REMOVAL OF COPPER FROM DILUTED AQUEOUS SOLUTIONS USING AN IMINODIACETIC ACID CHELATING ION-EXCHANGE RESIN IN A FIXED-BED COLUMN

Authors

  • Irina BLEOTU Department of Chemical Engineering, Faculty of Chemistry and Chemical Engineering, Babeş-Bolyai University, Cluj-Napoca, Romania. Corresponding author: dorneanu@chem.ubbcluj.ro.
  • Emilia GÎLCĂ Department of Chemical Engineering, Faculty of Chemistry and Chemical Engineering, Babeş-Bolyai University, Cluj-Napoca, Romania. Corresponding author: dorneanu@chem.ubbcluj.ro.
  • Sorin-Aurel DORNEANU Faculty of Chemistry and Chemical Engineering; Interdisciplinary Research Institute on Bio Nano Sciences; Research Center of Electrochemistry and Nonconventional Materials, Babes-Bolyai University, Cluj-Napoca, Romania. Email: dorneanu@chem.ubbcluj.ro. https://orcid.org/0000-0002-2690-6383
  • Cosmin CĂŢĂNAŞ Department of Chemical Engineering, Faculty of Chemistry and Chemical Engineering, Babeş-Bolyai University, Cluj-Napoca, Romania. Corresponding author: dorneanu@chem.ubbcluj.ro.
  • Petru ILEA Interdisciplinary Research Institute on Bio Nano Sciences, Babeş-Bolyai University, Cluj-Napoca, Romania. Email: pilea@chem.ubbcluj.ro. https://orcid.org/0000-0002-4334-2735

Keywords:

Copper removal, Fixed-bed column, Kinetics, Regeneration

Abstract

In this study, the copper removal was investigated in a fixed-bed column using a iminodiacetic acid chelating ion exchange resin (Purolite S930Plus). The influence of the resin bed height (3-6 cm) over the removal process was evaluated at a flow rate of 5 mL/min and initial Cu(II) concentration of 0.8 mM. The obtained results were analysed by linear regression using the most common sorption kinetic models such as Yoon-Nelson, Adam-Bohart, and Clark. The experimental data were in good agreement with Yoon and Nelson model. Also, scanning electron microscopy (SEM) and energy dispersive X-ray spectroscopy (EDS) were employed to study the morphologies and the composition of the resin surface before and after sorption. The column regeneration studies were performed using 3 N H2SO4 solution. The tested resin presented a good regeneration capacity and can be successfully used to remove copper ions from diluted wastewaters.

References

R.R. Crichton, Biological Inorganic Chemistry. An Introduction, Elsevier, 2008, 241.

M. Mihaly, A.F. Comanescu, E.A. Rogozea, A. Meghea, Molecular Crystals and Liquid Crystals, 2010, 523, 63.

N.N. Maximous, G.F. Nakhla, W.K. Wan, Science, Engineering and Technology, 2010, 40, 599.

R.W. Gaikwad, V.S. Sapkal, R.S. Sapkal, Acta Montan. Slovaca, 2010, 15, 298.

S.A. Dorneanu, B. Ferencz-László, P. Ilea, Studia UBB Chemia, 2008, 1, 97.

G. Tiravanti, D. Petruzelli, R. Passino, Water Science and Technology, 1997, 36(2), 197.

S. Rengaraj, K.H. Yeon, S.H. Moon, Journal of Hazardous Materials, 2001, 87(1), 273.

Q. Yang, Y. Zhong, X. Li, X. Li, K. Luo, X. Wu, H. Chen, Y. Liu, G. Zeng, 2015 in press, doi:10.1016/j.jiec.2015.01.022.

S. Kundu, A. Gupta, Journal of Colloid and Interface Science, 2005, 290, 52.

S. Mossa Hosseini, B. Ataie-Ashtiani, M. Kholghi, Desalination, 2011, 276, 214.

L. Monser, N. Adhoum, Separation and Purification Technology. 2002, 26, 137.

P. Suksabye, P. Thiravetyan, W. Nakbanpote, Journal of Hazardous Materials, 2008, 160, 56.

E.R. Monazam, J. Spenik, L.J. Shadle, Chemical Engineering Journal, 2013, 223, 795.

X. Sun, T. Imai, M. Sekine, T. Higuchi, K. Yamamoto, A. Kanno, S. Nakazono, Journal of Industrial and Engineering Chemistry, 2014, 20, 3623.

M.A. Acheampong, K. Pakshirajan, A.P. Annachhatre, P.N.L. Lens, Journal of Industrial and Engineering Chemistry, 2013, 19, 841.

H.P. Chao, C.C. Chang, A. Nieva, Journal of Industrial and Engineering Chemistry, 2014, 20, 3408.

O. Hamdaoui, Journal of Hazardous Materials, 2009, 161, 737.

E. Gîlcă, A. Măicăneanu, P. Ilea, Water Science & Technology, 2015, 71(11), 1646.

Y.S. Al-Degs, M.A.M. Khraisheh, S.J. Allen, M.N. Ahmad, Journal of Hazardous Materials, 2009, 165, 944

B. Kiran, A. Kaushik, Chemical Engineering Journal, 2008, 144, 391.

M. Mureseanu, N. Cioatera, I. Trandafir, I. Georgescu, F. Fajula, A. Galarneau, Microporous and Mesoporous Materials, 2011, 146, 141.

C. Xiong, Y. Li, G. Wang, L. Fang, S. Zhou, C. Yao, Q. Chen, X. Zheng, D. Qi, Y. Fu, Y. Zhu, Chemical Engineering Journal, 2015, 259, 257.

B. Cheknane, M. Baudu, J. P. Basly, O. Bouras, F. Zermane, Chemical Engineering Journal, 2012, 209, 7.

M.M. Sekhula, J.O. Okonkwo, C.M. Zvinowanda, N.N. Agyei, A.J. Chaudhary, Chemical Engineering and Processing, 2012, 3(2), 1.

A.A. Ahmad, B.H. Hameed, Journal of Hazardous Materials, 2010, 175, 298.

I. Bleotu, S.A. Dorneanu, M. Mureşeanu, E. Gîlcă, P. Ilea, Revista de Chimie. (Bucharest), 2015, 66(6), 797.

www.purolite.com/RelID/619508/isvars/default/purolite%C2%AE_s910.htm.

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Published

2015-09-30

How to Cite

BLEOTU, I. ., GÎLCĂ, E. ., DORNEANU, S.-A. ., CĂŢĂNAŞ, C. ., & ILEA, P. . (2015). REMOVAL OF COPPER FROM DILUTED AQUEOUS SOLUTIONS USING AN IMINODIACETIC ACID CHELATING ION-EXCHANGE RESIN IN A FIXED-BED COLUMN. Studia Universitatis Babeș-Bolyai Chemia, 60(3), 163–172. Retrieved from https://studia.reviste.ubbcluj.ro/index.php/chemia/article/view/8477

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