Журналы →  Eurasian mining →  2025 →  №2 →  Назад

PHYSICS OF ROCKS AND PROCESSES
Название Determenation of the excavation block bottom structure parameters using finite element numerical method stability analysis
DOI 10.17580/em.2025.05.08
Автор Radovanovic M., Pantovic R., Petrovic D., Stajic M.
Информация об авторе

University of Belgrade, Technical faculty in Bor, Bor, Republic of Serbia

Radovanovic M., Teaching Assistant, MSc in Mining Engineering, PhD Candidate, mlradovanovic@tfbor.bg.ac.rs
Pantovic R., Head of the Rock mechanics laboratory, Professor
Petrovic D., Head of the Underground mining department, Professor
Stajic M., Teaching Assistant, MSc in Mining Engineering, PhD Candidate

Реферат

The future of underground exploitation is reflected in the increase of the depth at which it takes place, considering that deposits at lower depths are mostly exploited. The increase in depth represents a challenge in mine design, because the increase in depth is accompanied by more difficult mining conditions. Also, one of the characteristics of underground exploitation in past years is the constant reduction of ore grades. That is the reason why caving methods take an important place in present mining. To provide safety mining environment using caving methods at greater depths it is necessary to ensure the stability of the excavation blocks. This can be achieved by selecting the optimal parameters of the excavation blocks and the proper construction of the bottom structure of the excavation blocks. In this paper, an analysis of the stability of the facilities at the bottom structure of excavation block was performed. The results of the numerical finite element analysis of the stress-strain state show that with proper bottom structure construction of the excavation block and with an appropriate layout of the loading chambers and drifts, satisfying stability can be achieved which ensures safety working conditions.

Ключевые слова Underground mining, mining methods, stability analysis, numerical methods, excavations, bottom structure, stresses
Библиографический список

1. Kurlenya M. V. Deep-Level Mineral Mining in Siberia and Russian Far East: Actual Objectives and Trends of Research. Journal of Mining Science. 2021. Vol. 57. pp. 539–545.
2. Puzder M., Pavlik T., Molokač M. et al. Cost-ratio model proposal and consequential evaluation of model solutions of manufacturing process in mining company. Acta Montanistica Slovaca. 2017. Vol. 22(3). pp. 270–277.
3. Wiecek D., Burduk A., Kuric I. The use of ANN in improving efficiency and ensuring the stability of the copper ore mining process. Acta Montanistica Slovaca. 2019. Vol. 24(1). pp. 1–14.
4. Malli T., Pamukcu C., Kose H. Determination of optimum production capacity and mine life considering net present value in open pit mining at different overall slope angles. Acta Montanistica Slovaca. 2015. Vol. 20(1). pp. 62–70.
5. Milicevic Z., Milic V. Underground mining technology of mineral deposits. Bor, Serbia : RDS Group, 2013. 332 p.
6. Milic V., Radovanovic M. Determination of the main parameters of semi-level induced caving method with lateral loading. Journal of Mining Science. 2021. Vol. 57. pp. 76–85.
7. Guo M., Tan Y., Chen D., Song W., Cao S. Optimization and Stability of the Bottom Structure Parameters of the Deep Sublevel Stope with Delayed Backfilling. Minerals. 2022. Vol. 12, Iss. 6. ID 709.
8. Campbell R., Banda H., Fajar J., Brannon C. Optimising for success at the Grasberg Block Cave. Proceedings of the Fourth International Symposium on Block and Sublevel Caving. 2018. pp. 3–16.
9. Cuello D., Newcombe G. Key geotechnical knowledge and practical mine planning guidelines in deep, high-stress, hard rock conditions for block and panel cave mining. Proceedings of the Fourth International Symposium on Block and Sublevel Caving, Australian Centre for Geomechanics, Perth. 2018. pp. 17–36.
10. Shelswell K. J., Labrecque P. O., Morrison D. M. Increasing productive capacity in block caving mines. Proceedings of the Fourth International Symposium on Block and Sublevel Caving, Australian Centre for Geomechanics, Perth. 2018. pp. 107–118.
11. Milicevic Z. Sublevel and Block Caving Methods. Bor (Serbia) : University of Belgrade Technical Faculty in Bor, 2008. 459 p.
12. Bajic S., Bajic D., Gluscevic B., Ristic Vakanjac V. Applaying the Vikor method to select the optimal underground mining technology. Comptes Rendus de L’Academie Bulgare des Sciences. 2023. Vol. 76, No. 1. pp. 96–104.
13. Jager A. J., Ryer J. A. Hanbook on Rock Engineering Practice for Tabular Hard Rock Mines. Braamfontein (RSA) : SIMRAC, 2001. 371 p.
14. Brady B. H. G., Brown E. T. Rock mechanics for underground mining 3rd Ed. Dordrecht : Springer, 2004. 628 p.
15. Sepehri M. Finite Element Analysis Model for Determination of In-situ and Mining Induced Stresses as a Function of Two Different Mining Methods Used at Diavik Diamond: thesis of inauguration of Dissertation … of Doctor of Engineering Sciences. Edmonton : University of Alberta, Department of Civil and Environmental Engineering, 2016. 305 p.
16. Galachenko 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.
17. Galachenko Yu. P., Eremenko V. A. Evolution of secondary stress field during underground mining of thick ore bodies. Eurasian Mining. 2021. No. 1. pp. 21–24.
18. Kosyreva M. A., Eremenko V. A. Numerical stress-strain modeling of honeycomb mine structures with vertical stopes of cylindrical form. Eurasian Mining. 2024. No. 1. pp. 36–39.
19. Wagner H. Deep Mining: A Rock Engineering Challenge. Rock Mechanics and Rock Engineering. 2019. Vol. 52. pp. 1417–1446.
20. Bobet A. Numerical methods in geomechanics. Arabian Journal for Science and Engineering. 2010. Vol. 35(1). pp. 27–48.
21. Nikolic M., Roje-Bonacci T., Ibrahimbegovic A. Overview of the numerical methods for the modelling of rock mechanics problems. Technical Gazette. 2016. Vol. 23, No. 2. pp. 627–637.
22. Mirenkov V. E. Deformation of Rock Mass in the Vicinity of Underground Opening at Great Depth. Journal of Mining Science. 2021. Vol. 57. pp. 380–385.

Полный текст статьи Determenation of the excavation block bottom structure parameters using finite element numerical method stability analysis
Назад