Журналы →  Tsvetnye Metally →  2020 →  №3 →  Назад

NOBLE METALS AND ALLOYS
Название Behaviour of iridium and ruthenium complexes during sorption in sulphuric acid medium
DOI 10.17580/tsm.2020.03.05
Автор Petrov G. V., Boduen A. Ya., Fokina S. B., Zotova I. E.
Информация об авторе

Saint-Petersburg Mining University, Saint Petersburg, Russia:

G. V. Petrov, Professor, Doctor of Technical Sciences
A. Ya. Boduen, Associate Professor, Candidate of Technical Sciences
S. B. Fokina, Associate Professor, Candidate of Technical Sciences, e-mail: fokina_sb@mail.ru
I. E. Zotova, Postgraduate Student

Реферат

Sorption on synthetic and organic ion-exchange materials provides one of the most advanced hydrometallurgical techniques for the extraction and concentration of platinum group metals from process solutions. A study has been conducted that looked at the sorption concentration of iridium and ruthenium from sulphuric acid solutions with various concentrations of sulphuric acid and using the resins AV-17, EDE-1OP and KU-2 for iridium and the resins EDE-1OP, KU-2 and the activated carbon KAD for ruthenium. It was found that the best iridium recovery performance is achieved when high-base anionites are used for solution treatment. The maximum recovery of iridium from the solution reached 98.2% when the sorbent AV-17 was used and the sulphuric acid concentration was 150 g/l. It was established that when the sulphuric acid concentration varies from 30 to 250 g/l, the complex iridium anion changes its charge from 2– to 8–, which is indicative of various forms of iridium complexes being formed. It was found that, for all the tested sorbents, the minimum sorption of ruthenium is associated with sulphuric acid concentration of 50 g/l, whereas the maximum sorption takes place within the sulphuric acid concentration range of 80–100 g/l. The sorbent EDE-10P was found to be most efficient for ruthenium, with the recovery of ruthenium not exceeding 18%. It is demonstrated that pre-treatment of solutions with sodium sulphate helps increase the sorption of ruthenium on the anionite EDE-10P by approximately four times. When using proven sorbents for sequential sorption from “reduced” solutions, almost all the ruthenium can be recovered. A changed sequence of the sorbent introduction does not affect the recovery of ruthenium by any of the sorbents.

Ключевые слова Sorption, sorption concentration, platinum group metals, ruthenium, iridium, sodium sulphate, sulphuric acid solutions
Библиографический список

1. Anikin A. V., Aksenov D. A. Current trends at the global platinum market. Issues of New Economy. 2016. pp. 26–31.
2. On the status and use of mineral resources of the Russian Federation in 2016 and 2017: State Report. Moscow, 2018. 372 p.
3. Pilyugin A. G., Talovina I. V., Duryagina A. M., Nikiforova V. S. Geochemical characteristics of the platiniferous dunites found in the Svetly Bor and Nizhny Tagil massifs in the Urals platiniferous belt. Zapiski Gornogo instituta. 2015. Vol. 212. pp. 50–61.
4. Petrov G. V., Shneerson Ya. M., Andreev Yu. V. Recovery of platinum metals when processing chromite ores from dunite massifs. Zapiski Gornogo instituta. 2018. Vol. 231. pp. 281–286.
5. Rogozhnikov D. A., Rusalev R. E., Dizer О. А., Naboychenko S. S. Nitric acid loosening of rebellious sulphide concentrates containing precious metals. Tsvetnye Metally. 2018. No. 12. pp. 38–44.
6. Lobko S. V., Kuzas E. A., Naboychenko S. S., Voinov V. N. Electrochlorination of secondary raw materials containing noble metals using bulk current lead. Tsvetnye Metally. 2017. No. 3. pp. 45–49.
7. Greyver T. N., Shneerson Ya. M., Goncharov P. A. Hydrometallurgical recovery of platinum metals from ores, concentrates, semiproducts. Khimicheskaya tekhnologiya. 2003. No. 12. pp. 34–38.
8. Nikoloski A. N., Ang K. L., Li D. Recovery of platinum and rhodium from acidic chloride leach solution using ion exchange resins. Hydrometallurgy. 2015. Vol. 152. pp. 20–32.
9. Hubicki Z., Wawrzkiewicz M., Wojcik G., Kolodynska D., Wolowicz A. Ion Exchange — Studies and Applications. Chapter 1: Ion exchange method for removal and separation of noble metal ions. Rijeka, Croatia : InTech, 2015.
10. Miroshnichenko A. A. Sorption recovery of platinum metals from compound solutions. Procedia Engineering. 2016. Vol. 152. pp. 8–12.
11. Borbat V. F., Shindler A. A. The chemistry and chemical technology of platinum group metals: Learner’s guide. Omsk : Izdatelstvo OmGU, 2008. 175 p.
12. Belousova N. V., Belousov O. V., Borisov R. V., Kolotushkin A. M., Kylasov F. A. Recovery of platinum group metals from refinery plant solutions by precipitation. Journal of Siberian Federal University. Series: Chemistry. 2016. Vol. 9, No. 1. pp. 6–12.
13. Kuzmina I. S., Litvyak M. A., Batsunov K. A., Ryabushkin A. I. Development of technology for irridium concentrate producton using a tubular autoclave at Copper Plant PGM Concentrator of PD PJSC “MMC “Norilsk Nickel”. Tsvetnye Metally. 2018. No. 6. pp. 59–64.
14. Mulwanda J., Dorfling C. Recovery of dissolved platinum group metals from copper sulphate leacj solutions by precipitation. Minerals Engineering. 2015. Vol. 80. pp. 50–56.
15. Lastochkina M. A., Vergizova Т. V., Greiver T. N. Reception of rich concentrates of platinum metals from semifinished products of copper-nickel production. Tsvetnye Metally. 2009. No. 9. pp. 66–71.

Language of full-text русский
Полный текст статьи Получить
Назад