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Study of chalcopyrite flotation in the presence of illite using a design of experiments approach

Published online by Cambridge University Press:  16 December 2021

Hasan Ali Taner
Affiliation:
Mining Engineering Department, Konya Technical University, Konya, Turkey
Vildan Onen*
Affiliation:
Mining Engineering Department, Konya Technical University, Konya, Turkey
*

Abstract

The interaction between chalcopyrite and illite particles was analysed using ζ-potential measurements and flotation tests. Statistically designed tests were used to examine the factors controlling flotation (frother concentration, dispersant concentration, froth height, airflow rate and amount of clay). Furthermore, the significance levels of the impacts of these factors on responses (chalcopyrite grade/recovery, pyrite grade/recovery, dynamic froth stability and mean bubble diameter) were determined. Chalcopyrite and pyrite ζ-potentials were measured in the presence of illite. The addition of 15% illite to the chalcopyrite, especially between pH 11 and 12, shifted the ζ-potential values closer to that of pure illite, indicating complete surface coating of chalcopyrite with illite. In the flotation experiments, better results were obtained in terms of chalcopyrite grade at a low airflow rate and a high froth height. With increasing froth height there was a decline in the gangue mineral recovery as the residence time of the froth increased. The most significant factor increasing pyrite recovery was the amount of clay. Although illite is considered to be the least problematic clay mineral for flotation, as reported in the literature, an illite content of as low as 5% in the ore decreased chalcopyrite grade by 3.83%. While K and Na contents of 4% were detected after flotation without the addition of illite, their abundance increased to 5.7% after the addition of illite.

Type
Article
Copyright
Copyright © The Author(s), 2021. Published by Cambridge University Press on behalf of The Mineralogical Society of Great Britain and Ireland

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Footnotes

Associate Editor: George E. Christidis

References

Arnold, B.J. & Aplan, F.F. (1986) The effect of clay slimes on coal flotation, part II: the role of water quality. International Journal of Mineral Processing, 17, 243260.10.1016/0301-7516(86)90059-1CrossRefGoogle Scholar
Aslan, A. (1996) Subvolkanik kompleks polimetalik sulfurlu cevherlerde birincil slam ve kilin ozellikleri ve flotasyon secimliligine etkileri. Master's thesis. Hacettepe University Institute of Science and Technology, Ankara, Turkey, 102 pp.Google Scholar
Barbian, N., Ventura-Medina, E. & Cilliers, J.J. (2003) Dynamic froth stability in froth flotation. Minerals Engineering, 16, 11111116.10.1016/j.mineng.2003.06.010CrossRefGoogle Scholar
Barbian, N., Hadler, K., Ventura-Medina, E. & Cilliers, J.J. (2005) The froth stability column: linking froth stability and flotation performance. Minerals Engineering, 18, 317324.10.1016/j.mineng.2004.06.010CrossRefGoogle Scholar
Bikerman, J. (1973) Foams. Pp. 231–245 in: Applied Physics and Engineering, Vol. 10. Springer-Verlag, Berlin, Germany.Google Scholar
Chen, X. & Peng, Y. (2018) Managing clay minerals in froth flotation – a critical review. Mineral Processing and Extractive Metallurgy Review, 39, 289307.10.1080/08827508.2018.1433175CrossRefGoogle Scholar
Cilek, E.C. & Karaca, S. (2015) Effect of nanoparticles on froth stability and bubble size distribution in flotation. International Journal of Mineral Processing, 138, 614.10.1016/j.minpro.2015.03.004CrossRefGoogle Scholar
Cilek, E.C. & Umucu, Y. (2001) A statistical model for gangue entrainment into froths in flotation of sulphide ores. Minerals Engineering, 14, 10551066.CrossRefGoogle Scholar
Cilek, E.C. & Uysal, K. (2018) Froth stabilisation using nanoparticles in mineral flotation. Physicochemical Problems of Mineral Processing, 54, 878889.Google Scholar
Cilek, E.C., Akcil, A. & Ozgen, S. (2009) Ultrasonik dalganın ince boyutlu tanelerin flotasyonu uzerine etkisi ve ultrasonik dalga uygulanan kolon ve mekanik flotasyonun kopuk ve pulp bolgelerinin modellenmesi. TUBİTAK Projesi, Isparta, Turkey, 109 pp.Google Scholar
Edwards, C., Kipkie, W. & Agar, G. (1980) The effect of slime coatings of the serpentine minerals, chrysotile and lizardite, on pentlandite flotation. International Journal of Mineral Processing, 7, 3342.10.1016/0301-7516(80)90035-6CrossRefGoogle Scholar
Farrokhpay, S. (2011) The significance of froth stability in mineral flotation – a review. Advances in Colloid and Interface Science, 166, 17.CrossRefGoogle ScholarPubMed
Farrokhpay, S. & Ndlovu, B. (2013) Effect of phyllosilicate minerals on the rheology, colloidal and flotation behaviour of chalcopyrite mineral. Presented at: Chemeca: Australasian Conference on Chemical Engineering, 29 September–2 October 2013, Brisbane, Australia.Google Scholar
Forbes, E., Davey, K.J. & Smith, L. (2014) Decoupling rheology and slime coatings effect on the natural floatability of chalcopyrite in a clay-rich flotation pulp. Minerals Engineering, 56, 136144.CrossRefGoogle Scholar
Guan, F., Zhong, H., Liu, G., Zha, S. & Xia, L. (2009) Flotation of aluminosilicate minerals using alkylguanidine collectors. Transactions of Nonferrous Metals Society of China, 19, 228234.CrossRefGoogle Scholar
Gundogdu, M.N. (1982) Neojen yaslı Bigadic sedimanter baseninin jeolojik, mineralojik ve jeokimyasal incelenmesi. Doctoral thesis. Hacettepe University Institute of Science and Technology, Ankara, Turkey, 386 pp.Google Scholar
Gundogdu, M.N. & Yılmaz, O. (1984) Kil mineralojisi yontemleri. Pp. 319–330 in: I. Ulusal Kil Sempozyumu Bildiriler Kitabı. Çukurova University, Adana, Turkey.Google Scholar
Kurniawan, A.U., Ozdemir, O., Nguyen, A.V., Ofori, P. & Firth, B. (2011) Flotation of coal particles in MgCl2, NaCl, and NaClO3 solutions in the absence and presence of Dowfroth 250. International Journal of Mineral Processing, 98, 137144.CrossRefGoogle Scholar
Little, L., Wiese, J., Becker, M., Mainza, A. & Ross, V. (2016) Investigating the effects of particle shape on chromite entrainment at a platinum concentrator. Minerals Engineering, 96–97, 4652.CrossRefGoogle Scholar
Liu, D. & Peng, Y. (2014) Reducing the entrainment of clay minerals in flotation using tap and saline water. Powder Technology, 253, 216222.CrossRefGoogle Scholar
Ndlovu, B., Farrokhpay, S. & Bradshaw, D. (2013) The effect of phyllosilicate minerals on mineral processing industry. International Journal of Mineral Processing, 125, 149156.CrossRefGoogle Scholar
Ndlovu, B., Forbes, E., Farrokhpay, S., Becker, M., Bradshaw, D. & Deglon, D. (2014) A preliminary rheological classification of phyllosilicate group minerals. Minerals Engineering, 55, 190200.CrossRefGoogle Scholar
Oats, W.J., Ozdemir, O. & Nguyen, A.V. (2010) Effect of mechanical and chemical clay removals by hydro cyclone and dispersants on coal flotation. Minerals Engineering, 23, 413419.CrossRefGoogle Scholar
Patra, P., Bhambhani, T., Nagaraj, D.R. & Somasundaran, P. (2012) Impact of pulp rheological behaviour on selective separation of Ni minerals from fibrous serpentine ores. Colloids Surfaces A: Physicochemical Engineering Aspects, 411, 2426.CrossRefGoogle Scholar
Peng, Y. & Zhao, S. (2011) The effect of surface oxidation of copper sulfide minerals on clay slime coating in flotation. Minerals Engineering, 24, 16871693.CrossRefGoogle Scholar
Ramirez, A., Rojas, A., Gutierrez, L. & Laskowski, J.S. (2018) Sodium hexametaphosphate and sodium silicate as dispersants to reduce the negative effect of kaolinite on the flotation of chalcopyrite in seawater. Minerals Engineering, 125, 1014.CrossRefGoogle Scholar
Reyes-Bozo, L., Herrera-Urbina, R., Escudey, M., Godoy-Faúndez, A., Sáez-Navarrete, C., Herrera, M. & Ginocchio, R. (2011) Role of biosolids on hydrophobic properties of sulfide ores. International Journal of Mineral Processing, 100, 124129.CrossRefGoogle Scholar
Reyes-Bozo, L., Escudey, M., Vyhmeister, E., Higueras, P., Godoy-Faundez, A., Salaza, J.L. et al. (2015) Adsorption of biosolids and their main components on chalcopyrite, molybdenite and pyrite: zeta potential and FTIR spectroscopy studies. Minerals Engineering, 78, 128135.CrossRefGoogle Scholar
Sauter, J. (1926) Die Grössenbestimmung der in Gemischnebel von Verbrennungskraftmaschinen vorhandenen Brennstoffteilchen. VDI-Verlag GMBH, Düsseldorf, Germany, 74 pp.Google Scholar
Subrahmanyam, T.V. & Forssberg, E. (1988) Froth stability, particle entrainment and drainage in flotation-a review. International Journal of Mineral Processing, 23, 3353.CrossRefGoogle Scholar
Taner, H.A. (2019) The Effect of Structural Properties of Clay Minerals on Flotation Performance of Metal Sulphides. Doctoral thesis. Konya Technical University Institute of Graduate Studies Department of Mining Engineering, Konya, Turkey, 172 pp.Google Scholar
Tang, F.Q., Xiao, Z., Tang, J.A. & Jiang, L. (1989) The effect of SiO2 particles upon stabilization of foam. Journal of Colloid Interface Science, 131, 498502.CrossRefGoogle Scholar
Trahar, W.J. (1981) A rational interpretation of the role of particle size in flotation. International Journal of Mineral Processing, 8, 289327.CrossRefGoogle Scholar
Vergouw, J.M., Difeo, A., Xu, Z. & Finch, J.A. (1998) An agglomeration study of sulphide minerals using zeta-potential and settling rate. Part 1: pyrite and galena. Minerals Engineering, 11, 159169.Google Scholar
Wang, Y., Peng, Y., Nicholson, T. & Lauten, R.A. (2015) The different effects of bentonite and kaolin on copper flotation. Applied Clay Science, 114, 4852.CrossRefGoogle Scholar
Wang, L., Peng, Y. & Runge, K. (2016) Entrainment in froth flotation: the degree of entrainment and its contributing factors. Powder Technology, 288, 202211.CrossRefGoogle Scholar
Zhang, M. & Peng, Y. (2015) Effect of clay minerals on pulp rheology and the flotation of copper and gold minerals. Minerals Engineering, 70, 813.CrossRefGoogle Scholar