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Arctic gas hydrates: possibilities and prospects of studying by electromagnetic methods

https://doi.org/10.21285/2686-9993-2024-47-4-368-380

EDN: qogizv

Abstract

Deposits of unconventional hydrocarbons are reserve sources of replenishment of the raw material base of Russia. A significant part of unconventional gas is associated with gas hydrates, the search and exploration of which today remains a complex task for geologists. The extraction technology has not been developed yet, and the search criteria are still unclear for many objects. Western Siberia permafrost plays the key role in the existence of gas hydrates, creating conditions for their formation and ensuring their stability. Geophysical studies using the shallow near-field transient electro-magnetic sounding method together with the analysis of the hydrogeological and cryogenic structure, as well as the results of drilling and laboratory experiments contribute to the study of permafrost and gas hydrate formation. The purpose of the study is to assess the possibilities and prospects for studying gas hydrates using surface electrical exploration in the Arctic permafrost zone. The paper considers the physical and geological characteristics of gas hydrate accumulations and their manifestation in geophysical study results. Examples of gas hydrate manifestation in sandy deposits of the Tibeysalinskaya formation are given based on the materials of electrical exploration using the method of shallow near-field transient electro-magnetic sounding. The intervals of possible presence of gas hydrates are characterized by increased values of specific electrical resistance up to 30 Ohm∙m. The application prospects of using geophysical studies for gas hydrates mapping in Arctic are outlined.

About the Authors

N. V. Misyurkeeva
Institute of the Earth’s Crust SB RAS
Russian Federation

Natalya V. Misyurkeeva, Cand. Sci. (Geol. & Mineral.), Junior Researcher of the Laboratory of Integrated Arctic Research



I. V. Buddo
Institute of the Earth’s Crust SB RAS; Irkutsk National Research Technical University
Russian Federation

Igor V. Buddo, Cand. Sci. (Geol. & Mineral.), Head of the Laboratory of Integrated Geophysics, Laboratory of Integrated Arctic Research; Associate Professor of the Department of Applied Geology, Geophysics and Geoinformation Systems



I. A. Shelokhov
Institute of the Earth’s Crust SB RAS
Russian Federation

Ivan A. Shеlokhov, Cand. Sci. (Geol. & Mineral.), Junior Researcher of the Laboratory of Integrated Geophysics,
Laboratory of Integrated Arctic Research



A. S. Smirnov
Arctic Research Center
Russian Federation

Alexander S. Smirnov,
Cand. Sci. (Geol. & Mineral.), Associate Professor, Leading Researcher



A. A. Nezhdanov
West Siberian Research Institute of Geology and Geophysics
Russian Federation

Alexey A. Nezhdanov, Dr. Sci. (Geol. & Mineral.), Advisor on Geology



References

1. Shchelokova D.V. Non-conventional hydrocarbons as a source of inexhaustible energy resources. Problems of Gathering, Treatment and Transportation of Oil and Oil Products. 2016;1:120-126. (In Russ.). EDN: VZYTVJ.

2. Dmitrievsky A.N. Mastering of the unconventional hydrocarbon resources of Russia. Georesources, Geoenergy and Geopolitics. 2014;2:1. (In Russ.). EDN: THNLIB.

3. Bessel’ V.V. Unconventional hydrocarbon resources – an alternative or a myth? Neftegaz.RU. 2013;9. Available from: https://magazine.neftegaz.ru/articles/aktualno/620919-netraditsionnye-uglevodorodnye-resursy-alternativa-ili-mif/ [Accessed 15th May 2024]. (In Russ.).

4. Vorobiev K.A., Pyatkova M.E., Shcherba V.A. Development prospects of gas hydrate deposits on the territory of the Russian Federation. Geography: development of science and education: collected articles on the materials of the International scientific and practical conference. St. Petersburg: Herzen University; 2022, p. 174-180. (In Russ.). EDN: SVIZRG.

5. Droushchits V.A., Sadchikova T.A., Skolotneva T.S. Gas hydrates on the Arctic land and offshore and natural environment changes in the Quaternary. Bulletin of the Commission for Study of the Quaternary. 2011;71:124-134. (In Russ.).

6. Chuvilin E.M., Davletshina D.A., Lupachik M.V. Hydrate formation in frozen and thawing methane-saturated sediments. Kriosfera Zemli. 2019;23(2):50-61. (In Russ.). https://doi.org/10.21782/KZ1560-7496-2019-2(50-61). EDN: YUWSSY.

7. Buddo I., Misyurkeeva N., Shelokhov I., Chuvilin E., Chernikh A., Smirnov A. Imaging Arctic permafrost: modeling for choice of geophysical methods. Geosciences. 2022;12(10):389. https://doi.org/10.3390/geosciences12100389.

8. Matveeva M.T. Methodology and stage-by-stage approach for the exploration of potentially gas hydrate-bearing water areas and hydrate accumulations. Nedropol’’zovanie XXI vek. 2014;3:74-79. (In Russ.). EDN: SXVEML.

9. Schwalenberg K., Rippe D., Koch S., Scholl C. Marine‐controlled source electromagnetic study of methane seeps and gas hydrates at Opouawe Bank, Hikurangi Margin, New Zealand. Journal of Geophysical Research: Solid Earth. 2017;122(5):3334-3350. https://doi.org/10.1002/2016JB013702.

10. Gabitto J. F., Tsouri C. Physical properties of gas hydrates: a review. Journal of Thermodynamics. 2010:271291. https://doi.org/10.1155/2010/271291.

11. Dvorkin J., Nur A. Seismic amplitudes from gas hydrates. E&P. 2007;1-2. Available from: https://netl.doe.gov/sites/default/files/netl-file/NT42663_EPPaper_2007.pdf [Accessed 15th May 2024].

12. Kaufman A.A., Morozova G.M. Theoretical foundations of the method of transient electromagnetic sounding in the near zone. Novosibirsk: Nauka; 1970, 124 p. (In Russ.).

13. Pospeev A.V., Buddo I.V., Agafonov Y.A., Sharlov M.V., Kompaniec S.V., Tokareva O.V., et al. Modern applied electroprospecting. Novosibirsk: Geo; 2018, 231 p. (In Russ.). https://doi.org/10.21782/B978-5-9909584-1-8. EDN: VTWOGC.

14. Misyurkeeva N.V., Buddo I.V., Kraev G.N., Smirnov A.S., Nezhdanov A.A., Shelokhov I.A., et al. Periglacial landforms and fluid dynamics in the permafrost domain: a case from the Taz Peninsula, West Siberia. Energies. 2022;15(8):2794. https://doi.org/10.3390/en15082794.

15. Misyurkeeva N., Buddo I., Shelokhov I., Smirnov A., Nezhdanov A., Agafonov Yu. Thickness and structure of permafrostin oil and gas fields of the Yamal Peninsula: evidence from shallow transient electromagnetic (sTEM) survey. Water. 2024;16(18):2633. https://doi.org/10.3390/w16182633.

16. Jakushev V.S., Perlova E.V., Mahonina N.A., Chuvilin E.M., Kozlova E.V. Gas hydrates in sediments of continents and islands. Rossiiskii khimicheskii zhurnal. 2003;47(3):80-90. (In Russ.). EDN: WBFUVB.

17. Nizaeva I.G., Davletova A.A., Valiullin R.A. Isolation of hydrate-saturated reservoirs by well logging methods in permafrost zones. Herald of the Academy of Sciences of the Republic of Bashkortostan. 2023;47(2):43-51. (In Russ.). https://doi.org/10.24412/1728-5283_2023_2_43_51. EDN: JZGVGD.

18. Chen Y., Li D., Liang D., Zhou X., Wu N. Relationship between gas hydrate saturation and resistivity in sediments of the South China Sea. Acta Petrolei Sinica. 2013;34(3):507-512. (In Chinese). https://doi.org/10.7623/syxb201303012.

19. Buddo I.V., Misyurkeeva N.V., Shelokhov I.A., Shein A.N., Dobrynina A.A., Smirnov A.S., et al. Geophysical methods integration for studying possible shows of fluidodynamic processes in the Arctic. In: Gazovye gidraty – energija budushhego (RGK I): materialy pervoj Rossijskoj gazogidratnoj konferencii = Gas hydrates – the energy of the future (RGK I): Proceedings of the First Russian Gas Hydrate Conference . 26–31 August 2024, Listvyanka. Saint-Petersburg: VNIIOkeangeologia; 2024, p. 57-61. (In Russ.). https://doi.org/10.24412/cl-37274-2024-1-57-61. EDN: MLGKIN.

20. Buddo I., Misyurkeeva N., Shelokhov I., Shein A., Sankov V., Rybchenko A., et al. Modeling of explosive pingo-like structures and fluid-dynamic processes in the Arctic permafrost: workflow based on integrated geophysical, geocryological, and analytical data. Remote Sensing. 2024;16(16):2948. https://doi.org/10.3390/rs16162948.


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For citations:


Misyurkeeva N.V., Buddo I.V., Shelokhov I.A., Smirnov A.S., Nezhdanov A.A. Arctic gas hydrates: possibilities and prospects of studying by electromagnetic methods. Earth sciences and subsoil use. 2024;47(4):368-380. (In Russ.) https://doi.org/10.21285/2686-9993-2024-47-4-368-380. EDN: qogizv

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