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UNIQUE LARGE-SCALE RESEARCH FACILITIES "SEISMIC INFRASOUND ARRAY FOR MONITORING ARCTIC CRYOLITOZONE AND CONTINUOUS SEISMIC MONITORING OF THE RUSSIAN FEDERATION, NEIGHBOURING TERRITORIES AND THE WORLD"

https://doi.org/10.5800/GT-2022-13-2-0591

Abstract

The description of the Unique Large-Scale Research Facilities "Seismic infrasound array for monitoring Arctic cryolithozone and continuous seismic monitoring of the Russian Federation, neighbouring territories and the world" (URF SIA MAC), its hardware and software components are presented. Methods and principle areas of research carried out using the URF are outlined. The URF SIA MAC includes 364 seismic stations throughout Russia and three infrasound arrays. The data obtained at the URF serve to provide domestic fundamental and applied research in the field of Earth Sciences (seismology, geophysics, geodynamics, geoecology) and to study catastrophic events of a natural induced nature. The modern URF data archive includes digital seismic records since 1993. In addition, there is a significant amount of analogue records (since 1904) available for further digitization. The URF SIA MAC provides seismological data to many Russian scientific, research and design organizations. The article presents the main results of the Federal Research Centre Geophysical Survey of the Russian Academy of Sciences obtained in recent years using the URF data.

About the Authors

R. A. Dyagilev
Federal Research Center, Geophysical Survey of the Russian Academy of Sciences
Russian Federation

189 Lenin Ave, Obninsk 249035



I. A. Sdelnikova
Federal Research Center, Geophysical Survey of the Russian Academy of Sciences
Russian Federation

189 Lenin Ave, Obninsk 249035



References

1. Akimov A.P., Krasilov S.A., 2020. Program Complex WGS "System of Processing of Seismic Data". Certificate of State Registration of Computer Programs No 2020664678 of November 16, 2020. ROSPATENT (in Russian).

2. Asming V.E., Fedorov A.V., Korchak P.A., Motorin A.Y., 2021. LORS2 Software Package for Monitoring the Seismicity of the Khibiny Massif: Construction Principles and Basic Algorithms. Seismic Instruments 57, 27–37. https://doi.org/10.3103/S0747923921010059.

3. Bliznetsov V.E., Senyukov S.L., 2016. ADAP Software for Automatic Detection of Ash Emission at Active Volcanoes and Calculations of Ash Plume Height Using Seismological Data. Seismic Instruments 52 (1), 32–42. https://doi.org/10.3103/S0747923916010023.

4. Butyrin P.G., Krasilov S.A., 2021. The Unified System for Storing and Accessing Geophysical Data. Traditions and New Approaches. The Russian Journal of Seismology 3 (4), 77–87 (in Russian). https://doi.org/10.35540/2686-7907.2021.4.05.

5. Chebrova A.Yu., Chemarev A.S., Matveenko E.A., Chebrov D.V., 2020. Seismological Data Information System in Kamchatka Branch of Geological Survey of the Russian Academy of Sciences: Organization Principles, Main Elements and Key Functions. Geophysical Research 21 (3), 66–91 (in Russian). https://doi.org/10.21455/gr2020.3-5.

6. Database "Earthquakes of Russia", 2015. Certificate of State Registration of Database No. 2015620591 of April 7, 2015. ROSPATENT (in Russian).

7. Droznin D.V., Droznina S.Y., 2010. Program for Seismic Signal Processing DIMAS. Seismicheskie Pribory 46 (3), 22–34 (in Russian).

8. Dyagilev R.A., Verkholantsev F.G., Varlashova Yu.V., Shulakov D.Yu., Gabsatarova I.P., Epifanskiy A.G., 2020. Katav-Ivanovsk Earthquake on 04.09.2018, mb=5.4 (Urals). Russian Journal of Seismology 2 (2), 7–20 (in Russian). https://doi.org/10.35540/2686-7907.2020.2.01.

9. Emanov A.F., Bakh A.A., 2019. Development of Algorithms for Interpreting the Method of Standing Waves for the Study of Buildings and Structures of Complex Constructions. Earthquake Engineering. Constructions Safety 5, 28–35 (in Russian).

10. Emanov A.F., Emanov A.A., Fateev A.V., Leskova E.V., 2016. The Technogenic ML=6.1 Bachatsky Earthquake of 18 June 2013 in Kuzbass: the World Strongest Event during Mining Operations. Problems of Engineering Seismology 43 (4), 34–60 (in Russian). https://doi.org/10.21455/vis2016.4-3.

11. Emanov A.F., Emanov A.A., Fateev A.V., Shevkunova E.V., Vorona U.Y., Serezhnikov N.A., 2018. Seismic Effect of Industrial Explosions in Western Siberia and Induced Seismicity. Problems of Engineering Seismology 45 (4), 5–24 (in Russian). https://doi.org/10.21455/VIS2018.4-1.

12. Emanov A.F., Seleznev V.S., Kuzmenko A.P., Gritsenko S.A., Saburov V.A., Danilov I.A., Bakh A.A., 1998. Detailed Engineering and Seismological Studies of Buildings and Structures. In: Methods of Study, Structure and Monitoring of the Lithosphere. Proceedings of the International Conference (September 6–13, 1998). Publishing House of SB RAS, Novosibirsk, p. 61–72 (in Russian).

13. Fedorov A.V., Fedorov I.S., Voronin A.I., Asming V.E., 2021. Mobile Infrasound Avalanche Monitoring System: General Design Principle and Application of Results. Seismic Instruments 57, 369–375. https://doi.org/10.3103/S0747923921040058.

14. Hsu T.Y., Valentino A., Liseikin A., Krechetov D., Chen C.C., Lin T.K., Wang R.Z., Chang K.C., Seleznev V., 2020. Continuous Structural Health Monitoring of the Sayano-Shushenskaya Dam Using Off-Site Seismic Station Data Accounting for Environmental Effects. Measurement Science and Technology 31 (1), 015801. https://doi.org/10.1088/1361-6501/ab393c.

15. Krasilov S.A., Akimov A.P., Kolomiets M.V., Poigina S.G., 2020a. Database of the WSG Software Package "Seismic Data Processing System". Certificate of State Registration of the Database No. 2020622357 of November 20, 2020. ROSPATENT (in Russian).

16. Krasilov S.A., Kolomiets M.V., Poigina S.G., 2020b. Database "Earthquakes" of the Urgent Reporting Service. Certificate of State Registration of the Database No. 2020622314 of November 18, 2020. ROSPATENT (in Russian).

17. Liseikin A.V., Seleznev V.S., Adilov Z.A., 2020. Seasonal Changes in the Parameters of the Normal Modes of the Chirkey Hydroelectric Power Plant Dam According to the Standing Waves Method. Power Technology and Engineering 53, 681–686. https://doi.org/10.1007/s10749-020-01138-6.

18. Petrova N.V., Krasilov S.A., Goryunov S.N., Kugaenko Yu.A., Kurova A.D., 2019. Information Resources of the Geophysical Service of the Russian Academy of Sciences. Certificate of State Registration of the Computer Program No. 2019622012 of November 6, 2019. ROSPATENT (in Russian).

19. Saltykov V.A., 2011. A Statistical Estimate of Seismicity Level: The Method and Results of Application to Kamchatka. Journal of Volcanology and Seismology 5, 123–128. https://doi.org/10.1134/S0742046311020060.

20. Seleznev V.S., Kuzmenko A.P., Emanov A.F., Saburov V.A., Baryshev V.G., Danilov I.A., Bakh A.A., 1998. Possibilities and Results of Engineering Seismological Survey of Buildings and Structures. In: Methods of Study, Structure and Monitoring of the Lithosphere. Proceedings of the International Conference (September 6–13, 1998). Publishing House of SB RAS, Novosibirsk, p. 98–104 (in Russian).

21. Senyukov S.L., 2013. Monitoring and Prediction of Volcanic Activity in Kamchatka from Seismological Data: 2000–2010. Journal of Volcanology and Seismology 7 (1), 86–97. https://doi.org/10.1134/S0742046313010077.


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For citations:


Dyagilev R.A., Sdelnikova I.A. UNIQUE LARGE-SCALE RESEARCH FACILITIES "SEISMIC INFRASOUND ARRAY FOR MONITORING ARCTIC CRYOLITOZONE AND CONTINUOUS SEISMIC MONITORING OF THE RUSSIAN FEDERATION, NEIGHBOURING TERRITORIES AND THE WORLD". Geodynamics & Tectonophysics. 2022;13(2):0591. (In Russ.) https://doi.org/10.5800/GT-2022-13-2-0591

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