Журналы →  Gornyi Zhurnal →  2023 →  №1 →  Назад

GENERAL ISSUES OF GEOMECHANICS
Название The proneness assessment of a mineral deposit to tectonic rockburst: A case-study of Yuzhnoe deposit
DOI 10.17580/gzh.2023.01.12
Автор Rasskazov I. Yu., Batugin A. S., Fedotova Yu. V., Potapchuk M. I.
Информация об авторе

Khabarovsk Federal Research Center of the Far Eastern Branch of the Russian Academy of Sciences, Khabarovsk, Russia:

I. Yu. Rasskazov, Director, Doctor of Engineering Sciences, Corresponding Member of the Russian Academy of Sciences

 

NUST MISIS, Moscow, Russia:
A. S. Batugin, Professor, Doctor of Engineering Sciences, as-bat@mail.ru

 

Institute of Mining, Far East Branch, Russian Academy of Sciences, Khabarovsk, Russia:
Yu. V. Fedotova, Leading Researcher, Candidate of Engineering Sciences
M. I. Potapchuk, Leading Researcher, Candidate of Engineering Sciences

Реферат

The procedure of the proneness assessment to tectonic rockburst (with fault-slip mechanism) is insufficiently described in guidelines and regulatory documents, thus, additional investigations are required in this regard. The tectonic rockburst proneness criteria at Yuzhnoe deposit, Primorye are considered to be the location of large faults in the modern stress field and the critical stress state of rock mass. It is found that the maximum (compression) principal stress, reconstructed using the methods of tectonophysics and the data on rock mass faulting, fits the orientation of the maximum compression in the stress field, determined by instrumental measurements. In this stress field, in the plane nearby the plane of the effective maximum shear stresses, a large fault exists and is traced underground and on ground surface for more than 10 km. The analysis of geodynamics at the deposit, deformation of boundaries of underground excavations, core discing in wells far from the underground excavations, as well as rock bursts both at the study deposit and at the similar Nikolaevskoe deposit nearby shows that the level of the natural stresses at Yuzhnoe deposit is rather high and the rock mass is everywhere in the critical stress state. Yuzhnoe deposit is assumed to be to tectonic rockburst prone as both criteria are fulfilled: the rock massif is in the critical stress state and there is large fault which lies comfortably for mutual movement of rock blocks.
The studies were carried out using facilities of the Center for Shared Use of Scientific Equipment at the Center for Processing and Storage of Scientific Data of the Far East Branch of the Russian Academy of Sciences, supported by the Ministry of Science and Higher Education of the Russian Federation, Project No. 075-15-2021-663.

Ключевые слова Yuzhnoye deposit, dynamic phenomena, tectonic rockbursts, modern stress field, tectonic faults, critical stress state
Библиографический список

1. Kozyrev A. A., Onuprienko V. S., Zhukova S. A., Zhuravleva O. G. Induced seismicity of rock mass: development of instrumental and methodological support to control seismicity at the Khibiny apatite-nepheline deposits. Gornyi Zhurnal. 2020. No. 9. pp. 19–26. DOI: 10.17580/gzh.2020.09.02
2. Dimitrakopoulos R. Advances in Applied Strategic Mine Planning. Cham : Springer, 2018. 800 p.
3. Lovchikov A. V. Review of the Strongest Rockbursts and Mining-Induced Earthquakes in Russia. Journal of Mining Science. 2013. Vol. 49, Iss. 4. pp. 572–575.
4. Scott D. F., Williams T. J., Friedel M. J. Investigation of a Rockburst Site. Rockbursts and Seismicity in
Mines : Proceedings of the 4th International Symposium. Rotterdam : CRC Press, 1997. pp. 311–315.
5. Ortlepp W. D., Stacey T. R. Rockburst mechanisms in tunnels and shafts. Tunnelling and Underground Space Technology. 1994. Vol. 9(1). pp. 59–65.
6. Petukhov I. M. Rock bursts in coal mines. 2nd edition, revised and enlarged. Saint-Petersburg : VNIMI, 2004. 237 p.
7. Peng Z., Wang Y. H., Li T. J. Griffith theory and rock burst of criterion. Chinese Journal of Rock Mechanics and Engineering. 1996. Vol. 15. pp. 491–495.
8. Kidybiński A. Bursting liability indices of coal. International Journal of Rock Mechanics and Mining Sciences & Geomechanics Abstracts. 1981. Vol. 18, Iss. 4. pp. 295–304.
9. Singh S. P. Classification of mine workings according to their rockburst proneness. Mining Science and Technology. 1989. Vol. 8, Iss. 3. pp. 253–262.
10. Jian Zhou, Xibing Li, Hani S. Mitri. Classification of rockburst in underground projects: Comparison of ten supervised learning methods. Journal of Computing in Civil Engineering. 2016. Vol. 30, Iss. 5. DOI: 10.1061/(ASCE)CP.1943-5487.0000553
11. Mansurov V. A. Prediction of rockbursts by analysis of induced seismicity data. International Journal of Rock Mechanics and Mining Sciences. 2001. Vol. 38, Iss. 6. pp. 893–901.
12. Razumov E. E., Rukavishnikov G. D., Mulev S. N., Prostov S. M. Basic principles for building seismic monitoring systems in rockburst-hazardous coal seam mining. Gornyi Zhurnal. 2021. No. 1. pp. 8–12. DOI: 10.17580/gzh.2021.01.02
13. Sidorov D. V., Ponomarenko T. V. Estimation methodology for geodynamic behavior of nature-andtechnology systems in implementation of mineral mining projects. Gornyi Zhurnal. 2020. No. 1. pp. 49–52. DOI: 10.17580/gzh.2020.01.09
14. Eremenko A. A., Mashukov I. V., Eremenko V. A. Geodynamic and Seismic Events under Rockburst-Hazardous Block Caving in Gornaya Shoria. Journal of Mining Science. 2017. Vol. 53, Iss. 1. pp. 65–70.
15. Manchao He, Ribeiro e Sousa L., Miranda T., Gualong Zhu. Rockburst laboratory tests database—Application of data mining techniques. Engineering Geology. 2015. Vol. 185. pp. 116–130.
16. Tarasov B. G. Post-limit properties and correlation with spontaneous fracture dynamics in rocks. Gornyi Zhurnal. 2021. No. 1. pp. 13–19. DOI: 10.17580/gzh.2021.01.03
17. Kotikov D. A., Shabarov A. N., Tsirel S. V. Connecting seismic event distribution and tectonic structure of rock mass. Gornyi Zhurnal. 2020. No. 1. pp. 28–32. DOI: 10.17580/gzh.2020.01.05
18. Cook N. G. W. (Ed.). An industry guide to the amelioration of the Hazards of rockburst and rockfalls. Johanesburg : Chamber of Mines of South Africa, 1977.
19. Shemyakin E. I., Kurlenya M. V., Kulakov G. I. Classification of Rock Bursts. Soviet Mining Science. 1986. Vol. 22, Iss. 5. pp. 329–336.
20. Batugina I. M., Petukhov I. M. Geodynamic Zoning of Mineral Deposits for Planning and Exploitation of Mines. New Delhi : Oxford and IBH Publishing Co. Pvt. Ltd., 1990. 159 p.
21. Osokina D. N. Hierarchical properties of a stress field and its relation to fault displacements. Journal of Geodynamics. 1988. Vol. 10, Iss. 2-4. pp. 331–344.
22. Foulger G. R., Wilson M. P., Gluyas J. G., Julian B. R., Davies R. J. Global review of human-induced earthquakes. Earth-Science Reviews. 2018. Vol. 178. pp. 438–514.
23. Islam M. R., Shinjo R. Mining-induced fault reactivation associated with the main conveyor belt roadway and safety of the Barapukuria Coal Mine in Bangladesh: Constraints from BEM simulations. International Journal of Coal Geology. 2009. Vol. 79, Iss. 4. pp. 115–130.
24. Galchenko Yu. P., Eremenko V. A., Kosyreva M. A., Vysotin N. G. Features of secondary stress field formation under anthropogenic change in subsoil during underground mineral mining. Eurasian Mining. 2020. No. 1. pp. 9–13. DOI: 10.17580/em.2020.01.02
25. Batugin A. A proposed classification of the Earth’s crustal areas by the level of geodynamic threat. Geodesy and Geodynamics. 2021. Vol. 12, Iss. 1. pp. 21–30.
26. Rasskazov I. Yu., Fedotova Yu. V., Sydlyar A. V., Potapchuk M. I. Analysis of induced seismic events in rockburst-hazardous Nikolaevsk deposit. GIAB. 2020. No. 11. pp. 46–56.
27. Freydin A. M., Shalaurov V. A., Eremenko A. A. et al. Increasing of efficiency of underground mining of ore deposits in Siberia and Far East. Novosibirsk : Nauka, 1992. 177 p.
28. Pilenkov Yu. Yu. Shock capacity of the “Southern” polymetallic deposit in Primorye. Journal of Mining Science. 1995. Vol. 31, Iss. 2. pp. 87–96.

Language of full-text русский
Полный текст статьи Получить
Назад