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ORE PREPARATION
Название Sylvinite ore thermochemical modification by means of super high frequency thermal treatment
DOI 10.17580/or.2017.06.01
Автор Arsentyev V. A., Gerasimov A. M., Kotova E. L.
Информация об авторе

REC «Mekhanobr-Tekhnika» (St. Petersburg, Russia):

Arsentyev V. A., Research and Development Director, Doctor of Engineering Sciences, ava@npk-mt.spb.ru
Gerasimov A. M., Researcher, Candidate of Engineering Sciences, gerasimov_am@npk-mt.spb.ru

 

St. Petersburg Mining University (St. Petersburg, Russia):
Kotova E. L., Senior Researcher, Candidate of Geological and Mineralogical Sciences, kotova_elena@spmi.ru

Реферат

The existing methods of sylvinite ore processing, especially with increased content of water-insoluble fraction, are based on fine grinding of all treated ore, desliming, flotation and dewatering. The investigations performed with a view to develop dry methods of potash ores processing are described in the published literature. However, practically all proposed dry processing technologies demand preliminary thermal treatment. The results of the investigation performed with a view to reveal structural and chemical changes in sylvinite ore components, affecting processing behavior in beneficiation, as well as to search the ways to reduce thermochemical modification costs, are presented. The tests were conducted on abraum salts from the Verkhnekamskoye field (Perm Territory). Taking into consideration that water-insoluble fractions content in sylvinite ore is 3–6 %, an attempt was made to heat the ore in such a way that water-insol-uble fraction would be mainly heated, with minimal heating of salt minerals — halite and sylvite. Super high frequency (SHF) thermal treatment was applied. The obtained data show that water-insoluble fractions SHF heating rate significantly exceeds the heating rate and the temperatures achieved on salt minerals. In order to estimate the changes in sylvinite ore processing behavior following SHF heating, experiments were performed on settling in water the water-insoluble fraction, extracted from ore, and also sylvinite ore flotation tests were conducted. It was established that sylvinite ore thermal treatment in the range of 100–500 °С insignificantly affects halite and sylvite structure, but significantly changes the structure of minerals in water-insoluble fraction, thus influencing upon processing behavior of sylvinite ores. In order to decrease energy costs in thermal treatment, SHF heating was proposed with a view to provide selective heating of minerals in water-insoluble fraction. It has been shown that with SHF heating, the changes in sylvinite ore processing behavior are similar to those observed with convective heating.
The studies were performed with the aid of the Russian Science Foundation Grant (Project No. 15-17-30015).

Ключевые слова Sylvinite, thermochemical modification, SHF heating, sylvite, halite, water-insoluble fraction, crystal structure
Библиографический список

1. Liskova M. Yu. Geoecology with modern construction enterprises on extraction and enrichment of potassium and magnesium salts. Izvestiya Tulskogo GU. Nauki o Zemle. 2016. Iss. 4. pp. 39–49.
2. Rauche H. A. M., Fulda D. Tailings and disposal brine reduction — design criteria for potash production in the 21-st century. Proc. of 8 International сonference on tailings and mine waste’01, Colorado, USA, Jan. 16–19, 2001. Rotterdam: Brookfield, 2001. pp. 85–92.
3. Baturin E. N., Menshikova E. A., Blinov S. M., Naumov D. Yu., Belkin P. A. Problems of the development of the world largest potash deposits. Sovremennye Problemy Nauki i Obrazovaniya. 2012. No. 6. pp. 613–622.
4. Titkov S. N. Technology of potash ore dry crushing to flotation size. IX Congress of CIS countries mineral processors. Collection of materials. Vol. 2. Moscow: MISiS, 2013. pp. 578–583.
5. Author's certificate 453389 USSR.
6. Shemyakina M. G., Molokovich S. O., Smychkova A. N., Stromsky A. S. Sylvinite ore processing by means of magnetic separation method. Obogashchenie Rud. 2009. No. 6. pp. 12–13.
7. Palivoda E. N., Kuptel G. A. Estimation of the possibility of Starobinskoye deposit potassium ore beneficiation by electric method. Science for education, production, economics: materials of the 12th Intern. scientific-techn. conf. Vol. 3. Minsk: BNTU, 2017. pp. 29–30.
8. Titkov S. N., Mamedov A. I., Solovyev E. I. Potash ores beneficiation. Moscow: Nedra, 1982. 216 p.
9. Zhdanovich I. B., Rudakovskaya T. G., Mozheiko F. F., Shevchuk V. V. Effect of salt clays' thermal treatment on structural and rheology properties of their dispersions. Vesti Natsionalnoy Akademii Nauk Belarusi. Seriya Khimicheskikh Nauk. 2011. No. 3. pp. 113–117.
10. Pat. 2465204 Russian Federation.
11. Author's certificate 464571 USSR.
12. Mozheyko F. F., Potkina T. N. Physico-chemical
principles for enrichment of highly clayey off-balance sylvinite ores. Vesti Natsionalnoy Akademii Nauk Belarusi. Seriya Khimicheskikh Nauk. 2008. No. 4. pp. 25–32.
13. Tompson Y. B., Waldbaum D. E. Analysis of the two-phase region halite-sylvite NaСl/KCl. Geochimica et Cosmochimica Acta. 1969. Vol. 33, No. 6. pp. 671–690.
14. Green E. Y. Predictive thermodynamic models of the mineral systems: Quasi-chemical analysis of the halitesylvite subsolids. The American Mineralogist. 1970. Vol. 55. pp. 1692–1713.
15. Sterner S. M., Chou I.-Ming, Downs R. T., Pitzer K. S. Phase relations in system NaCl-KCl-H2O: V. Thermodynamic-PTX analysis of solid-liquid equilibria at high temperatures and pressures. Geochimica et Cosmochimica Acta. 1992. Vol. 56, Iss. 6. pp. 2295–2309.
16. Walker D., Verma P. K., Cranswick L. M. D., Jones R. L., Clark S. M., Buhre S. Halite-sylvite thermoelasticity. American Mineralogist. 2004. Vol. 89, Iss. 1. pp. 204–210.
17. Samukov A. D., Gladkova V. V. Thermal treatment effect upon sylvinite ore disintegration. Obogashchenie Rud. 2017. No. 5. pp. 7–14. DOI: 10.17580/or.2017.05.02.
18. Teterina N. N., Sabirov R. Kh., Skvirskiy L. Ya., Kirichenko L. N. Technology of potash ores flotation. Perm: OGUP Solikamskaya tipografiya, 2002. 484 p.
19. Prokopenko A. Microwave heating for emolliating fracture of rock. Advances in induction and microwave heating of mineral and organic materials. S. Grundas (Ed.). InTech, 2011. p. 752.
20. Graham J. Microwaves for coal quality improvement: The Drycol Project. International Pittsbrugh Coal Conference, Johannesburg, South Africa, September 10–14, 2007. pp. 1–12.
21. Young J., Lawson S. Introducing Microwave beneficiation. World Coal. 2017. March.

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