Журналы →  Non-ferrous Мetals →  2019 →  №2 →  Назад

BENEFICATION
Название Examination of the preliminary gravity dressing influence on the Shalkiya deposit complex ore
DOI 10.17580/nfm.2019.02.01
Автор Motovilov I. Yu., Telkov Sh. A., Barmenshinova M. B., Nurmanova A. N.
Информация об авторе

Satbaev University, Almaty, Kazakhstan:

I. Yu. Motovilov, Assistant Professor, Department of Metallurgy and Mineral Processing, e-mail: motovilov88@inbox.ru
Sh. A. Telkov, Professor, Department of Metallurgy and Mineral Processing
M. B. Barmenshinova, Head of the Department of Metallurgy and Mineral Processing
A. N. Nurmanova, Assistant, Department of Metallurgy and Mineral Processing

Реферат

Recently, the ore base of the Republic of Kazakhstan has been characterized by involvement of rebellious and off-balance ores into processing. In this regard, much attention is paid to the methods of preliminary enrichment of mineral raw materials. The use of various methods of preliminary ore beneficiation allows removing a part of barren rock as well as harmful impurities from processing, thereby increasing quality of the feedstock, both in terms of metal content and material composition. The barren rock removal in the head of the process, as a rule, improves the mineral flotation conditions, reduces the consumption of reagents and operating costs for further processing, as well as allows involving the off-balance and rebellious ores into processing. This article presents the results of the heavy suspension gravity dressing of the Shalkiya deposit widely classified lumpy lead-zinc ore, and the study of grindability of both the original ore and gra vity dressing products according to the Bond procedure. When studying the lead-zinc ore gravity dressability, it has been found that the grade with size grade of 40–8 mm is optimal, and it has been determined that the optimal separation density required for the floating fraction precipitation is equal to 2730 kg/m3. As a result of gravity dressing, the material with a high content of waste minerals in the form of quartz, carbonates and coaly substances, with permissible minimum zinc and lead losses, is released to the floating fraction. According to the Bond procedure, the Wi Bond ball mill work index has been determined for original ore, sinking and floating fractions. It has been established that the barren rock removing in the head of an engineering process will allow to increase the content of non-ferrous metals in the sinking fraction relative to their content in the ore, to reduce power inputs for the sinking fraction grinding in comparison with the original ore grinding and, correspondingly, to increase the cost-performance of further ore processing.

This work was supported by grant No. AP05133980.

Ключевые слова Dressability, heavy suspension, floating fraction, sinking fraction, lead, zinc, silicon dioxide, Bond procedure, grindability, work index
Библиографический список

1. Andreev E. E., Tikhonov O. N. Crushing, grinding and preparation of raw material for enrichment: the Textbook. St.-Petersburg : SPGGI (TU), 2007. 440 p.
2. Lynch A. J. Mineral Crushing and Grinding Circuits: Their Simulation, Optimisation, Design and Control. Translated from English. Moscow : Nedra, 1981. 343 p.

3. Bond F. C. The Third Theory of Comminution. Transactions on AIME Mining Engineering. 1952. Vol. 193. pp. 484–494.
4. Ulitenko K. Ya., Morozov V. V. Laws of Changes of Environment Components Under the Influence of Oil-And-Gas Research Drilling Works in the Baikitskaya Antyclise. GIAB. 2014. No. 3. pp. 162–167.
5. Subbotin M. Yu. Analyses of Modern State and Prospects of Crushing and Grinding Equipment Development. Vestnik ChitGU. 2010. No. 8. pp. 100–105.
6. Foszcz D., Krawczykowski D., Gawenda T., Kasiska-Pilut E., Pawlos W. Analysis of Process of Grinding Efficiency in Ball and Rod Mills with Various Feed Parameters. IOP Conference Series: Materials Science and Engineering. 2018. Vol. 427. p. 12.
7. Chanturiya E. L., Vishkova A. A., Ananiev P. P., Tomskaya E. S., Koporulina E. V. Enhancement of Ore Grinding Under Energy Deposition. Gornyi Zhurnal. 2014. No. 12. pp. 63–69.
8. Singha V., Dixita P., Venugopalb R., and Venkatesha K. B. Ore Pretreatment Methods for Grinding: Journey and Prospects. Mineral Processing and Extractive Metallurgy Review. 2018. Vol. 40, Iss. 1. pp. 1–15.
9. Buttress A. J., Katrib J., Jones D. A., Batchelor A. R., Craig D. A., Royal T. A., Dodds C., Kingman S. W. Towards Large Scale Microwave Treatment of Ores: Part 1 – Basis of Design, Construction and Commissioning. Minerals Engineering. 2017. Vol. 109. pp. 169–183.
10. Batchelor A. R., Buttress A. J., Jones D. A., Katrib J., Way D., Chenje T., Stoll D., Dodds C., Kingman S. W. Towards Large Scale Microwave Treatment of Ores: Part 2 – Metallurgical Testing. Minerals Engineering. 2017. Vol. 111. pp. 5–24.
11. Handbook on the ores beneficiation. Concentrating plants. 2nd ed., rev. and supp. Edited by O. S. Bogdanov. Moscow : Nedra, 1984. 358 p.
12. Konev A. V., Shulgina K. A., Mironova Z. V. Rising the competitive capacity of domestic non-ferrous metallurgy with the use of preliminary beneficiation. Non-ferrous metals – 2013 : collection of articles of the V international congress. Krasnoyarsk: Verso, 2013. pp. 675–679.
13. Shtresler K. A., Mironova Zh. V., Konev A. V., Kiselyova S. P. Increase the Investment Potential of Deposits of Non-Ferrous Metals and Gold Pre-Enrichment. Zapiski Gornogo Instituta. 2013. Vol. 205. pp. 280–284.
14. Telkov Sh. A., Motovilov I. Yu., Barmenshinova M. B., Medyanik N. L., Daruesh G. S. Substantiation of Gravity Concentration to the Shalkiya Deposit Lead-Zinc Ore. Journal of Mining Science. 2019. No. 3. pp. 99–105.

Полный текст статьи Examination of the preliminary gravity dressing influence on the Shalkiya deposit complex ore
Назад