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FROM THE OPERATIONAL EXPERIENCE OF THE MINING COMPANIES AND THE ORGANIZATIONS
OJSC «URALMEKHANOBR»
Название Experience of kimberlite mining by diamondshaped stopes in the Aikhal mine
DOI 10.17580/gzh.2019.09.02
Автор Kotenkov A. V.
Информация об авторе

OJSC «Uralmekhanobr», Yekaterinburg, Russia:

A. V. Kotenkov, Deputy Head of Mining Science Department, gpgr@umbr.ru

Реферат

The parameters of the stoping space formation are considered in terms of the Ural copper–sulphide ore mining based on the analysis of survey data from 130 mined-out stopes. The ways of increasing stability of the stoping elements are optimized angles of inclination of sidewalls and shapes of minedout stopes. The principle of staggered arrangement of stopes, which allows enlarging mined-out area in stopes in weak ore, is justified. The optimal structure is selected for the stoping system to enhance its efficient and output. The experience of excavating soft ore by diamond-shaped stopes arranged in staggered order, with subsequent backfill at the Aikhal kimberlite deposit is presented. It is revealed that the most difficult stage of transition from slicing to cut & fill stoping is extraction of ore in the zone of transition from trapezoid to diamond-shaped stopes. It is necessary to carry out the fullest possible backfill of these stopes to minimize ore dilution by backfill material. Extraction of ore reserves beneath the transition zone meets no difficulties; the diamond-shaped mined-out area is formed in stopes. It is found that diamond-shaped stopes retain their stability for the entire period of stoping and backfilling. Extraction of kimberlite ore can be carried out effectively and safely by diamond-shaped stopes with calculated parameters. Rocks from drivage are entirely placed at the top of the mined-out diamond-shaped stopes during their backfill (discharge to ground surface is ceased).

Ключевые слова Kimberlite ore, slice mining, stable mined-out-are shape, diamond-shaped stopes, staggered arrangement, mining system structure, drilling and blasting, mine airing, backfill parameters
Библиографический список

1. Volkov Yu. V., Zavyalov B. M., Sokolov I. V. Tendencies of global ore mining development. Gornaya promyshlennost. 2006. No. 2. pp. 62–64.
2. Badtiev B. P., Galaov R. B., Marisyuk V. P. Chamber system for development of impregnated ores in conditions of undermining at mine «Komsomolsky». Gornyi Zhurnal. 2009. No. 10. pp. 58–60.
3. Medvedev V. V., Pakulov V. V. Improving efficiency of room-and-pillar systems with a backfill in complex environmental conditions. Izvestiya Sibirskogo otdeleniya RAEN. Geologiya, poiski i razvedka rudnykh mestorozhdeniy. 2015. No. 3(52). pp. 61–67.
4. Tapsiev A. P., Freidin A. M., Uskov V. A., Anushenkov A. N., Filippov P. A. et al. Resource-saving geotechnologies for thick gently dipping complex ore deposits in the Norilsk region. Journal of Mining Science. 2014. Vol. 50, Iss. 5. pp. 904–913.

5. Sainsbury B., Sainsbury D., Vakili A. Discrete analysis of open stope stability. International Seminar on Design Methods in Underground Mining. Nedlands : Australian Centre for Geomechanics, 2015. pp. 79–94.
6. Vallejos J. A., Delonca A., Fuenzalida J., Burgos L. Statistical analysis of the stability number adjustment factors and impli cations for underground mine design. International Journal of Rock Mechanics and Mining Sciences. 2016. Vol. 87. pp. 104–112.
7. Nagaratnam Sivakugan, Ryan Veenstra, Niroshan Naguleswaran. Underground Mine Backfilling in Australia Using Paste Fills and Hydraulic Fills. International Journal of Geosynthetics and Ground Engineering. 2015. Vol. 1, Iss. 2.
8. Villaescusa Е. Geotechnical Design for Sublevel Open Stoping. Boca Raton : CRC Press, 2014. 481 p.
9. Tokmantsev M. S. Methods of ore quality conservation during cut-and-fill mining. Problems of Subsurface Development in the 21st Century in the Eyes of the Young : Proceedings of the 10th International School of Young Scientists and Specialists.Moscow, 2013. pp. 115–118.
10. Instructional guidelines on slope angle determination for pitwalls, benches and dumps at open pit mines in operation and under construction. Leningrad, 1972. 165 p.
11. Borshch-Komponiets V. I., Makarov A. B. Strata pressure in mining thick flat ore bodies. Moscow : Nedra, 1986. 270 p.
12. Tokmurzin O. T. Determination of ultimate height of flat slopes in uniform medium. Izvestiya vuzov. Gornyi zhurnal. 1978. No. 5. pp. 18–21.
13. Dik Yu. A., Kotenkov A. V., Tankov M. S. Geomechanical substantiation of chequered room-and-pillar mining with backfilling. Gornyi Zhurnal. 2014. No. 9. pp. 41–45.
14. Kotenkov A. V. Chamber system of development with filling for ore extraction in complex geological conditions. Izvestiya vuzov. Gornyi zhurnal. 2014. No. 5. pp. 23–29.
15. Dik Yu. A., Kotenkov A. V., Tankov M. S., Mining V. V., Kulminskiy A. S., Arestov O. Yu. Method to develop edge ore bodies with unstable ores. Patent RF, No. 2515285. Applied: 02.04.2012. Published: 10.05.2014. Bulletin No. 13.
16. Tankov M. S. Brand-new mining technology for the Yakovlevo high-grade iron ore. Hybrid Technology as Transition to a New Mode in Engineering : X International Scientific-and-Technical Conference Proceedings. Magnitogorsk, 2019. pp. 133–134.

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