Название |
Study of the material composition of refractory gold-bearing ore |
Информация об авторе |
Institute of Mineral Resources (Tashkent, Republic of Uzbekistan)
Khamidullayev B. N., Head of Department, PhD in Engineering Sciences, baxrom_0786@mail.ru Nurmukhamedov I. S., Head of Laboratory, nurmuhamedov85@list.ru Usmonov A. S., Intern Researcher, abrorusmonov102490@gmail.com Samandarova Sh. Yu., Junior Researcher, Sshoxida90@gmail.com |
Реферат |
This article presents the findings from a detailed analysis of the material composition of a refractory gold-bearing ore sample. The research focused on chemical, mineralogical, grain size distribution, and phase analysis methods, with special emphasis on the content of gold and silver. The sample for the study was obtained from a deposit in Uzbekistan. Both thin and polished sections were prepared for examination. A full chemical analysis of an average sample revealed that the ore consisted primarily of the following components by weight percentage: 60.76 % of SiO2, 16.45 % of Al2O3, and 6.94 % of total Fe2O3. The content of the primary valuable elements in the ore was also established at 1.33 g/t for gold and 1.48 g/t for silver. The assay analysis of the sample indicated a gold content of 1.24 g/t and a silver content of less than 5 g/t, corroborating the results obtained in the chemical analysis stage. The grain size distribution analysis of the ore sample, crushed to a size class of –3+0 mm, revealed a notable increase in gold concentration within finer size fractions, where gold content ranged from 2.43 to 2.54 g/t in the finest classes. Mineralogical studies have identified the main ore minerals as native gold, pyrite, pyrrhotite, arsenopyrite, argentite, chalcopyrite, sphalerite, galena, and fahlore, with minor occurrences of bornite, wolframite, and antimonite. Pyrite was found to be the primary carrier of gold, followed by arsenopyrite. Given the refractory nature of the ore, it has been established that further processing would require fine grinding to achieve at least 90% passing the –0.074 mm class. Flotation is recommended as a viable processing method, with the potential for separate concentration of carbon and sulfide fractions. These concentrates can undergo pyrometallurgical treatment prior to sorption cyanidation, thereby improving the recovery of gold. |
Библиографический список |
1. Ignatkina V. A., Bocharov V. A., Makavetskas A. R., Kayumov A. A., Aksenova D. D., Khachatryan L. S., Fishchenko Yu. Yu. Rational processing of refractory copper-bearing ores. Izvestiya Vysshikh Uchebnykh Zavedeniy. Tsvetnaya Metallurgiya. 2018. No. 3. pp. 6–18. 2. Safonov Yu. G. Gold ore and gold-bearing deposits of the world — genesis and metallogenic potential. Geologiya Rudnykh Mestorozhdeniy. 2003. Vol. 45, No. 4. pp. 305–320. 3. Bocharov V. A., Ignatkina V. A., Lapshina G. A., Khachatryan L. S. Development of technology of complex processing of refractory pyrite polymetallic ores of non-ferrous metals. Tsvetnye Metally. 2018. No. 4. pp. 27–34. 4. Matveeva T. N., Chanturia V. A., Ivanova T. A., Gromova N. K. Scientifically based methods for efficient extraction of finely dispersed micro- and nanoparticles of noble metals from refractory ores. Proc. of the XI Congress of ore beneficiation specialists of CIS countries. Moscow, March 13–15, 2017. pp. 331–334. 5. Marsden J., House I. The chemistry of gold extraction. 2ed. Littleton, CO, USA: Society for Mining, Metallurgy, and Exploration, 2006. 682 p. 6. Advances in gold ore processing. Ed. Adams M. D. Amsterdam: Elsevier, 2005. 1076 p. 7. Zakharov B. A., Meretukov M. A. Gold: refractory ores. Moscow: Ore and Metals Publishing House, 2013. 452 p. 8. Majzlan J., Chovan M., Andras P., Newville M., Wiedenbeck M. The nanoparticulate nature of invisible gold in arsenopyrite from Pezinok (Slovakia). Neues Jahrbuch für Mineralogie–Abhandlungen. 2010. Vol. 187, Iss. 1. pp. 1–9. 9. Meretukov M. A. Gold and natural carbonaceous matter. Moscow: Ore and Metals Publishing House, 2007. 528 p. 10. Dunne R. Challenges and opportunities in the treatment of refractory gold ores. Proc. of ALTA 2012 Gold conference. May 31–June 1, 2012, Perth, Australia. pp. 1–15. 11. Huang Zh.-Sh., Yang T.-Z. Comparative study on refractory gold concentrate kinetics and mechanisms by pilot scale batch and continuous bio-oxidation. Minerals. 2021. Vol. 11, Iss. 12. DOI: 10.3390/min11121343 12. Lodeyshchikov V. V., Vasilyeva A. V. Methodical recommendations on ore typing, technological testing and mapping of primary gold deposits. Irkutsk: «Irgiredmet», 1997. 164 p. 13. Bocharov V. A. Technology of beneficiation of goldcontaining raw materials. Moscow: Ore and Metals Publishing House, 2003. 407 p. 14. Dominy S. C., Platten I. M., Glass H. J., Saranchimeg Purevgerel, Cuffley B. W. Determination of gold particle characteristics for sampling protocol optimization. Minerals. 2021. Vol. 11, Iss. 10. DOI: 10.3390/min11101109 15. Umarova I. K., Mengilbayev D. A., Makhmarezhabov D. B. Study of mineral composition of refractory goldcontaining ores of Auminzes deposit. Scientific Progress. 2021. Vol. 2, Iss. 5. pp. 199–205. 16. Radomskii S. M., Radomskaya V. I. Features of noble metals at Pioneer gold deposit. Earth Sciences and Subsoil Use. 2022. Vol. 45, Iss. 1. pp. 50–59. 17. Topychkanova E. I., Dementyeva N. A. Extraction of gold from gold-carbon-containing ores. Zolotodobycha. 2022. No. 7. URL: https://золотодобыча.рус/index.php/processing/carbon-flotation-main (accessed: 07.08.2024). 18. Li J., Yang H., Zhao R., Tong L., Chen Q. Mineralogical characteristics and recovery process optimization analysis of a refractory gold ore with gold particles mainly encapsulated in pyrite and arsenopyrite. Geochemistry. 2022. Vol. 83, Iss. 1. DOI: 10.1016/j.chemer.2022.125941 19. Fedotov P. S., Senchenko A. E., Fedotov K. V., Burdonov A. E. Hydrometallurgical processing of gold ore. Journal of the Institution of Engineers (India): Series D. 2022. Vol. 103. pp. 549–562. |