Журналы →  Obogashchenie Rud →  2020 →  №2 →  Назад

BENEFICIATION TECHNOLOGY
Название Increased magnetic field induction separators in titanium magnetite ore processing
DOI 10.17580/or.2020.02.03
Автор Pelevin A. E., Sytykh N. A.
Информация об авторе

Ural State Mining University (Ekaterinburg, Russia):

Pelevin A. E., Professor, Doctor of Engineering Sciences, Associate Professor, a-pelevin@yandex.ru

 

EVRAZ KGOK (Kachkanar, Russia):
Sytykh N. A., Head of Quality Control Department

Реферат

The processing technology for magnetite-containing ores involving increased magnetic field induction separators in the first stage of wet magnetic separation (WMS) is considered. The results of laboratory tests are shown, confirming the possibility of increasing the concentrate yield and iron recovery into the concentrate when the magnetic field of the separator is increased by induction from 0.12 to 0.25 T. The magnetic forces acting on particles in industrial separators with magnetic field induction of 0.16 and 0.25 T are calculated. The theoretical calculations demonstrate that an increase in magnetic field induction allows particles with lower magnetic susceptibility to be recovered into the magnetic product. This should lead to lower iron losses with the tails of the first WMS stage. The results of fullscale tests of the circuit using increased magnetic field induction separators at the first stage of wet magnetic separation are presented. With an increase in induction from 0.16 to 0.2–0.25 T, the concentrate yield grew by 0.35 % and iron recovery into the concentrate improved by 0.75 %. The mass fractions of Fe and Femagn in the total tailings decreased from 5.87 to 5.76 % and from 0.53 to 0.42 %, respectively. The mass fraction of iron in the concentrate decreased from 61.2 to 60.7 %, which is associated with the lower mass fraction of class –0.071 mm in the concentrate, dropping from 81.1 to 76.5 %. The increase in the concentrate particle size was due to the higher amounts of the magnetic product obtained when using increased magnetic field induction separators. This led to higher loads at the subsequent grinding stage. The final conclusion on the applicability of the technology considered shall be made based on the respective trade-off study of the available options.

Ключевые слова Increased magnetic field induction, titanium magnetite ore, magnetic separator, middlings, concentrate yield, mass fraction of iron, tailings
Библиографический список

1. Vaisberg L. A., Korovnikov А. N. Fine screening as an alternative to hydraulic classification by size. Obogashchenie Rud. 2004. No. 3. pp. 23–34.
2. Pelevin A. E., Sytykh N. A. Titanomagnetite ore twostage grinding circuit tests. Obogashchenie Rud. 2018. No. 2. pp. 13–18. DOI: 10.17580/or.2018.02.03.
3. Mwale A. N., Mainza A. N., Bepswa P. A., Simukanga S., Masinja J. Мodel for fine wet screening. XXVIII IMPC Proceedings. Quebec, Canada, 2016. Paper ID: 568.
4. Markauskas D., Kruggel-Emden H. Coupled DEMSPH simulations of wet continuous screening. Advanced Powder Technology. 2019. Vol. 30, Iss. 12. pp. 2997–3009.
5. Pelevin A. E., Sytykh N. A. Iron concentrate stage separation by means of drum magnetic separator with modified separating bath. Obogashchenie Rud. 2016. No. 4. pp. 10–15. DOI: 10.17580/or.2016.04.02.
6. Opalev A. S., Scherbakov A. V. Development and implementation of energy saving technology of beneficiation of ferruginous quartzites in the JSC «Olkon». Trudy Kolskogo Nauchnogo Tsentra RAS. 2015. No. 3. pp. 176–184.
7. Vaisberg L. A., Dmitriev S. V., Mezenin A. O. Controllable magnetic anomalies in mineral processing technologies. Gornyi Zhurnal. 2017. No. 10. pp. 26–32. DOI: 10.17580/gzh.2017.10.06.
8. Yakubailik E. K., Ganzhenko I. M., Butov P. Yu., Kilin V. I. Reduce the loss iron in the wet separation in high fields. Zhurnal Sibirskogo Federalnogo Universiteta. Seriya: Tekhnika i Tekhnologii. 2016. Vol. 9, No. 8. pp. 1302–1310.
9. Pelevin A. E., Tsypin E. F., Koltunov A. V., Komlev S. G. High-intensity magnetic separators with permanent magnets. Izvestiya Vysshikh Uchebnykh Zavedeniy. Gornyi Zhurnal. 2001. No. 4–5. pp. 133–136.
10. Pivnyak G. G., Vaisberg L. A., Kirichenko V. I., Pilov P. I., Kirichenko V. V. Grinding. Energy and technology. Мoscow: Ruda i Metally, 2007. 296 p.
11. Kalashnikov V. A., Golovko L. G., Dyrda V. I., Stoiko A. V., Khmel’ I. V. The rubber lining of the ball mill in the new resource-saving and energy-saving technology for the comminution of the strong ore. Chernaya Metallurgiya. Byulleten' Nauchno-tekhnicheskoy i Ekonomicheskoy Informatsii. 2016. No. 1. pp. 70–74.
12. Kirnarskiy A. S. Screen and (or) hydrocyclone? Gornyi Zhurnal. 2014. No. 1. pp. 69–72.
13. Tripathy S. K., Singh V., Murthy Y. R., Banerjee P. K., Suresh N. Influence of process parameters of dry high intensity magnetic separators on separation of hematite. International Journal of Mineral Processing. 2017. Vol. 160. pp. 16–31. DOI: 10.1016/j.minpro.2017.01.007.
14. Liu Sh., Zhou Yu., Li X., Cao Ch. Research on the separating features of a permanent magnetic drum separator designed with strong specific magnetic force and open magnetic system. XXVIII IMPC Proceedings. Quebec, Canada, 2016. Paper ID: 395.
15. Parian M., Lamberg P., Rosenkranz J. Developing a particle-based process model for unit operations of mineral processing — WLIMS. International Journal of Mineral Processing. 2016. Vol. 154, pp. 53–65. DOI: 10.1016/j.minpro.2016.07.001.

Language of full-text русский
Полный текст статьи Получить
Назад