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GEOMAGNETIC EXCURSION RECORD PRESERVED IN THE SPELEOTHEM FROM WESTERN CAUCASUS: FIRST DATA

https://doi.org/10.5800/GT-2022-13-2s-0624

Abstract

The study of the geomagnetic field evolution on minor timescales, in particular of such significant events as geomagnetic reversals and excursions, has acquired particular relevance nowadays due to the increased attention of mankind to the environment. The question of how exactly abrupt changes in the characteristics of the geomagnetic field affect the climate and biosphere remains largely debatable; the idea of the speed and dynamics of these changes is also very vague. "Classical" geological objects and existing methods provide limited opportunities for highly detailed reconstructions of geomagnetic field variations; therefore, paleomagnetologists are looking for new objects and approaches to solve this problem. The research that we have begun involves the use – for the first time in Russia – of speleothems to study secular variations of the geomagnetic field.

This brief communication presents paleomagnetic records of two drill-cores from the flowstone from Vorontsovskaya cave, located on the western flank of the Caucasus Mountains in the valley of the river Kudepsta. Preliminary results indicate the presence of a geomagnetic excursion record in both drill-cores. Further study of the samples from Vorontsovskaya cave will make it possible to compare the discovered event with known excursions, as well as to clarify its age, duration, and dynamics.

About the Authors

D. A. Gavriushkin
Schmidt Institute of Physics of the Earth, Russian Academy of Sciences; RPO "Russian Union of Speleologists"
Russian Federation

Dmitriy A. Gavriushkin

10-1 Bolshaya Gruzinskaya St, Moscow 123242



A. M. Pasenko
Schmidt Institute of Physics of the Earth, Russian Academy of Sciences
Russian Federation
10-1 Bolshaya Gruzinskaya St, Moscow 123242


R. V. Veselovskiy
Schmidt Institute of Physics of the Earth, Russian Academy of Sciences; Lomonosov Moscow State University
Russian Federation
10-1 Bolshaya Gruzinskaya St, Moscow 123242
1 Leninskie Gory, Moscow 119991


D. V. Rud’ko
Schmidt Institute of Physics of the Earth, Russian Academy of Sciences
Russian Federation
10-1 Bolshaya Gruzinskaya St, Moscow 123242


References

1. Bagdasaryan T.E., Gavrushkin D.A., Veselovskiy R.V., Usanova O.I., 2019. Speleothems as a Source of Paleomagnetic Records by the Example of Vorontsovskaya Cave, Western Caucasus. Proceedings of KSC RAS (Geology and Geophysics) 1, 32–37(in Russian) https://doi.org/10.25702/KSC.2307-5252.2019.6.004.

2. Bogue S.W., Merrill R.T., 1992. The Character of the Field during Geomagnetic Reversals. Annual Review of Earth and Planetary Sciences 20, 181–219.

3. Chou Y.-M., Jiang X., Liu Q., Hu H.-M., Wu Ch.-Ch., Liu J., Jiang Zh., Lee T.-Q. et al., 2018. Multidecadally Resolved Polarity Oscillations during a Geomagnetic Excursion. Proceedings of the National Academy of Sciences 115 (36) 8913–8918. https://doi.org/10.1073/pnas.1720404115.

4. Courtillot V., Olson P., 2007. Mantle Plumes Link Magnetic Superchrons to Phanerozoic Mass Depletion Events. Earth and Planetary Science Letters 260 (3–4), 495–504. https://doi.org/10.1016/j.epsl.2007.06.003.

5. Dublyansky V.N., Ilyukhin V.N., 1982. The Largest Karst Caves and Mines of the USSR. Nauka, Moscow, 137 p. (in Russian)

6. Enkin R.J., 1994. A Computer Program Package for Analysis and Presentation of Paleomagnetic Data. Geological Survey of Canada, Sidney, 16 p.

7. Font E., Veiga-Pires C., Pozo M., Carvallo C., de Siqueira Neto A.C., Camps P., Fabre S., Mirão J., 2014. Magnetic Fingerprint of Southern Portuguese Speleothems and Implications for Paleomagnetism and Environmental Magnetism. Journal of Geophysical Research: Solid Earth 119 (11), 7993–8020. https://doi.org/10.1002/2014JB011381.

8. Gallet Y., Genevey A., Le Goff M., Frédéric F., Eshraghi S., 2006. Possible Impact of the Earth Magnetic Field on the History of Ancient Civilizations. Earth and Planetary Science Letters 246 (1–2), 17–26. https://doi.org/10.1016/j.epsl.2006.04.001.

9. Korte M., Constable C., Donadini F., Holme R., 2011. Reconstructing the Holocene Geomagnetic Field. Earth and Planetary Science Letters 312, 3–4, 497–505. https://doi.org/10.1016/j.epsl.2011.10.031.

10. Laj C., Channell J.E.T., 2007. Geomagnetic Excursions. In: B. Romanowicz, A. Dziewonski (Eds), Treatise on Geophysics. Vol. 5: Geomagnetism. Elsevier, p. 373–416. https://doi.org/10.1016/B978-044452748-6.00095-X.

11. Lascu I., Feinberg J.M., 2011. Speleothem Magnetism. Quaternary Science Reviews 30 (23–24), 3306–3320. https://doi.org/10.1016/j.quascirev.2011.08.004.

12. Lascu I., Feinberg J.M., Dorale J.A., Cheng H., Edwards R.L., 2016. Age of the Laschamp Excursion Determined by U-Th Dating of a Speleothem Geomagnetic Record from North America. Geology 44 (2), 139–142. https://doi.org/10.1130/G37490.1.

13. Morinaga H., Horie I., Yaskawa K., 1992. A Geomagnetic Reversal Recorded in a Stalagmite Collected in Western Japan. Journal of Geomagnetism and Geoelectricity 44 (8), 661–675. https://doi.org/10.5636/jgg.44.661.

14. Nilsson A., Holme R., Korte M., Suttie N., Hill M., 2014. Reconstructing Holocene Geomagnetic Field Variation: New Methods, Models and Implications. Geophysical Journal International 198 (1), 229–248. https://doi.org/10.1093/gji/ggu120.

15. Osete M.-L., Martin-Chivelet J., Rossi C., Edwards R.L., Egli R., Munoz-Garcia B., Wang X., Pavón-Carrasco F.J., Heller F., 2012. The Blake Geomagnetic Excursion Recorded in a Radiometrically Dated Speleothem. Earth and Planetary Science Letters 353–354, 173–181. https://doi.org/10.1016/j.epsl.2012.07.041.

16. Pavón-Carrasco F.J., Osete M.L., Torta J.M., De Santis A., 2014. A Geomagnetic Field Model for the Holocene Based on Archaeomagnetic and Lava Flow Data. Earth and Planetary Science Letters 388, 98–109. https://doi.org/10.1016/j.epsl.2013.11.046.

17. Perkins A.M., 1996. Observations under Electron Microscopy of Magnetic Minerals Extracted from Speleothems. Earth and Planetary Science Letters 139 (1–2), 281–289. https://doi.org/10.1016/0012-821X(96)00013-1.

18. Perkins A.M., Maher B.A., 1993. Rock Magnetic and Palaeomagnetic Studies of British Speleothems. Journal of Geomagnetism and Geoelectricity 45 (2), 143–153. https://doi.org/10.5636/jgg.45.143.

19. Pospelova G.A., 2000. Geomagnetic Excursions of the Brunhes Chron and Global Climate Oscillations. Izvestiya, Physics of the Solid Earth 36 (8), 619–629 (in Russian)

20. Pozzi J.-P., Rousseau L., Falguères C., Mahieux G., Deschamps P., Shao Q., Kachi D., Bahain J.-J., Tozzi C., 2019. U-Th Dated Speleothem Recorded Geomagnetic Excursions in the Lower Brunhes. Scientific Reports 9, 1114. https://doi.org/10.1038/s41598-018-38350-4.

21. Thébault E., Finlay C.C., Beggan C.D., Alken P., Aubert J., Barrois O., Bertrand F., Bondar T. et al., 2015. International Geomagnetic Reference Field: The 12th Generation. Earth, Planets and Space 67, 79. https://doi.org/10.1186/s40623-015-0228-9.


Review

For citations:


Gavriushkin D.A., Pasenko A.M., Veselovskiy R.V., Rud’ko D.V. GEOMAGNETIC EXCURSION RECORD PRESERVED IN THE SPELEOTHEM FROM WESTERN CAUCASUS: FIRST DATA. Geodynamics & Tectonophysics. 2022;13(2):0624. (In Russ.) https://doi.org/10.5800/GT-2022-13-2s-0624

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