Журналы →  Gornyi Zhurnal →  2022 →  №1 →  Назад

APPLIED RESEARCHES
Название Kinematic analysis of rock mass movement parameters in mining systems with caving
DOI 10.17580/gzh.2022.01.13
Автор Sergunin M. P., Marysyuk V. P., Darbinyan T. P., Sabyanin G. V.
Информация об авторе

NorNickel’s Polar Division, Norilsk, Russia:

M. P. Sergunin, Head of the Department for Geotechnical Supervision of Mining at the Geodynamic Safety Center, SerguninMP@nornik.ru
V. P. Marysyuk, Chief Geotechnical Engineer—Director of the Geodynamic Safety Center, Candidate of Engineering Sciences
T. P. Darbinyan, Director of the Mining Department

 

NorNickel, Moscow, Russia:
G. V. Sabyanin, Head of the Mining and Processing Management at the Industrial Engineering Department, Candidate of Engineering Sciences

Реферат

The basic method of ground control in the mining systems with caving is overlying rock caving. The mining conditions of thick and gently dipping ore bodies with caving are reviewed as a case-study of Zapolyarny Mine. The research is grounded on the data of instrumental monitoring of overlying rock mass movement and on the detection results of the main jointing systems in the mine. The review of the instrumental monitoring data and the kinematic analysis allowed correlation of the existing jointing system parameters and the actual indicators of overlying rock mass movement. After generalization of all information, it is found that the movement mechanism is connected with displacements along the planes of steep-dip systems of joints (or with displacement of wedges formed when a number of joint systems intersect), and some blocks can even rotate in some areas. The latter takes place because of the concurrent displacements along the steep-dip and flat-dip systems of joints. Such movement behavior is confirmed by the instrumental monitoring data which show both sinking and upheaval of registration marks in some areas. The kinematic analysis results agree with the field observation data and can be used in learning neural networks to solve problems on determination of displacement angles. The results are also applicable in selecting directions for mining with caving with regard to the optimal conditions of roof caving at the minimized loading of the edge rock mass.

Ключевые слова Overlying rock mass, movement mechanism, kinematic analysis, geotechnical software Dips, displacement angles, actual jointing
Библиографический список

1. He Chen, Shibo Yu, Zhixiu Wang, Ye Yuan. A New Plugging Technology and Its Application for the Extensively Collapsed Ore Pass in the Non-Empty Condition. Energies. 2018. Vol. 11, Iss. 6. 1599. DOI: 10.3390/en11061599
2. Bahrani N., Hadjigeorgiou J. Influence of Stope Excavation on Drift Convergence and Support Behavior: Insights from 3D Continuum and Discontinuum. Rock Mechanics and Rock Engineering. 2018. Vol. 51, Iss. 8. pp. 2395–2413.
3. Arsenev-Obraztsov S. S., Pozdnyakov A. P. Application of interferometric synthetic aperture radar (INSAR) technique to address the challenges of petroleum field geology and oil and gas field development. GAS Industry of Russia. 2020. No. 3(798). pp. 38–44.
4. Solomennikov M. Yu., Musikhin V. V., Kharina N. M. Estimation of the accuracy of the determination of subsidence obtained by radar interferometry from satellite images of Envisat and Terrasar-X on the territory of the industrial site of Berezniki. Marksheyderskiy vestnik. 2017. No. 2(117). pp. 44–49.
5. Sergunin M. P., Eremenko V. A. Learning of neural network to predict overlying rock mass displacement parameters by the data on jointing in terms of the Zapolyarny mine. GIAB. 2019. No. 10. pp. 106–116.
6. Instruction on observations of rock and earth surface movement during the underground mining of ore deposits. Moscow : Nedra, 1988. 112 p.
7. Studies into the rock mass movement and pressure-induced events during mining in Zapolyarny, Tsentralnaya and Kaierkan Mines : Report. Norilsk, 1961.
8. Guidelines on ground surface movement parameters in Zapolyarny Mine. Saint-Petersburg : VNIMI, 1986.
9. Fisenko G. L., Pustovoytova T. K., Mochalov A. M., Galustyan E. L., Gurin A. N. et al. Rules of provision of slope stability on coal cuts. Saint Petersburg : VNIMI, 1998. 208 p.
10. Gaziev E. G., Rechitskiy V. I., Freyberg E. P. P-843-86. Guidelines on hard rock slope stability assessment. Moscow, 1986. 52 p.
11. Mansurov V. A., Zhakanov K. K., Ermoshkin N. N. Geotechnical prerequisites for safe and efficient accessing and mining of thick coal seam in highlands. Gornyi Zhurnal. 2021. No. 1. pp. 107–111. DOI: 10.17580/gzh.2021.01.18
12. Lephatsoe M. N., Hingston E. D. C., Ferentinou M., Lefu N. Kinematic analyses of the western pitwall of the main pit in the Letseng Diamond mine, Lesotho. Rock Engineering and Rock Mechanics: Structures in and on Rock Masses. London : Taylor & Francis Group, 2014. pp. 613–618.
13. Lefu N., Hingston E. D. C., Lephatsoe N. Investigation of failures associated with a major shear zone in the Main Pit Cut 3 West, at Letšeng Diamond Mine, Lesotho. Rock Mechanics for Africa : ISRM International Symposium. Cape Town, 2017. pp. 365–376.
14. Bushkov V. K. Use of kinematic stability analysis in substantiation of basic wall design parameters for open pits. GIAB. 2018. No. 10. pp. 30–42.
15. Sergunin M. P., Darbinyan T. P. Identification of rock mass jointing parameters in geological models in modern geoinformation systems (in terms of Micromine). Gornyi Zhurnal. 2020. No. 1. pp. 39–42. DOI: 10.17580/gzh.2020.01.07
16. 30+years of Dips – The Development Continues. Rocscience Inc., 2021. Available: https://www.rocscience.com/learning/30-years-of-dips-the-development-continues (accessed: 15.12.2021).

Language of full-text русский
Полный текст статьи Получить
Назад