Журналы →  Obogashchenie Rud →  2016 →  №2 →  Назад

BENEFICIATION PROCESSES
Название Kinetics of recovery of particles with different mineral composition in lead-zinc ore flotation
DOI 10.17580/or.2016.02.04
Автор Shekhirev D. V., Smaylov B. B.
Информация об авторе

National University of Science and Technology MISiS (Russia):

Shekhirev D. V., Ph. D. in Engineering Sciences, Professor, shekhirev@list.ru
Smaylov B. B., National University of Science and Technology MISiS (Russia), Master of engineering and technology, Engineer

Реферат

The work studied flotation kinetics of separate forms of mineral presence (liberated particles of different size, intergrowths of certain type) in ore. The purpose of the work — elaboration of methods for obtaining initial data on flotability for subsequent modeling of flotation operations and flow sheets, as well as determination of flotation kinetic characteristics of minerals in different forms of presence under actual flotation conditions. Initial data for modeling is flotation rate of mono phases, defined as particles of certain mineral composition or component flotability fractions. Flotation kinetics regularities of particles of different mineral composition were established. Galenite flotation rate decrease is observed with particle size decrease, especially below 10 micron, both with respect of liberated galenite and intergrowths containing galenite. Flotoactive liberated sphalerite and pyrite, floated in spite of depression conditions, created for them, are composed of fractions of different flotability, which include fractions with high rate of flotation, that preclude from achieving needed lead concentrate grade through cleanings without application of basically different and stronger depressors. High-grade galenite intergrowths high rate of flotation is demonstrated. With that, increased presence of sphalerite and pyrite increases rate of flotation, and that of non-sulfide minerals — decreases it. With size decrease, both high-grade and low-grade intergrowths are floated at a slower rate. With respect of all studied sorts, distinguished by mineral composition and particle size, irregularity in flotation rate is observed, especially with respect of sphalerite and pyrite. Therefore, in modeling of flotation concentration processes of rebellious lead-zinc ores, additional division of ore sort into separate fractions with regard to flotation rate becomes necessary. This division is based on the method of kinetic experiment with subsequent quantitative mineralogical analysis of froth product portions.

The work was performed with the financial aid from the Ministry of Education and Science of the Russian Federation, the Project No. RFMEFI57514X0085.

Ключевые слова Flotation kinetics, distribution with respect to flotability, liberated mineral particles, intergrowths, particle size, quantitative mineralogical analysis
Библиографический список

1. Lynch A. J., Morrison R. D. Simulation in mineral processing history, present status and possibilities. Journal of The South African Institute of Mining and Metallurgy, 1999, October–December, pp. 283–288.
2. Schwarz S., Richardson J. M. Modeling and simulation of mineral processing circuits using JKSimMet and JKSimFloat. SME Annual Meeting & Exhibit (SME 2013) and CMA 115th National Western Mining Conference. Proceedings of a meeting held 24–27 February 2013, Denver, Colorado, USA. NY, Curran Associates, Inc., 2013.
3. King R. P. Modeling and simulation of mineral processing systems. Butterworth—Heinemann, 2001, 404 pp.
4. Barskiy L. A., Kozin V. Z. Sistemnyy analiz v obogashchenii poleznykh iskopayemykh (System analysis in mineral processing). Moscow, Nedra, 1978, 486 pp.
5. Tikhonov O. N. Zakonomernosti effektivnogo razdeleniya mineralov v protsessakh obogashcheniya poleznykh iskopayemykh (Regularities of effective separation of minerals in mineral beneficiation processes). Moscow, Nedra, 1984, 208 pp.
6. Rubinshtein Yu. B., Filippov Yu. A. Kinetika flotatsii (Kinetics of flotation). Moscow, Nedra, 1980, 375 pp.
7. Alexander D. J., Runge K. C., Franzidis J. P., Manlapig E. V. The application of multi-component floatability models to full scale flotation circuits. Proceedings of theAusIMM7th Mill Operators Conference, Kalgoorlie, Australia, October 2000, pp. 167–178.
8. Bogdanov O. S., Maksimov I. I., Podnek A. K., Yanis N. A. Teoriya i tekhnologiya flotatsii rud (Theory and technology of ore flotation). 2nd edition, revised and enlarged, Moscow, Nedra, 1990, 364 pp.
9. Bergh L., Yianatos J., Carrasco C. Operation of rougher flotation circuits aided by industrial simulator. Preprints of the 18th IFAC World Congress, Milano (Italy), August 28 — September 2, 2011, pp. 9917–9922.
10. Vinnett L., Alvarez-Silva M., Jaques A., Hinojosa F., Yianatos J. Batch flotation kinetics: Fractional calculus approach. Minerals Engineering, 2015, No. 77, pp. 167–171.
11. Bushel Ch. The PGM flotation predictor: Predicting PGM ore flotation performance using results from automated mineralogy systems. Minerals Engineering, 2012, October, Vol. 36–38, pp. 75–80.
12. Cveticanin L., Vucinic D., Lazic P., Kostovic M. Effect of galena grain size on flotation kinetics. Journal of Mining Sience, 2015, Vol. 51, No. 3, pp. 591–595.
13. Perez-Garibay R., Ramirez-Aguilera N., Bouchard J., Rubio J. Froth flotation of sphalerite: Collector concentration, gas dispersion and particle size effects. Mineral Engineering, 2014, Vol. 57, pp. 72–78.
14. Itiokumbul M. T., de Aquino J. A., O’Connor C. T., Harris M. C. Fine pyrite flotation in an agitated column cell. Int. J. Miner. Process., 2000, No. 58, pp. 167–178.
15. Goryachev B. E., Nikolaev A. A. Investigation of flotation kinetic of particles manufactured from preformed solids. Gorny Informatsionno-Analiticheskiy Byulleten (nauchno-tekhnicheskiy zhurnal) = Mining Informational and Analytical Bulletin (scientific and technical journal), 2011, No. 1, pp. 137–146.
16. Pan’kin A. V., Makavetskas A. R., Shekhirev D. V. An automated mineralogical analysis for beneficiation processes. Obogashchenie Rud = Mineral Processing, 2013, No. 1, pp. 40–43.
17. Pascual R. L. Whiten W. J. The determination of floatability distribution from laboratory batch cell tests. Minerals Engineering, 2015, Vol. 83, November, pp. 1–12.

Language of full-text русский
Полный текст статьи Получить
Назад