ISSN (print) 1995-2732
ISSN (online) 2412-9003

 

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DOI: 10.18503/1995-2732-2024-22-1-29-38

Abstract

Problem Statement (Relevance). Zinc-containing intermediate products of metallurgy pose a high environmental hazard, remaining a potential alternative source of zinc and related metals. Objectives. The research is aimed at studying the kinetic patterns of zinc leaching from the composition of CaO·ZnO formed by sintering the dust of electric arc furnaces with limestone. Methods Applied. The subject of the study was sintered dust of electric arc furnaces with limestone, which was leached with caustic soda. The initial materials were analyzed by atomic emission spectral methods with inductively coupled plasma and a spark source of spectrum excitation, and by the X-ray phase method. Originality. Sintered dust, showing a percentage composition of 11.9 Zn; 28.5 Ca; 16.6 Fe; 0.38 Mg; 0.14 Pb; 0.05 Cl, was produced to convert zinc into an easily soluble form of CaO·ZnO. Results. Leaching of the sinter was carried out under the following conditions: initial zinc concentration Co = 0.202-0.456 g-ion/dm3; alkali concentration was 9.2 mol/dm3 NaOH; a solid-liquid ratio was 4-9; pulp mixing rate V = 20 rad.s‒1; temperature T = 333-363 K; duration τ = 2.5 h. Zinc passed into the solution in the form of sodium tetrahydroxocincate Na2[Zn(OH)4], and calcium remained in slightly soluble residue Ca(OH)2, which interacts with CO2 and forms insoluble calcium carbonate CaCO3. The leaching mode of the sinter corresponds to the kinetic mechanism, when the rate of the process is determined by the chemical reaction of zinc dissolution with an activation energy value of E = 41.57 kJ/mol. Practical Relevance. The obtained information contributes to determining ways to intensify the process: additional grinding of the solid phase before alkali treatment; periodic or continuous activation of the surface of the dispersed particles to remove the film of reaction by-products: hydroxides of metal impurities and calcium carbonate; increase in pulp temperature; and transfer of the extracted target element into the form of a highly soluble compound.

Keywords

electric arc furnace dust, limestone, roasting, zinc, leaching, caustic soda, kinetics, external diffusion, activation energy, concentration, mixing rate, temperature

For citation

Yakornov S.A., Maltsev G.I., Voinkov R.S., Grebneva A.A. A Kinetic Mode of Zinc Leaching with Alkali. Vestnik Magnitogorskogo Gosudarstvennogo Tekhnicheskogo Universiteta im. G.I. Nosova [Vestnik of Nosov Magnitogorsk State Technical University]. 2024, vol. 22, no. 1, pp. 29-38. https://doi.org/10.18503/1995-2732-2024-22-1-29-38

Sergey A. Yakornov ‒ PhD (Eng.), First Deputy Technical Director, OJSC Ural Mining and Metallurgical Company, Verkhnyaya Pyshma, Russia. Email: This email address is being protected from spambots. You need JavaScript enabled to view it.. ORCID 0000-0002-2507-3279 Gennady I. Maltsev – DrSc (Eng.), Senior Researcher, Chief Specialist of the Research Center, JSC Uralelektromed, Verkhnyaya Pyshma, Russia. Email: This email address is being protected from spambots. You need JavaScript enabled to view it.. ORCID 0000-0002-0750-0070 Roman S. Voinkov – PhD (Eng.), Head of the Research Center, JSC Uralelektromed, Verkhnyaya Pyshma, Russia; Associate Professor of the Metallurgy Department, UMMC Technical University, Verkhnyaya Pyshma, Russia. Email: This email address is being protected from spambots. You need JavaScript enabled to view it.. ORCID 0000-0001-6697-1596 Anna A. Grebneva – PhD (Chemistry), Lead Process Engineer of the Research Center, JSC Uralelektromed, Verkhnyaya Pyshma, Russia. Email: This email address is being protected from spambots. You need JavaScript enabled to view it.. ORCID 0009-0001-5605-1443

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