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PHYSICS OF ROCKS AND PROCESSES
Название Pilot studies of georadar detection and ranging in active underground sulfide copper–nickel mines
DOI 10.17580/gzh.2023.04.04
Автор Gulevich O. A., Volkomirskaya L. B., Antipov V. V., Batraliev R. Sh.
Информация об авторе

Timer LLC, Moscow-Troitsk, Russia1 ; Pushkov Institute of Terrestrial Magnetism, Ionosphere and Radio Wave Propagation, Russian Academy of Sciences, Moscow-Troitsk, Russia2:

O. A. Gulevich1,2, Deputy Director, Senior Researcher, Candidate of Physical and Mathematical Sciences, o.a.gulevich@gmail.com
L. B. Volkomirskaya1,2, CEO, Head of Laboratory, Candidate of Physical and Mathematical Sciences

 

InTerraScan LLC, Moscow, Russia
V. V. Antipov, Leading Geotechnical Engineer

 

NorNickel’s Polar Division, Norilsk, Russia
R. Sh. Batraliev, Chief Manager, Department of Innovation

Реферат

The article gives the initial data of using the super-power mono-impulse georadars in underground excavations of sulfide copper–nickel mines. The georadar detection and ranging data correlate with the bearing of various mineralization strata, and enable identifying different anomalies in rock mass (tectonic fracturing zones, increased jointing, higher moisture content) by spatial changes in the electrophysical properties of rocks: dielectric permeability and conductance. The geophysical studies including georadar detection and ranging were carried out in underground excavations in Komsomolsky and Taimyr Mines, Norilsk, in July 2022 by InTerraScan LLC. In Komsomolsky Mine, two sites were surveyed. The 3D visualization of the georadar data using all profiles plotted in Komsomolsky Mine allows drawing a conclusion that geological structure of rock mass in the southern site in underground excavation RSH-5-14z-1 is complicated by discontinuities of various degree, including zones which hold the signs of the increased jointing and water content. In Taimyrsky Mine, the test embraced two sites, too. The observations exhibit a high difference between interfaces of rocks having different electrophysical characteristics, local inclusions and nodules of various shape and size. The analysis of the obtained georadar data in integration with hypsometry of a high-grade ore stratum has helped hypothesize on the influence exerted by the tectonic processes on the formation of rock mass in the test areas, and suppose the dominant orientation of the tectonic faults. The deep-level in-situ georadar detection and ranging studies allow an inference on the promising nature of this approach in terms of potential acquisition of additional information on rock mass structure in the phase of operational exploration in the mine fields of Norilsk Nickel.

Ключевые слова Deep-level georadar, underground excavations, mines, profiling, geological structure, minerals, electrophysical characteristics
Библиографический список

1. Kgarume T., Van Schoor M., Nontso Z. The use of 3D ground penetrating radar to mitigate the risk associated with falls of ground in Bushveld Complex platinum mines. The Journal of the Southern African Institute of Mining and Metallurgy. 2019. Vol. 119, No. 11. pp. 973–982.
2. Yang Li, Jiachen Wang, Yiding Chen, Zhipeng Wang, Jianpeng Wang. Overlying strata movement with ground penetrating radar detection in close-multiple coal seams mining. International Journal of Distributed Sensor Networks. 2019. Vol. 15, Iss. 8. DOI: 10.1177/1550147719869852
3. Kulich J., Bleibinhaus F. Fault Detection with Crosshole and Reflection Geo-Radar for Underground Mine Safety. Geosciences. 2020. Vol. 10, Iss. 11. 456. DOI: 10.3390/geosciences10110456
4. Baggett J., Abbasi A., Monsalve J., Bishop R., Ripepi N. et al. Ground-Penetrating Radar for Karst Detection in Underground Stone Mines. Mining, Metallurgy & Exploration. 2020. Vol. 37, Iss. 1. pp. 153–165.
5. Bausov I. Y., Stolarczyk G. L., Stolarczyk L. G., Koppenjan Sc. D. S. Look-Ahead Radar and Horizon Sensing for Coal Cutting Drums. Proceedings of the 2007 4th International Workshop on Advanced Ground Penetrating Radar. Naples, 2007. pp. 208–211.
6. Xianxin Shi, Xiao-ming Yang. A Study on Coal Mine Gob Detection with Ground Penetrating Radar. Proceedings of the 2012 2nd International Conference on Remote Sensing, Environment and Transportation Engineering. Nanjing, 2012. DOI: 10.1109/RSETE.2012.6260371
7. Kafedziski V., Pecov S., Tanevski D. Detection and Classification of Land Mines from Ground Penetrating Radar Data Using Faster R-CNN. TELFOR 2018 : Proceedings of the 2018 26th Telecommunications Forum. Belgrade, 2018. DOI: 10.1109/TELFOR.2018.8612117
8. Andrianov S. V. GPR monitoring of space between lining and rock in underground mines. GIAB. 2019. No. 5. pp. 124–132.
9. Melnik V. V., Dalatkazin T. Sh., Zamyatin A. L. Problems solving for the safety of underground mining operations during the mining of coal long faces using modern methods of geophysics. Problemy nedropolzovaniya. 2022. No. 4(35). pp. 122–131.
10. Vladov M. L., Starovoytov A. V. Introduction into the Ground-Penetrating Radar Method : Tutorial. Moscow : Izdatelstvo MGU, 2004. 153 p.
11. Musalev D. N., Prokhorov N. N., Zeytts V. E., Barbikov D. V., Ivanova N. N. Definition of location of geological prospecting boreholes at the level of productive horizons of Starobinsky potassium salts deposit. Gornyi Zhurnal. 2014. No. 2. pp. 7–10.
12. Volkomirskaya L. B., Gulevich O. A., Varenkov V. V., Sakhterov V. I. Requirements for the performance of a ground-penetrating radar system in searching for cavities. Russian Geology and Geophysics. 2018. Vol. 59, No. 4. pp. 438–447.
13. Volkomirskaya L. B., Gulevich O. A., Lyakhov G. A., Reznikov A. E. Deep georadiolocation. Zhurnal radioelektroniki. 2019. No. 4. DOI: 10.30898/1684-1719.2019.4.6

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