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Kinetic studies on sorption of ni(ii) and cd(ii) from chloride solutions using selected acidic cation exchangers

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Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Sorption of nickel(II) and cadmium(II) ions from chloride solutions was tested. Three different strongly acidic cation exchangers, i.e. Lewatit MonoPlus SP 112, Amberlite 200C and Amberlyst 15, were used. Effects of phase contact time, pH and initial concentration of metal ions on equilibrium and kinetics of sorption by batch methods were studied. It was showed that sorption of Ni(II) and Cd(II) could be described by the pseudo-second order equation. Experimental results data were analyzed using the Langmuir and Freundlich isotherms. Sorption of Ni(II) and Cd(II) onto investigated resins followed the Langmuir isotherm.
Słowa kluczowe
Rocznik
Strony
301--312
Opis fizyczny
Bibliogr. 32 poz., rys., tab., wykr.
Twórcy
autor
  • Czestochowa University of Technology, Department of Chemistry, 19 Armii Krajowej Str., 42-200 Czestochowa, Poland
autor
  • Czestochowa University of Technology, Department of Chemistry, 19 Armii Krajowej Str., 42-200 Czestochowa, Poland
Bibliografia
  • 1. BLANCHARD G., MAUNAYE M., MARTIN G.. 1984. Removal of heavy metals from waters by means of natural zeolites. Water Research 18(12): 1501–1507.
  • 2. BULUT E., ÖZACAR M., ŞENGIL İ.A., 2008. Adsorption of malachite green onto bentonite: Equilibrium and kinetic studies and process design. Microporous and Mesoporous Materials 115(3): 234–246.
  • 3. CHAUDHARI L.B., MURTHY Z.V.P., 2010. Separation of Cd and Ni from multicomponent aqueous solutions by nanofiltration and characterization of membrane using IT model. Journal of Hazardous Materials 180(1–3): 309–315.
  • 4. CLEGG J., ANTONIOLI B., BRAY D., GLOE K., GLOE K., JOLLIFFE K., KATAEVA O., MEEHAN G., WENZEL M., 2011. Liquid–liquid extraction studies with 4,4′-biphenylene-spaced bis-β-diketones. Journal of Inclusion Phenomena and Macrocyclic Chemistry 71(3): 319–329.
  • 5. DĄBROWSKI A., HUBICKI Z., PODKOŚCIELNY P., ROBENS E., 2004. Selective removal of the heavy metal ions from waters and industrial wastewaters by ion-exchange method. Chemosphere 56(2): 91–106.
  • 6. DEEPATANA A., VALIX M., 2008. Comparative adsorption isotherms and modeling of nickel and cobalt citrate complexes onto chelating resins. Desalination 218(1–3): 334–342.
  • 7. DEMIRBAS A., PEHLIVAN E., GODE F., ALTUN T., ARSLAN G., 2005. Adsorption of Cu(II), Zn(II), Ni(II), Pb(II), and Cd(II) from aqueous solution on Amberlite IR-120 synthetic resin. Journal of Colloid and Interface Science 282(1): 20–25.
  • 8. DIZGE N., KESKINLER B., BARLAS H., 2009. Sorption of Ni(II) ions from aqueous solution by Lewatit cation-exchange resin. Journal of Hazardous Materials 167(1–3): 915–926.
  • 9. GEGA J., WALKOWIAK W., GAJDA B., 2001. Separation of Co(II) and Ni(II) ions by supported and hybrid liquid membranes. Separation and Purification Technology 22–23(1–3): 551–558.
  • 10. HAMDAOUI O., 2009. Removal of copper(II) from aqueous phase by Purolite C100-MB cation exchange resin in fixed bed columns: Modeling. Journal of Hazardous Materials 161(2–3): 737–746.
  • 11. HO Y.S., MCKAY G., 1999. Pseudo-second order model for sorption processes. Process Biochemistry 34(5): 451-465.
  • 12. HO Y.S., WASE D.A.J., FORSTER C.F., 1996. Kinetic Studies of Competitive Heavy Metal Adsorption by Sphagnum Moss Peat. Environmental Technology 17(1): 71–77.
  • 13. GEGA J., OTREMBSKA P., 2012. Separation of nickel(II) and cadmium(II) with ion-exchange pro-cess.Separation Science and Technology 47: 1345–1349.
  • 14. GEGA J., WALKOWIAK W., OTREMBSKA P., POSPIECH B., KOSARGA E., 2010. Separation of nickel and cadmium from synthetic spent battery leach solutions. XXVth International Symposium on Physico-Chemical Methods of Separation, Ars Separatoria 2010, Toruń 359–362.
  • 15. KILYUSHIK Y., SMOLENSKAYA L., LEIKO A., DRUZHININA T., 2011. Sorption of nickel and cadmium ions from aqueous solutions by a complexing resin based on modified polyamide fiber. Fibre Chemistry 43(3): 239–244.
  • 16. KURNIAWAN T.A., CHAN G.Y.S., LO W.-H., BABEL S., 2006. Physico–chemical treatment techniques for wastewater laden with heavy metals. Chemical Engineering Journal 118(1–2): 83–98.
  • 17. LAZARIDIS N.K., 2003. Sorption Removal of Anions and Cations in Single Batch Systems by Uncalcined and Calcined Mg-Al-CO3 Hydrotalcite. Water, Air, & Soil Pollution 146(1): 127–139.
  • 18. LEWIS A.E., 2010. Review of metal sulphide precipitation. Hydrometallurgy 104(2): 222–234.
  • 19. LIN L.-C., LI J.-K., JUANG R.-S. 2008. Removal of Cu(II) and Ni(II) from aqueous solutions using batch and fixed-bed ion exchange processes. Desalination 225(1–3): 249–259.
  • 20. MARDER L., BERNARDES A.M., ZOPPAS FERREIRA J., 2004. Cadmium electroplating wastewater treatment using a laboratory-scale electrodialysis system. Separation and Purification Technology 37(3): 247–255.
  • 21. PEHLIVAN E., ALTUN T., 2006. The study of various parameters affecting the ion exchange of Cu2+, Zn2+, Ni2+, Cd2+, and Pb2+ from aqueous solution on Dowex 50W synthetic resin. Journal of Hazardous Materials 134(1–3): 149–156.
  • 22. PLAZINSKI W., RUDZINSKI W., PLAZINSKA A., 2009. Theoretical models of sorption kinetics including a surface reaction mechanism: A review. Advances in Colloid and Interface Science 152(1–2): 2–13.
  • 23. POSPIECH B., WALKOWIAK W., 2007. Separation of copper(II), cobalt(II) and nickel(II) from chloride solutions by polymer inclusion membranes. Separation and Purification Technology 57(3): 461–465.
  • 24. PROVAZI K., CAMPOS B.A., ESPINOSA D.C.R., TENÓRIO J.A.S., 2011. Metal separation from mixed types of batteries using selective precipitation and liquid–liquid extraction techniques. Waste Management 31(1): 59–64.
  • 25. QIN J.-J., MAUNG NYUNT W., MAUNG HTUN O., LEE H., 2004. A pilot study for reclamation of a combined rinse from a nickel-plating operation using a dual-membrane UF/RO process. Desalination 161(2): 155–167.
  • 26. RODRIGUES L.E.O.C., MANSUR M.B., 2010. Hydrometallurgical separation of rare earth elements, cobalt and nickel from spent nickel–metal–hydride batteries. Journal of Power Sources 195(11): 3735–3741.
  • 27. RUDNIK E., NIKIEL M., 2007. Hydrometallurgical recovery of cadmium and nickel from spent Ni–Cd batteries. Hydrometallurgy 89(1–2): 61–71.
  • 28. SRIVASTAVA V.C., MALL I.D., MISHRA I.M., 2008. Adsorption of toxic metal ions onto activated carbon: Study of sorption behaviour through characterization and kinetics. Chemical Engineering and Processing: Process Intensification 47(8): 1269–1280.
  • 29. WALKOWIAK W., BARTSCH R., KOZLOWSKI C., GEGA J., CHAREWICZ W., AMIRI-ELIASI B., 2000. Separation and Removal of Metal Ionic Species by Polymer Inclusion Membranes. Journal of Radioanalytical and Nuclear Chemistry 246(3): 643–650.
  • 30. WOŁOWICZ A., HUBICKI Z., 2011. Investigation of macroporous weakly basic anion exchangers applicability in palladium(II) removal from acidic solutions – batch and column studies. Chemical Engineering Journal 174(2–3): 510–521.
  • 31. YUH-SHAN H., 2004. Citation review of Lagergren kinetic rate equation on adsorption reactions. Scientometrics 59(1): 171–177.
  • 32. ZAINOL Z., NICOL M.J., 2009. Comparative study of chelating ion exchange resins for the recovery of nickel and cobalt from laterite leach tailings. Hydrometallurgy 96(4): 283–287.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-11cb25bb-0c2c-44a3-a499-43d1f77e2bf3
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