 
  27. Stern SA, J. Membr. Sci., 94, 1 (1994)
  28. van Krevelen DW, "Volumetric Properties," in "Properties of Polymers," Elsevier, Amsterdam, The Netherlands, 71 (1990)