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HEAVY NON-FERROUS METALS
Название Oxidized nickel ore leaching with preliminary chloridizing roasting
DOI 10.17580/tsm.2019.02.03
Автор Kolmachikhina O. B., Naboichenko S. S., Boshnyak M. V., Galimyanov A. R.
Информация об авторе

Yeltsin Ural Federal University, Yekaterinburg, Russia:

O. B. Kolmachikhina, Senior Lecturer, Non-Ferrous Metallurgy Department, e-mail: o.b.kolmachikhina@urfu.ru
S. S. Naboychenko, Head of the Non-Ferrous Metallurgy Department
M. V. Boshnyak, Master’s Student, Non-Ferrous Metallurgy Department
A. R. Galimyanov, Master’s Student, Non-Ferrous Metallurgy Department

Реферат

Oxidized nickel ore deposits are located in the Chelyabinsk, Sverdlovsk, and Orenburg regions (the Serovskoe, Sakharinskoe, and Buruktalskoe deposits). Internationally, to process oxidized nickel ores, plants apply ferronickel smelting, autoclave sulfuric acid leaching or Karon’s process. Regarding a material composition of ore bodies, the Urals deposits show a great difference. The Serov group of deposits located in the north of the Sverdlovsk region is the largest in the Urals and may provide 90% of raw materials to Urals nickel plants. Ores from the Urals deposits cannot be processed by the mentioned technologies due to either a complex composition of raw materials (hydrometallurgical methods), or resulting cobalt losses (ferronickel smelting). The paper describes an oxidized nickel ore processing method with hydrochloric acid for preliminary chlorination of ore. When treating ore with hydrochloric acid, oxides and hydroxides of nickel, cobalt, and iron are transformed into water soluble chlorides; as a result of further roasting, iron chlorides are transformed into hematite. Then during water leaching nickel and cobalt chlorides are transferred into the liquor, and iron remains in a filter cake. The present experiments aim to reveal how roasting parameters (process temperature and time) influence recovery of nickel, cobalt, and iron into the liquor in further leaching of the cake. To effect a maximum nickel transition into the liquor, a key factor is acid consumption, and with regard to a minimum iron transition into the liquor – roasting temperature and time. As compared to direct leaching liquors, after leaching with roasting, liquors do not require several stages of neutralization and settling, as their residual acidity is not high, but iron concentration in the liquor is about 10 times lower than nickel concentration.

Ключевые слова Oxidized nickel ores, hydrochloric acid, roasting, leaching, recovery, liquor, iron, nickel, cobalt
Библиографический список

1. Global nickel market: mining, production, and consumption. Global economy. Available at: http://www.ereport.ru/articles/commod/nickel.htm (accessed: 14.01.2018).
2. Non-ferrous metallurgy review, global nickel production. Available at: http://textarchive.ru/c-2798666.html (accessed: 25.01.2018).
3. Naboychenko S. S., Ageev N. G., Doroshkevich A. P., Zhukov V. P., Lebed A. B., Mamyachenkov S. V. et al. Edited by Naboychenko S. S. Nonferrous metallurgy processes and machines. Yekaterinburg : UrFU, 2014. 687 p.
4. Mikhlin Y., Romanchenko A., Vorobyev S., Karasev S., Volochaev M., Kamenskiy E., Burdakova E. Ultrafine particles in ground sulfide ores: A comparison of four Cu – Ni ores from Siberia, Russia. Ore Geology Reviews. 2017. Vol. 81. pp. 1–9.
5. Starykh R. V., Pakhomov R. A. Melting of oxidized nickel ores in a barbotage unit: II. Experimental investigations. Russian Metallurgy (Metally). 2016. No. 7. pp. 587–591.
6. Serova N. V., Olyunina T. V., Lysykh M. P., Ermishkin V. A., Smirnova V. B. Thickening and rheological properties of slurries as functions of the oxidized nickel ore composition. Russian Metallurgy (Metally). 2016. No. 7. pp. 581–586.
7. Tsemekhman L. Sh., Tsymbulov L. B. Modern problems of pyrometallurgical processing of oxidized nickel ores in Russia. Tsvetnye Metally. 2016. No. 11. pp. 50–56. DOI: 10.17580/tsm.2016.11.04.
8. O'Driscoll B., Clay P. L., Cawthorn R. G., Lenaz D., Adetunji J., Kronz A. Trevorite: Ni-rich spinel formed by metasomatism and desulfurization processes at Bon Accord, South Africa. Mineralogical Magazine. 2014. Vol. 78. pp. 145–163.
9. Li J., Li D., Xu Z., Liao C., Liu Y., Zhong B. Selective leaching of valuable metals from laterite nickel ore with ammonium chloride-hydrochloric acid solution. Journal of Cleaner Production. 2018. Vol. 179. pp. 24–30.
10. Yu.V. Nesterov, A.V. Kantsel, et al. Procedure for complex processing nickel-cobalt raw material. Patent RF, No. 2393251. Applicant and patent owner: LLC INTEGRA RU. Applied: 30.01.2009. Published: 27.06.2010.
11. L. Malvin, V. Taylor, J. Nelson. Treatment of nickel leach liquor. Patent US, No. 3720749. Applied: 26.08.1970. Published: 13.03.1973.
12. Franklyn L., Manchanda S. Cawse: 10 years on. ALTA 2008 Nickel-Cobalt Conference. Perth, WA, 16–18 June 2008.
13. Harris B., Magee J., Valls R. Beyond PAL: The Chesbar option, AAL. ALTA 2003 Nickel-Cobalt-9 Conference. Perth, WA, 18–20 May 2003.
14. Harris G. B., Magee T. J., Lakshmanan V. I., Sridhar R. The Jaguar Nickel Inc. Sechol Laterite project atmospheric chloride leach process. Proceedings of International Laterite Nickel Symposium 2004. TMS Annual Meeting. Charlotte, North Carolina, 14–18 March 2004. p. 219.
15. Harris B., White C., Jansen M., Pursell D. A new approach to high chloride leaching of nickel laterites. ALTA Ni/Co 2006. Perth, WA, 15–20 May 2006.
16. Mu W., Cui F., Huang Z., Zhai Y., Xu Q., Luo S. Synchronous extraction of nickel and copper from a mixed oxide-sulfide nickel ore in a lowtemperature roasting system. Journal of Cleaner Production. 2018. Vol. 177.
17. Rahayu D., Maksum A., Soedarsono J. W. Effects of reduction time on carbothermic reduction of lateritic nickel ore using palm kernel shell as green reducing agent. IOP Conference Series: Earth and Environmental Science. 2018. Vol. 105.
18. GOST 6613–86. Square meshed woven wire cloths. Specifications. Introduced: 01.01.1988.
19. Tolstykh N. D., Shvedov G. I., Polonyankin A. A., Zemlyansky S. A. Mineralogical and geochemical feature of the disseminated ores of the southern part of the Norilsk 1 deposit. IOP Conference Series: Earth and Environmental Science. 2018. Vol. 110.

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