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APPLIED RESEARCHES
Название Experimental geothermy of deep-seated ore bodies in Taimyrsky Mine
DOI 10.17580/gzh.2024.01.13
Автор Darbinyan T. P., Tsymbalov A. A., Zaitsev A. V., Perestoronin M. O.
Информация об авторе

NorNickel’s Polar Division, Norilsk, Russia

T. P. Darbinyan, Director of Mining Practice Department, Candidate of Engineering Sciences
A. A. Tsymbalov, Deputy Director of Mining Practice

 

Mining Institute, Ural Branch, Russian Academy of Sciences, Perm, Russia
A. V. Zaitsev, Head of Mining Practice Development Laboratory, Doctor of Engineering Sciences, artem.v.zaitsev@yandex.ru
M. O. Perestoronin, Engineer at Mining Practice Development Laboratory

Реферат

One of the major problems in current deep-level underground mining is the increased temperature of mine air, which conditions unfavorable and unsafe operating environment. The article describes the experimental measurement of temperature in rocks within the limits of production strata in Taimyrsky Mine of NorNickel’s Polar Division by contact sensing in boreholes. Using the measured data, the averaged geothermal characteristics of rock mass are determined and recommended for introduction in designing of new mine sites  and making engineering decisions on normalization of microclimate on operating sites. It is found that the main contribution in generation of the thermal field of a mineral deposit or a mine is made by: the tectonic and magmatic activity; the difference in thermophysical properties of contacting rocks; the fluid flows; the presence of mined-out voids. In new mine site designs and in engineering solutions on microclimate normalization on existing sites, it is recommended to amend geothermal characteristics of the mine field by contact sensing in boreholes drilled from underground roadways. The temperature field in Taimyrsky Mine is nonuniform along the depth and across the area. The temperature difference at the same elevations within the mine field can reach 4.8 °C. The main factors which govern the nonuniformity of the temperature field in the mine and the presence of thermal abnormalities are: the tectonic and magmatic activity; the difference in thermophysical properties of contacting rocks; the fluid flows; the decomposition of the crustal radioactive elements; the presence of mined-out voids.

The authors appreciate participation of E. N. Mizonov, Head of the Mining Practice Office at the Mining Practice Department (MPD) of NorNickel’s Polar Division (PD), V. N. Zhitnyak, Head of the Mining Practice Unit of PD’s MPD, and V. V. Vorobiev, Manager of the Mining Practice Supervision Unit of PD’s MPD.

Ключевые слова Taimyrsky Mine, rock mass temperature, geothermal gradient, temperature field, microclimate normalization, in-situ measurements
Библиографический список

1. 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.
2. Zenkov I. V., Kiryushina E. V., Vokin V. N., Maglinets Yu. A. Review of global trends in meeting the ecological challenges of the mining industry. Part I: International research. Eurasian Mining. 2022. No. 1. pp. 90–94.
3. Zaytsev A. V. Scientific framework for calculating and controlling thermal conditions in underground mines : Dissertation of Doctor of Engineering Sciences. Perm, 2019. 247 p.
4. Rules of safety during mining operations and processing of solid minerals : Federal performance requirements in industrial safety area : Approved by Rostekhnadzor, Order No. 505 as of 8 December 2020. Available at: https://docs.cntd.ru/document/573156117 (accessed: 15.06.2023).
5. Geological atlas of Russia. Section II. Explanatory notes. Geological structure and geophysical characteristics of subsoil. Series : General maps of the Russian Federation, scale 1:10000000. Moscow ; Saint-Peterburg : VSEGEI, 1996. 213 p.
6. Ramazanov A. Sh., Akchurin R. Z. Determination of the geothermal field parameters by temperature measurements in wells. Neftegazovoe delo. 2017. No. 2. pp. 47–62.
7. Cheremenskiy G. A. Geothermy. Leningrad : Nedra, 1972. 271 p.
8. Skachkov M. S. Underground mineral mining in the Noril sk industrial district : Reference aid. Norilsk : Norilskiy industrialnyi institut, 2005. 77 p.
9. Sasa Guo, Chuanqing Zhu, Nansheng Qiu, Boning Tang, Yue Cui et al. Present Geothermal Characteristics and Influencing Factors in the Xiong’an New Area, North China. Energies. 2019. Vol. 12, Iss. 20. 3884.
10. Wenjing Lin, Guiling Wang, Haonan Gan, Shengsheng Zhang, Zhen Zhao et al. Heat source model for Enhanced Geothermal Systems (EGS) under different geological conditions in China. Gondwana Research. 2023. Vol. 122. pp. 243–259.
11. X i ong L. Relationship between geothermal gradient and the relief of basement rock in north China plain. Chinese Journal of Geophysics. 1988. Vol. 32. pp. 146–15 5.
12. Rybach L. Radioactive heat production in rocks and its relation to other petrophysical parameters. Pure and Applied Geophysics. 1976. Vol. 114, No. 2. pp. 309–31 7.
13. Kerimov V. Y., Rachinsky M., Mustaev R., Serikova U. Geothermal conditions of hydrocarbon formation in the South Caspian basin. Iranian Journal of Earth Sciences. 2018. Vol. 10, Iss. 1. pp. 78–89.
14. Ivanov I. I. Geothermal mode and natural air renewal in open pit mines. Moscow : Nedra, 1982. 173 p.
15. Zaitsev A. V., Borodavkin D. A., Bublik S. A., Ageeva K. M. Study of rock temperature distribution in the Berezovsky mine field of Belaruskali company. Izvestiya Tomskogo politekhnicheskogo universiteta. Inzhiniring georesursov. 2022. Vol. 333, No. 7. pp. 76–85.
16. Vyaltsev M. M. Prediction and adjustment of thermal stresses in mine roadways. Moscow : Nedra, 1988. 201 p.

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