Electrolytic iron production from alkaline suspensions of solid oxides: compared cases of hematite, iron ore and iron-rich Bayer process residues

Authors

  • Abdoulaye Maihatchi Reaction and Chemical Engineering Laboratory, CNRS-University of Lorraine, 1 rue Grandville, 54000 Nancy and Extracthive, Centre de Recherche CEA, Bat. 51, 30591 Marcoule
  • Marie-Noëlle Pons Reaction and Chemical Engineering Laboratory, CNRS-University of Lorraine, 1 rue Grandville, 54000 Nancy
  • Quentin Ricoux Extracthive, Centre de Recherche CEA, Bat. 51, 30591 Marcoule
  • Frederic Goettmann Extracthive, Centre de Recherche CEA, Bat. 51, 30591 Marcoule
  • Francois Lapicque Reaction and Chemical Engineering Laboratory, CNRS-University of Lorraine, 1 rue Grandville, 54000 Nancy

DOI:

https://doi.org/10.5599/jese.751

Keywords:

Iron production, electrodeposition, iron ores, red mud, surface reactivity

Abstract

Iron can be produced by the direct electrochemical reduction of hematite particles suspended in hot, concentrated NaOH solutions. Because various other iron sources can be considered, the present work was aimed at investigating the electrolytic treatment of the “red mud” generated by the Bayer process for alumina preparation from bauxite. Such sources contain very high amounts of impurities, in particular silicon and aluminium oxide-based minerals, in addition to other mineral phases. Electrolytic reductive treatment of the industrial red mud sample was shown to be possible but with both lower current density and current efficiency than for pure hematite. After deposition tests at a fixed current density, further experiments in simulation tests have been carried out for better understanding. In particular, hematite particles were tested with and without impurities introduced in the solution. Presence of little soluble impurities at the particle surface appear to hinder the reactivity of the suspended particles at the cathode surface, whereas side-hydrogen reaction still occurs. 

Downloads

Download data is not yet available.

References

D. Oster, Electrochemical reduction of suspended iron oxides suspended in water-sodium hydroxide mixture (between 25 and 140 oC). Investigation of conditions for production of electrolytic iron, PhD dissertation, Univ. Paris [in French] (1979).

A. Allanore, H. Lavelaine G. Valentin, J. Birat, F. Lapicque, Journal of the Electrochemical Society 154 (2007) E187-193.

A. Allanore, Experimental study of the production of electrolytic iorn in alkaline media: mechanisms of oxides reduction and design of a cell. PhD dissertation, INPL Nancy [in French] (2007).

A. Allanore, H. Lavelaine, G. Valentin, J. Birat, P. Delcroix, F. Lapicque, Electrochimica Acta 55 (2010) 4007-4013.

B. Yuan, O. E. Kingstein, G. M. Haarberg, Journal of the Electrochemical Society 156 (2009) D64-D69.

S. Gu, X. Zou, X. Lu, Applied Mechanics in Materials 595 (2014) 8-13.

M. Siebentritt, P. Volovich, K. Ogle, G. Lefevre, Colloids and Surfaces A: Physicochemcial and Engineering Aspects 440 (2014) 197-201.

A. Allanore, J. Feng, H. Lavelaine, K. Ogle, Journal of the Electrochemical Society 157 (2010) E24-E30.

V. Feynerol, H. Lavelaine, P. Marlier, M. N. Pons, F. Lapicque, Journal of Applied Electrochemistry 47 (2017) 1339-1350.

J. F. Moteiro, Y. A. Ivanova, A. V. Kovalesky, D. K. Ivanou, J. Frade, Electrochimica Acta 193 (2016) 284-292.

V. Feynerol, Treatment of iron ores by alkaline leaching followed by their electrolysis in an alkaline medium. PhD dissertation, University of Lorraine [in French] (2018).

Ab. Maihatchi, M.N. Pons, Q. Ricoux, F. Goettmann, F. Lapicque, submitted to Journal of Environmental Management (2019).

W. M. Mayes, I. T. Burke, H. I. Gomes, A. D. Anton, M. Molnar, V. Feigl, E. Ujaczki, Journal of Sustainable Metallurgy 2 (2016) 332-343

D. L. Parkhurst, K. L. Kipp, P. Engesgaard, S. R. Charlton, Geochimica and Cosmochimica Acta 69 (2005) Supplement S, A156-A156

M. C. Barnes, J. Addai-Mensah, A. R. Gerson, Colloids and Surface A: Physicochemical and Engineering Aspects 147 (1999) 283−295.

H. Peng, D. Seneviratne, J. Vaughan, Industrial and Engineering Chemistry Research 57 (2018) 1408-1416.

L. Liu, M.Y. Wang, Z. Wang, Y. Zhang, Hydrometallurgy 146 (2014) 76-81.

B. Rusch, K. Hanna, B. Humbert, Colloids and Surface A: Physicochemical and Engineering Aspects 353 (2010) 172-180.

Downloads

Published

09-03-2020

How to Cite

Maihatchi, A., Pons, M.-N., Ricoux, Q., Goettmann, F., & Lapicque, F. (2020). Electrolytic iron production from alkaline suspensions of solid oxides: compared cases of hematite, iron ore and iron-rich Bayer process residues. Journal of Electrochemical Science and Engineering, 10(2), 95–102. https://doi.org/10.5599/jese.751

Issue

Section

7th RSE SEE & 8th Kurt Schwabe symposium Special Issue

Most read articles by the same author(s)