155
Views
15
CrossRef citations to date
0
Altmetric
Research Papers

Effect of impeller speed on the Ni(II) ion flotation

, , &
Pages 161-168 | Received 04 Apr 2018, Accepted 03 Sep 2018, Published online: 13 Sep 2018

References

  • Akdemir, Ü., & Sönmez, I. (2003). Investigation of coal and ash recovery and entrainment in flotation. Fuel Processing Technology, 82(1), 1–9.
  • Azamathulla, H. M., & Ahmad, Z. (2012). Gene-expression programming for transverse mixing coefficient. Journal of Hydrology, 434, 142–148.
  • Chirkst, D., Lobacheva, O., Berlinskii, I., & Sulimova, M. (2009). Recovery and separation of Ce3+ and Y3+ ions from aqueous solutions by ion flotation. Russian Journal of Applied Chemistry, 82(8), 1370–1374.
  • Cilek, E. C. (2009). The effect of hydrodynamic conditions on true flotation and entrainment in flotation of a complex sulphide ore. International Journal of Mineral Processing, 90(1), 35–44.
  • Deglon, D. (2005). The effect of agitation on the flotation of platinum ores. Minerals Engineering, 18(8), 839–844.
  • Deihimi, N., Irannajad, M., & Rezai, B. (2018). Prediction of removal percentage and adsorption capacity of activated red mud for removal of cyanide by artificial neural network. Geosystem Engineering, 21, 1–9.
  • Doyle, F. M. (2003). Ion flotation—Its potential for hydrometallurgical operations. International Journal of Mineral Processing, 72(1), 387–399.
  • Ferreira, C. (2002). Genetic representation and genetic neutrality in gene expression programming. Advances in Complex Systems, 5(04), 389–408.
  • Filippov, L., Houot, R., & Joussemet, R. (1997). Physicochemical mechanisms and ion flotation possibilities using columns for Cr6+ recovery from sulphuric solutions. International Journal of Mineral Processing, 51(1), 229–239.
  • Ghazy, S., El-Morsy, S., & Ragab, A. (2008). Ion flotation of copper (II) and lead (II) from environmental water samples. Journal of Applied Sciences and Environmental Management, 12(3), 75-82.
  • Grieves, R. B. (1975). Foam separations: A review. The Chemical Engineering Journal, 9(2), 93–106.
  • Hashmi, M. Z., Shamseldin, A. Y., & Melville, B. W. (2011). Statistical downscaling of watershed precipitation using Gene Expression Programming (GEP). Environmental Modelling & Software, 26(12), 1639–1646.
  • Hoseinian, F., Rezai, B., & Kowsari, E. (2018). Optimization and separation mechanism of Ni (II) removal from synthetic wastewater using response surface method. International Journal of Environmental Science and Technology, 1–10.
  • Hoseinian, F. S., Faradonbeh, R. S., Abdollahzadeh, A., Rezai, B., & Soltani-Mohammadi, S. (2017). Semi-autogenous mill power model development using gene expression programming. Powder Technology, 308, 61–69.
  • Hoseinian, F. S., Irannajad, M., & Nooshabadi, A. J. (2015). Ion flotation for removal of Ni (II) and Zn (II) ions from wastewaters. International Journal of Mineral Processing, 143, 131–137.
  • Hoseinian, F. S., Irannajad, M., & Safari, M. (2016). Effective factors and kinetics study of zinc ion removal from synthetic wastewater by ion flotation. Separation Science and Technology, 52(5), 892–902.
  • Hoseinian, F. S., Rezai, B., & Kowsari, E. (2018a). Effect of separation mechanism on the kinetics of Zn (II) flotation. Separation Science and Technology, 1–7.
  • Hoseinian, F. S., Rezai, B., & Kowsari, E. (2018b). The main factors effecting the efficiency of Zn (II) flotation: Optimum conditions and separation mechanism. Journal of Environmental Management, 207, 169–179.
  • Jang, E., Jeong, S., & Chung, E. (2017). Application of three different water treatment technologies to shale gas produced water. Geosystem Engineering, 20(2), 104–110.
  • Ji, S., Dempsey, B. A., & Yoo, K. (2011). The removal of arsenic ion in electro-coagulation cell. Geosystem Engineering, 14(2), 71–78.
  • Maciejewski, P., & Walkowiak, W. (2004). Selective removal of cesium (I), strontium (II) and barium (H) cations with proton ionizable lariat ethers in the ion flotation process. Fizykochemiczne Physicochemical Problems of Mineral Processing, (38), 139–146.
  • Mal’tsev, G., & Vershinin, S. (2012). Concentration and recovery of halide complexes of aluminum subgroup metals by ionic flotation. Theoretical Foundations of Chemical Engineering, 46(1), 63–71.
  • Polat, H., & Erdogan, D. (2007). Heavy metal removal from waste waters by ion flotation. Journal of Hazardous Materials, 148(1), 267–273.
  • Reyes, M., Patiño, F., Escudero, R., Pérez, M., Flores, M. U., & Reyes, I. A. (2012). Kinetics and hydrodynamics of silver ion flotation. Journal of the Mexican Chemical Society, 56(4), 408–416.
  • Reyes, M., Patiño, F., Tavera, F. J., Escudero, R., Rivera, I., & Pérez, M. (2009). Kinetics and recovery of xanthate-copper compounds by ion flotation techniques. Journal of the Mexican Chemical Society, 53(1), 15–22.
  • Safari, M., Harris, M., & Deglon, D. (2017). The effect of energy input on the flotation of a platinum ore in a pilot-scale oscillating grid flotation cell. Minerals Engineering, 110, 69–74.
  • Safari, M., Harris, M., Deglon, D., Leal Filho, L., & Testa, F. (2016). The effect of energy input on flotation kinetics. International Journal of Mineral Processing, 156, 108–115.
  • Sebba, F. (1962). Ion flotation (Vol. 30). US: Elsevier.
  • Shakir, K., Elkafrawy, A. F., Ghoneimy, H. F., Beheir, S. G. E., & Refaat, M. (2010). Removal of rhodamine B (a basic dye) and thoron (an acidic dye) from dilute aqueous solutions and wastewater simulants by ion flotation. Water Research, 44(5), 1449–1461.
  • Soliman, M. A., Rashad, G. M., & Mahmoud, M. R. (2015). Kinetics of ion flotation of Co (II)–EDTA complexes from aqueous solutions. Radiochimica Acta, 103(9), 643–652.
  • Strel’tsov, K., & Abryutin, D. (2010). Investigation of regularities of ion flotation of copper with the use of sodium diethyldithiocarbamate. Russian Journal of Non-Ferrous Metals, 51(2), 85–88.
  • Walkowiak, W., & Ulewicz, M. (1999). Kinetics studies of ion flotation. Fizykochemiczne Problemy Mineralurgii, 33, 201–214.
  • Wang, L. K., Hung, Y.-T., & Shammas, N. K. (2006). Advanced physicochemical treatment processes (Vol. 89). US: Springer.
  • Yang, X.-S., & Aldrich, C. (2006). Effects of impeller speed and aeration rate on flotation performance of sulphide ore. Transactions of Nonferrous Metals Society of China, 16(1), 185–190.
  • Zheng, X., Franzidis, J., & Johnson, N. (2006). An evaluation of different models of water recovery in flotation. Minerals Engineering, 19(9), 871–882.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.