Mining of Mineral Deposits

ISSN 2415-3443 (Online)

ISSN 2415-3435 (Print)

Flag Counter

Investigation of the solid oxidizer effect on the metal geotechnology efficiency

Khalidilla Yussupov1, Erbolat Aben1, Dalelkhan Akhmetkanov1, Khairulla Abenk2, Saltanat Yussupova3

1Satbayev University, Almaty, Kazakhstan

2CSA Global, West Perth, Australia

3Non-Profit JSC “Almaty University of Power Engineering and Telecommunications named after Gumarbek Daukeyev”, Almaty, Kazakhstan


Min. miner. depos. 2023, 17(4):12-17


https://doi.org/10.33271/mining17.04.012

Full text (PDF)


      ABSTRACT

      Purpose. The research is aimed at increasing the useful component content in a pregnant solution during in-situ leaching (ISL) using a solid oxidizer and increasing the ferric iron concentration in the leaching solution based on laboratory research.

      Methods. Laboratory research is performed on a specially developed model electrolyzer for obtaining comparative data on divalent iron oxidation to trivalent iron and the change in the useful component content in a pregnant solution. Firstly, tests are conducted with a basic leaching solution, then on the oxidation of the leaching solution with a solid oxidizer in the form of a lead dioxide plate. Tests are conducted by changing sulphuric acid concentration within 5-50 g/l, amount of divalent iron ions in the solution from 0.5 up to 4.0 g, lead dioxide plate surface area from 19 to 76 cm2. The leaching time is up to 10 hours.

      Findings. The results of laboratory research on determining the oxidation degree of divalent iron ions and change in the oxidation-reduction potential (ORP) depending on the sulphuric acid concentration and on the initial concentration of divalent iron ions in the initial solution are presented. With a change in the sulphuric acid concentration from 5 to 50 g/l, the oxidation value of divalent iron ions increases from 26.5 to 96.5%, and with an increase in the initial solution concentration of divalent iron, the oxidation degree of divalent iron naturally decreases from 95.2 to 58.8%. In the initial leaching solution, the divalent solution concentration is 312 mg/l, and that of the trivalent solution is 288 mg/l. After oxidation with a solid oxidizer, the divalent and trivalent iron concentrations are 56 and 392 mg/l, respectively. In the course of further laboratory research using core materials from a uranium deposit, it has been revealed that when leaching with a basic solution, the uranium content in the pregnant solution is 19.36 mg/l, and when leaching with a solution after oxidation with a solid oxidizer, it is 27.9 mg/l, which is by 8.54 mg/l more.

      Originality. New dependences have been determined of the oxidation degree of divalent iron ions to trivalent one on the sulphuric acid concentration and on the initial concentration of divalent iron ions, as well as the useful component content in the pregnant solution on the leaching time when using a solid oxidizer.

      Practical implications. Using of a solid oxidizer, it is possible to increase the trivalent iron concentration in the leaching solution and the useful component content in the pregnant solution compared with the basic technology, thereby reducing the time of mining uranium reserves. Proposed technology is environmentally friendly, with low capital costs.

      Keywords: geotechnology, in-situ leaching (ISL), oxidation, pregnant solution, trivalent iron, sulphuric acid


      REFERENCES

  1. Alimbaev, T., Mazhitova, Zh., Beksultanova, Ch., & Tentigulkyzy, N. (2020). Activities of mining and metallurgical industry enterprises of the Republic of Kazakhstan: Environmental problems and possible solutions. E3S Web of Conferences, (175), 14019. https://doi.org/10.1051/e3sconf/202017514019
  2. Kolesnikov, A.S., Zhakipbaev, B., Zhanikulov, N.N., Kolesnikova, O.G., Аkhmetova, Е.K., Kuraev, R.M., & Shal, A.L. (2021). Review of technogenic waste and methods of its processing for the purpose of complex utilization of tailings from the enrichment of non-ferrous metal ores as a component of the raw material mixture in the production of cement clinker. Rasayan Journal of Chemistry, (14), 997-1005. https://doi.org/10.31788/RJC.2021.1426229
  3. Bitimbayev, M.Zh., Aben, E.Kh., & Yusupov, Kh.A. (2022). Razvitie teorii sozdaniya prirodopodbnykh kombinirovannykh geotekhnologiy i vozmozhnosti ikh prakticheskoy realizatsii. Gornyy Zhurnal Kazakhstana, (12), 22-27.
  4. Rogov, E.I., Rogov, S.E., & Rogov, A.E. (2001). Nachala osnov teorii tekhnologii dobychi poleznykh iskopayemykh. Almaty, Kazakhstan: Gylym, 224 s.
  5. Begalinov, A., Shautenov, M., Medeuov, C., Almenov, T., & Bektur, B. (2021). Mechanochemical activation of the processing of gold-bearing sulfide raw materials. News of the National Academy of Sciences of the Republic of Kazakhstan, Series of Geology and Technical Sciences, 6(450), 46-52. https://doi.org/10.32014/2021.2518-170X.118
  6. Salinas, K.E., Herreros, O., & Torres, C.M. (2018). Leaching of primary copper sulfide ore in chloride-ferrous media. Minerals, (8), 312. https://doi.org/10.3390/min8080312
  7. Dosmukhamedov, N., Kaplan, V., Zholdasbay, E., Argyn, A., Kuldeyev, E., Koishina, G., & Tazhiev, Y. (2022). Chlorination teatment for gold extraction from refractory gold-copper-arsenic-bearing concentrates. Sustainability, (14), 11019. https://doi.org/10.3390/su141711019
  8. Markenbayev, Zh.D., Nuraliyev, G.O., & Nursagat, N.N. (2022). Sposob povysheniya soderzhaniya urana v produktivnom rastvore pri podzemnom skvazhinnom vyshchelachivanii. Patent RK #7390.
  9. Kuandykov, T., Nauryzbayeva, D., Yelemessov, K., Karmanov, T., Kakimov, U., & Kolga, A. (2020). Development and justification of a hydro-impulse method for increasing ore permeability in conditions of uranium borehole production. News of the National Academy of Sciences of the Republic of Kazakhstan, (6), 126-133. https://doi.org/10.32014/2020.2518-170X.139
  10. Armstrong, D., Jeuken, B., (2009). Management of in-situ recovery (ISR) mining fluids in a closed aquifer system. Abstracts of the International Mine Water Conference, 703-712.
  11. Shen, N., Li, J., Guo, Y., & Li, X. (2020). Thermodynamic modeling of in situ leaching of sandstone-type uranium minerals. Journal of Chemical & Engineering, 65(4), 2017-2031. https://doi.org/10.1021/acs.jced.9b01152
  12. Wang, P., Tan, K., Li, Y., Liu, Z., Li, C., Tan, W., Tian, Y., & Huang, W. (2022). Effect of pyrite on the leaching kinetics of pitchblende in the process of acid in situ leaching of uranium. Minerals, (12), 570. https://doi.org/10.3390/min12050570
  13. Xu, Y., Wang, L., Su, X., Chen, M., Liao, W., Ren, Y., Du, Z., & Ding, Y. (2023). Study on mechanism of oxygen oxidation leaching with low acid for high acid consumption sandstone uranium deposit. Processes, (11), 746. https://doi.org/10.3390/pr11030746
  14. Liao, W., Que, W., Wang, L., & Du, Z. (2020). Synergetic oxidation in alkaline in-situ leaching uranium: A preliminary case study. Volume 1: Beyond Design Basis; Codes and Standards; Computational Fluid Dynamics (CFD); Decontamination and Decommissioning; Nuclear Fuel and Engineering; Nuclear Plant Engineering, 1-6. https://doi.org/10.1115/icone2020-16200
  15. Abilmagzhanov, A.Z., Ivanov, N., Malimbaev, M.S., Adelbayev, I., Nurtazina, A., Altynbek, A.D., & Shokobayev, N.M. (2020). Catalytic oxidation of ferrous iron to increase the efficiency of uranium leaching. News of the Academy of Sciences of the Republic of Kazakhstan, 2(440), 92-98. https://doi.org/10.32014/2020.2518-1491.28
  16. Rajasekhar Pullabhotla, V.S.R., Southway, C., & Jonnalagadda, S.B. (2008). Oxidation of n-hexadecane with uranyl loaded/anchored microporous zeolites and ozone. Catalysis Communications, 9(9) 1902-1912. https://doi.org/10.1016/j.catcom.2008.03.014
  17. Yusupov, Kh.A., & Omarbekov, E.U. (2020). The effect of “pumping wells” procedure on the flow rate of extraction wells. Complex Use of Mineral Resources, 2(313), 14-18. https://doi.org/10.31643/2019/6445.22
  18. Лицензия Creative Commons