Журналы →  Gornyi Zhurnal →  2024 →  №3 →  Назад

MINING PROCESSES
Название Stress–strain determination in Oktyabrsky Mine SS-1 skip shaft area by overcoring
DOI 10.17580/gzh.2024.03.04
Автор Marysyuk V. P., Trofimov A. V., Kirkin A. P., Shutov A. A.
Информация об авторе

NorNickel’s Polar Division, Norilsk, Russia

V. P. Marysyuk, Chief Geotechnical Engineer—Director, Center for Geodynamic Safety, Candidate of Engineering Sciences

 

Geotechnique Laboratory, Gipronickel Institute, Saint-Petersburg, Russia
A. V. Trofimov, Head, Candidate of Engineering Sciences, trofimovav@nornik.ru
A. P. Kirkin, Researcher, Candidate of Engineering Sciences
A. A. Shutov, Leading Engineer

Реферат

The growing depth of underground mineral mining calls for the integrated research, including geomechanical numerical modeling for the analysis of structure and lithology of enclosing rock mass. The quality modeling needs knowing the in-situ stress–strain behavior of intact rock mass. Currently there are many various methods of the stress–strain analysis and determination of stress influence zones in rock mass. The methods differ in the amount of financial and labor inputs, as well as in the accuracy and objectiveness of the data obtained. It should be taken into account that alongside direct in-situ measurements of stresses and strains in rock mass, the research should include special-purpose post-fieldwork laboratory testing of cores, as well as the pre-fieldwork analysis of structural–lithological, geomechanical and numerical models to validate correctness of the measurement procedure parameters. The authors describe the results of the in-situ stress–strain determination by the method of overcoring in the field of Oktyabrsky Mine, in the area of underground crushing facilities of SS-1 skip shaft. The measurements were taken using 12-channel digital extensometers CSIRO HID Cells capable to determine components of the full stress tensor in a single measurement taken in a single borehole. It is found that the stress field is gravitational in the test area of rock mass, but the resultant values of the subhorizontal intermediate and minimal stresses are rather high and exceed the calculations as per the Dinnik hypothesis.

Ключевые слова Rocks, testing procedure, samples, lithology, overcoring, stresses, strains, stress sensors
Библиографический список

1. Marysyuk V. P., Shilenko S. Yu., Trofimov A. V., Kuzmin S. V. Risk assessment in main ore chute construction in difficult geological conditions based on integrated geotechnical research. Gornyi Zhurnal. 2020. No. 1. pp. 62–66.
2. Sonnov M. A., Trofimov A. V., Rumyantsev A. E., Shpilev S. V. Application of numerical and block geomechanical modelling to determine parameters of large-section chambers. Gornaya promyshlennost. 2021. No. 2. pp. 127–131.
3. Trofimov A. V., Kirkin A. P., Rumyantsev A. E., Yavarov A. V. Use of numerical modelling to determine optimum overcoring parameters in rock stress-strain state analysis. Tsvetnye Metally. 2020. No. 12. pp. 22–27.
4. Sim L. A., Marinin A. V., Bryantseva G. V., Gordeev N. A. Results of the tectonic stress study of the Northern Eurasia regions. Geodinamika i tektonofizika. 2018. Vol. 9, No. 3. pp. 771–800.
5. Radko V. A. The facies of intrusive and effusive magmatism in the Norilsk Region. Saint-Petersburg : Kartograficheskaya fabrika VSEGEI, 2016. 226 p.
6. Zuev B. Yu., Zubov V. P., Fedorov A. S. Application prospects for models of equivalent materials in studies of geomechanical processes in underground mining of solid minerals. Eurasian Mining. 2019. No. 1. pp. 8–12.
7. Sergunin M. P., Marysyuk V. P., Darbinyan T. P., Sabyanin G. V. Kinematic analysis of rock mass movement parameters in mining systems with caving. Gornyi Zhurnal. 2022. No. 1. pp. 74–79.
8. Marysyuk V. P., Sabyanin G. V., Andreev A. A., Vasiliev D. A. Stress assessment in deeplevel stoping in Talnakh mines. Gornyi Zhurnal. 2020. No. 6. pp. 17–22.
9. Belyakov N. A., Emelyanov I. A. Technique for assessing the stress state of a rock mass by a multicomponent displacement sensor using the overcoring method. Izvestiya Uralskogo gosudarstvennogo gornogo universiteta. 2023. No. 1(69). pp. 31–38.
10. Morozov K. V., Demekhin D. N., Bakhtin E. V. Multicomponent strain gauges for assessing the stress-strain state of a rock mass. MIAB. 2022. No. 6-2. pp. 80–97.
11. Samsonov A. A. Assessment of rock mass state of Oleniy Ruchey rock burst deposit based on the results of stress measurements. Vestnik Kolskogo nauchnogo tsentra RAN. 2019. No. 1(11). pp. 62–67.
12. Gray I. Effective stress in rock. Proceedings of the Eighth International Conference on Deepa nd High Stress Mining. Perth : Australian Centre for Geomechanics, 2017. pp. 199–207.
13. Gray I. Stress in the ground. Drilling for geology II extended abstracts. Brisbane : Australian Institute of Geoscientists, 2017. Bulletin No. 64. pp. 157–175.
14. Gray I., Shutov A. B. Rock mass stress measurement by coring with SIGRA IST tool. Gornyi Zhurnal. 2022. No. 1. pp. 50–54.
15. Subrahmanyam D. S. Evaluation of hydraulic fracturing and overcoring methods to determine and compare the in situ stress parameters in porous rock mass. Geotechnical and Geological Engineering. 2019. Vol. 37, Iss. 6. pp. 4777–4787.
16. Li P., Cai M.-F., Guo Q.-F., Miao S.-J. In situ stress state of the northwest region of the Jiaodong Peninsula, China from overcoring stress measurements in three gold mines. Rock Mechanics and Rock Engineering. 2019. Vol. 52, Iss. 11. pp. 4497–4507.
17. Li Y., Fu S., Qiao L., Liu Z., Zhang Y. Development of twin temperature compensation and high-level biaxial pressurization calibration techniques for CSIRO in-situ stress measurement in depth. Rock Mechanics and Rock Engineering. 2019. Vol. 52, Iss. 4. pp. 1115–1131.
18. Krietsch H., Gischig V., Evans K., Doetsch J., Dutler N. O. et al. Stress measurements for an in situ stimulation experiment in crystalline rock: Integration of induced seismicity, stress relief and hydraulic methods. Rock Mechanics and Rock Engineering. 2019. Vol. 52, Iss. 2. pp. 517–542.
19. Melnikov D. N. Stress measurements in rock mass of the Zhdanovskoe deposit by the doorstopper method. Vestnik Kolskogo nauchnogo tsentra RAN. 2019. Vol. 11, No. 1. pp. 57–61.

Language of full-text русский
Полный текст статьи Получить
Назад