Comparison of Ionic Equilibria Analysis of ZnSO4-Fe2(SO4)3-Na2SO4-H2SO4-NaOH-H2O System at 25℃ between Pitzer and Vasil'ev Equation

25℃에서 ZnSO4-Fe2(SO4)3-Na2SO4-H2SO4-NaOH-H2O계에 대해 Pitzer식과 Vasil'ev식에 의한 이온평형해석 비교

  • Lee, Man-Seung (Department of Advanced Materials Science & Eng., Mokpo National University) ;
  • Lee, Kyoung-Ju (Department of Advanced Materials Science & Eng., Mokpo National University) ;
  • Nam, Sang-Ho (Department of Chemistry, Mokpo National University)
  • Received : 2003.01.08
  • Accepted : 2003.03.31
  • Published : 2003.04.25

Abstract

To develop an ionic equilibria model applicable to the sulfuric acid leaching solutions of zinc oxide ore, the method of the Pitzer equation and that of the Vasil'ev equation were compared. As the ionic strength of the solution increased to 9 m, the results of ionic equilibria by the Pitzer equation were more accurate than those by Vasil'ev. To simulate the sulfuric acid leaching solutions of zinc oxide ore, the mixed solutions with the various composition of $ZnSO_4-Fe_2(SO_4)_3-Na_2SO_4-H_2SO_4-NaOH-H_2O$ were prepared. The pH values calculated in this study agreed well with those measured at $25^{\circ}C$.

아연산화광 황산침출액에 적용가능한 이온평형모델을 개발하기 위해 Vasil'ev식과 Pitzer식에 의한 해석방법을 비교하였다. 이온강도가 9 m정도로 증가할수록 Vasil'ev식보다는 Pitzer식에 의한 용액의 이온평형결과가 정확하였다. 아연산화광 황산침출액을 모사하기위해 $25^{\circ}C$에서 $ZnSO_4-Fe_2(SO_4)_3-Na_2SO_4-H_2SO_4-NaOH-H_2O$계에 대해 전해질의 농도를 변화시키며 혼합한 용액의 pH 측정값과 본 연구에서 계산한 pH값은 서로 잘 일치하였다.

Keywords

References

  1. Polyhedron v.4 no.1 Ionic equilibria in ferric sulfate-sulfuric acid solutions C.K. Lee;L.L. Tavlarides https://doi.org/10.1016/S0277-5387(00)84220-5
  2. AIChE Journal v.41 no.1 Hydrogen ion activities and species distribution in mixed metal sulfate aqueous systems D. Filippou;G.P. Demopoulos;V.G. Papangelakis https://doi.org/10.1002/aic.690410117
  3. Metall. Mater. Trans. B v.29B W. Wang;D.B. Dreisinger
  4. The Journal of Physical Chemistry v.77 no.19 K.S. Pitzer;G. Mayorga https://doi.org/10.1021/j100638a009
  5. AIChE Journal v.19 no.2 L.A. Bromley https://doi.org/10.1002/aic.690190216
  6. Chemical Engineering Science v.51 no.5 Thermodynamics of aqueous phosphoric acid solution at 25oC C. Jiang https://doi.org/10.1016/0009-2509(95)00284-7
  7. Industrial & Engineering Chemistry Research v.31 no.10 R.S. Juang;J.Y. Su https://doi.org/10.1021/ie00010a020
  8. Journal of Chemical & Engineering Data v.31 no.1 M.A. Hughes https://doi.org/10.1021/je00043a002
  9. J. Korean Inst. Resources Recyc. v.11 M.S. Lee;H.J. Park;C.K. Na
  10. Fluid Phase Equilibria v.148 no.1-2 P. Marliacy;N. Hubert;L. schuffenecker;R. Solimando https://doi.org/10.1016/S0378-3812(98)00202-7
  11. Stability Constants of Metal-Ion Complexes, Part A : Inorganic Ligands E. Hogfeldt
  12. Marine Chemistry v.50 no.1 The speciation of Fe(II) and Fe(III) in natural waters F.J. Millero;W. Yao;J. Aicher https://doi.org/10.1016/0304-4203(95)00024-L
  13. AIChE Journal v.21 no.2 THERMODYNAMICS OF AQUEOUS SOLUTIONS CONTAINING VOLATILE WEAK ELECTROLYTES T.J. Edwards;J. Newman;J.M. Prausnitz https://doi.org/10.1002/aic.690210205