Mathematical modeling of sulfuric acid leaching of pyrite cinders after preliminary chemical activation

Authors

  • Ye.B. Abikak “Institute of Metallurgy and Ore Beneficiation” JSC; Satbayev University
  • B.K. Kenzhaliyev “Institute of Metallurgy and Ore Beneficiation” JSC; Satbayev University
  • Heri Retnawati Universitas Negeri Yogyakarta
  • S.V. Gladyshev “Institute of Metallurgy and Ore Beneficiation” JSC; Satbayev University
  • A. Akcil Suleyman Demirel University

DOI:

https://doi.org/10.31643/2023/6445.12

Keywords:

pyrite cinders, non-ferrous metals, model, factor, extraction

Abstract

Pyrite cinders, waste products of pyrite concentrate processing by firing to produce sulfuric acid, can serve as raw materials for the extraction of precious, ferrous, and non-ferrous metals. The paper considers the possibilities of obtaining non-ferrous metal concentrate from pyrite cinders by sulfuric acid leaching. This operation is one of the stages in the integrated technology. To increase the extraction of non-ferrous metals during leaching, the method of preliminary chemical activation was used. Chemical activation was carried out in a solution containing 40-120 g/dm3 NaНCO3 at temperatures of 90-230 ° C and a duration of 30-300 minutes. Sulfuric acid leaching of pyrite cinder after activation was carried out in H2SO4 solutions with a concentration of 5-20 % at a temperature of 60 ° C, duration of 30 minutes, and pulp density of 33 %. To determine the optimal conditions for the sulfuric acid leaching of pyrite cinders, a mathematical planning method was used, which allows to assess with a high degree of reliability the influence of the main factors (temperature, pulp density, the concentration of the solution NaHCO3 and duration) and predict an increase in the efficiency of the process by analyzing the numerical values of the regression equations. As a result of sulfuric acid leaching of pyrite cinders after preliminary chemical activation under optimal conditions determined by a mathematical model, the extraction of iron and non-ferrous metals into a solution is 10-15% higher than without activation.

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Author Biographies

Ye.B. Abikak, “Institute of Metallurgy and Ore Beneficiation” JSC; Satbayev University

Junior researcher, JSC "Institute of Metallurgy and Ore Beneficiation", Satbayev University, 050010, Almaty city, the Republic of Kazakhstan, Shevchenko str., 29/133.

B.K. Kenzhaliyev, “Institute of Metallurgy and Ore Beneficiation” JSC; Satbayev University

Doctor of Technical Sciences, Professor, General Director- Chairman of the Management Board of the JSC "Institute of Metallurgy and Ore Beneficiation", Satbayev University, 050010, Almaty city, the Republic of Kazakhstan, Shevchenko str., 29/133.

Heri Retnawati, Universitas Negeri Yogyakarta

Prof. Dr., Mathematics and Science Faculty, Universitas Negeri Yogyakarta, Jl. Colombo No.1 Karangmalang Yogyakarta 55281, Indonesia.

S.V. Gladyshev, “Institute of Metallurgy and Ore Beneficiation” JSC; Satbayev University

Candidate of Technical Sciences, Leading Researcher, JSC "Institute of Metallurgy and Ore Beneficiation", Satbayev University, 050010, Almaty city, the Republic of Kazakhstan, Shevchenko str., 29/133.

A. Akcil, Suleyman Demirel University

Professor, Ph. D.-Eng., Group Leader  Mineral - Metal Recovery and Recycling (MMR&R) Research Group, Engineering Faculty, Suleyman Demirel University, Çünür, Süleyman Demirel Cd., 32260 Merkez/Isparta, Turkey.

References

KochCB. Crystallite size of haematite from thermal oxidation of pyrite and marcasite-effectsof grain size and iron disulphide polymorph. Miner. 2003;16:1257-1267

Alpİ, DeveciH, YazıcıEY, TürkT, SüngünYH.Potential use of pyrite cinders as raw material in cement production: Results of industrial scale trial operations. Journal of Hazardous Materials.2009;166:144-149

OliveiraMLS, WardCR, IzquierdoM, SampaioCH, BrumIAS, KautzmannRM, SabedotS, QuerolX, SilvaLFO. Chemical composition and minerals in pyrite ash of an abandoned sulphuric acid production plant.Sci.Total Environ.2012;430:34-47

Runkel M,Sturm P. Pyrite roasting, an alternative to sulphur burning. Journal of the Southern African Institute of Mining and Metallurgy. 2009;109(8):491-496

YeF, LiuJ, XiongT, XieM. Arsenopyrite removal from pyrite concentrate using pulsating high gradient magnetic separation. Results Phys.2018;10:822-826.

Zhang H, Chen G, Cai X, Fu J, Liu M,ZhangP, YuH. The leaching behavior of copper and iron recovery from reduction roastingpyrite cinder. Journal of Hazardous Material. 2021;420:126561. https://doi.org/10.1016/j.jhazmat.2021.126561

YangF, WuC, CuiY, LuG.Apparent activation energy of spontaneous combustion of sulphur concentrate in a silo. Transactions of Nonferrous Metals Society of China. 2011;21:395-401

HuangF, ZhangL, YiB, XiaZ, ZhengC. Effect of H2O on pyrite transformation behavior during oxy-fuel combustion.Fuel Process. Technol. 2015;131:458-465

TugrulN, Moroydor DerunE, PiskinM. Utilization of pyrite ash wastes by pelletization process.Powder Technol.2007;176:72-76.

Binbin He, Xike Tian, Yan Sun, Chao Yang, Yanglin Zeng, Yanxin Wang, SuxinZhan, Zhenban Pi Recovery of iron oxide concentrate from high-sulfur and low-grade pyrite cinder using an innovative beneficiating process. Hydrometallurgy. 2010;104(2):241-246.

Cong-cong Y, De-qing Z, Jian P, Si-wei Li, Hong-yu Tian. A novel process for Fe recovery and Zn, Pb removal from a low-grade pyrite cinder with high Zn and Pb contents. International Journal of Minerals, Metallurgy, and Materials.2018;25:981-989

Jihao Guo, Hongao Xu, Bo Li, Yonggang Wei and Hua Wang. Leaching kinetics of copper and valuable metal extraction from copper-cadmium residues of zinc hydrometallurgy by oxidation acid leaching.International Journal of Chemical Reactor Engineering, 2022;20(3):295-303. https://doi.org/10.1515/ijcre-2021-0077

Kanga J., Wanga Y., Yu C., Wanga X., Liu Zh. Selective extraction performance of Ni, Cu, Co, and Mn adopted by a coupled leaching of low-grade Ni-sulfide ore and polymetallic Mn-oxide ore in sulphuric acid solutions.Journal of Physics and Chemistry of Solids. Volume 168, September 2022, 110814.

Torres R, Lapidus G, Borda J. Selective leaching of zinc and lead from electric arc furnace dust using citrate and H2SO4 solutions. A kinetic perspective.Revista Mexicana de Ingeniera Quimica. 2022;21(1).

Ibyatov RI. Mathematical modeling of swirled nonisothermic flow of two-phase media over permeable surfaces, Theor. Found. Chem. Eng. 2017;51(6):992-1001.

Irfan SA, Razali R, KuShaari K, Azeem B, Ford Versypt AN. A review of mathematical modeling and simulation of controlled-release fertilizers. Journal of Controlled Release. 2018;271:45-54.

Baldwin SA, Demopoulos GP, Papangelakis VG.Mathematical modeling of the zinc pressure leach process. Metallurgical and Materials Transactions. 1995;26(5):1035-1047.

Kondratyev YuI, Sokolova OA, Arhipov PV. Mathematical modeling in the organization of the production process of leaching metals. Journal of Physics: Conf.2176. 2022. 012085. https://doi.org/10.1088/1742-6596/2176/1/012085

Magalhães EM, Passos KLMD, Viegas BM, Macêdo EN, Souza JAS. Mathematical modeling of leaching process of red mud in order to obtain the kinetics parameters. 2015;14:90-94. https://doi.org/10.5380/reterm.v14i2.62140

Akhnazarova SL, Gordeev LS, Glebov MB. Modelling and Optimization of Chemical Processes with Incomplete Information about the Mechanism. M.: D.I. Mendeleev Russian Chemical Technology University, 2010.

Pat. RK No. 32333. Method of aluminosilicate raw material preparation before leaching. Abdulvaliev RA, Gladyshev SV, Pozmogov VA, Imangalieva LM. Publ.31.08.2017. Bull.16.

Patent RK No.33583. Method of chromite concentrate preparation from poor chromite-bearing ores.Kenzhaliev BK, Dyussenova SB, Abdulvaliev RA, Gladyshev SV, Omarova SA, Manapova AI, Imangalieva LM. Publ. 19.04.2019. Bull. 16.

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Published

2022-08-19

How to Cite

Abikak, Y., Kenzhaliyev, B., Retnawati, H., Gladyshev, S., & Akcil, A. (2022). Mathematical modeling of sulfuric acid leaching of pyrite cinders after preliminary chemical activation. Kompleksnoe Ispolzovanie Mineralnogo Syra = Complex Use of Mineral Resources, 325(2), 5–13. https://doi.org/10.31643/2023/6445.12

Issue

Section

Engineering and technology

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