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Analysis of the results of the surveying and geodetic observations at the Pyt-Yakh geodynamic site

https://doi.org/10.31660/0445-0108-2020-1-30-41

Abstract

The article is devoted to a generalization of the obtained empirical material on modern geodeformation processes. For this, we used the basic methods of analysis and interpretation of the received information. In addition, we show the possibility of using the results of geodynamic monitoring in order to ensure industrial safety of urban development facilities in Pyt-Yakh from the harmful effects of the development of the Mamontovskoye oil field. The main conceptual scheme of interpretation of the obtained data is reduced to solving the inverse problems of modern fault geodynamics and identifying the sources of formation of local anomalies of stress-strain state of the subsoil.

Geometric leveling of class II accuracy, high-precision satellite observations, high-precision gravimetry and satellite radar interferometry were used as the main methods of analysis.

About the Authors

D. A. Misyurev
West Siberian Division of Trofimuk Institute of Petroleum-Gas Geology and Geophysics of the Siberian Branch of the Russian Academy of Sciences
Russian Federation

Denis A. Misyurev - Junior Researcher, West Siberian Division of Trofimuk Institute of Petroleum-Gas Geology and Geophysics of the Siberian Branch of the Russian Academy of Sciences.

Tyumen.



Yu. V. Vasilev
West Siberian Division of Trofimuk Institute of Petroleum-Gas Geology and Geophysics of the Siberian Branch of the Russian Academy of Sciences
Russian Federation

Yuri V. Vasilev - Candidate of Geology and Mineralogy, Senior Researcher, West Siberian Division of Trofimuk Institute of Petroleum-Gas Geology and Geophysics of the Siberian Branch of the Russian Academy of Sciences.

Tyumen.



D. P. Inozemtsev
West Siberian Division of Trofimuk Institute of Petroleum-Gas Geology and Geophysics of the Siberian Branch of the Russian Academy of Sciences
Russian Federation

Dmitry P. Inozemtsev - Leading Engineer, West Siberian Division of Trofimuk Institute of Petroleum-Gas Geology and Geophysics of the Siberian Branch of the Russian Academy of  Sciences.

Tyumen.



References

1. Petukhov, I. M., & Batugina, I. M. (1999). Geodinamika nedr. Moscow, Sholokhov Moscow State University for Humanities Publ., 287 p. (In Russian).

2. Sidorov, V. A., Kuzmin, Yu. O., & Khitrov, A. M. (2000). Kontseptsiya "Geodinamicheskaya bezopasnost' osvoeniya uglevodorodnogo potentsiala nedr Rossii". Moscow, IGRGI Publ., 56 p. (In Russian).

3. Umrikhin, I. D., Dneprovskaya, N. I., Entov, V. M., Kurenkov, O. V., Buzinov, S. N., Malakhova, T. A., & Liberman, G. I. (1981). Opredelenie parametrov plastov po dannym nablyudeniy za smeshcheniem poverkhnosti zemli. Oil Industry, (10), pp. 29-32. (In Russian).

4. Khayn, V. E, & Lomize, M. G. (2005). Geotektonika s osnovami geodinamiki. Moscow, Knizhnyy dom "Universitet" Publ., 560 p. (In Russian).

5. Kashnikov, Yu. A., Zalyalov, I. M., Sosnin, V. G., Belyaev, K. V., Korekov, A. V., & Sychev, A. M. (2013). On the creating of geodynamic polygon for monitoring of deformation process in the oil and gas fields development. Oil Industry, (4), pp. 6-9. (In Russian).

6. Kashnikov, Yu. A., Ashikhmin, S. G., Bukin, V. G., Shustov, D. V., & Shadrin, D. M. (2010). Instrumental monitoring of rock subsidence in oil fields of verkhnekamsk region. Oilfield Engineering, (7), pp. 50-54. (In Russian).

7. Brayt, P. I., & Medvedskiy, E. N. (1979). Izmerenie osadok i deformatsiy geodezicheskimi metodami. Moscow, Geoizdat, 200 p. (In Russian).

8. Kashnikov, Yu. A., & Ashikhmin, S. G. (2007). Rock mechanics in petroleum industry. Moscow, Nedra Publ., 466 p. (In Russian).

9. Maznitskiy, A. S. (2002). Geodezicheskiy monitoring i prognozirovanie tekhnogennoy geodinamiki na mestorozhdeniyakh nefti i gaza. Avtoref. diss. dokt. tekhn. nauk. Kiev, 22 p. (In Russian).

10. Khisamov, R. S., Gatiyatullin, N. S., Kuz'min, Yu. O., Bakirov, R. Kh., Gatiyatullin, R. N., Razmatulin, M. Kh.,… Kashurkin, P. I. (2012). Sovremennaya geodinamika i seysmichnost' yugo-vostoka Tatarstana. Kazan, Tatarstan Academy of Sciences, Fen Publ., 240 p. (In Russian).

11. Kashnikov, Yu. A., Belyaev, K. V., Bogdanets, E. S., & Sogorin, A. A. (2018). Marksheyderskoe obespechenie razrabotki mestorozhdeniy nefti i gaza. Moscow, Nedra, 454 p. (In Russian).

12. Antonovich, K. M. (2005). Ispol'zovanie sputnikovykh radionavigatsionnykh sistem v geodezii. Chast' 1. Novosibirsk, SGGA Publ., 333 p. (In Russian).

13. Boldin, V. A. (1999). Global'naya navigatsionnaya sputnikovaya sistema GLONASS. 2nd edition, revised. Moscow, IPRZHR Publ., 560 p. (In Russian).

14. Gerasimov, A. P. (1996). Uravnivanie gosudarstvennoy geodezicheskoy seti. Moscow, Kartotsentr: Geodezizdat Publ., 216 p. (In Russian).

15. Izotov, A. A. (1974). Osnovy sputnikovoy geodezii. Moscow, Nedra Publ., 329 p. (In Russian).

16. Musikhin, V. V. (2012). Monitoring protsessov osedaniy zemnoy poverkhnosti v rayonakh intensivnogo nedropol'zovaniya na osnove interferometricheskoy obrabotki dannykh kosmicheskogo radiolokatsionnogo zondirovaniya: Avtoref. diss. kand. tekhn. nauk. Perm, 146 p. (In Russian).

17. Kashnikov, Yu. A., Musikhin, V. V., & Lyskov, I. A. (2012). Radar interferometry-based determination of ground surface subsidence under mineral mining. Journal of Mining Science, 48(4), pp. 649-655. (In Russian).


Review

For citations:


Misyurev D.A., Vasilev Yu.V., Inozemtsev D.P. Analysis of the results of the surveying and geodetic observations at the Pyt-Yakh geodynamic site. Oil and Gas Studies. 2020;(1):30-41. (In Russ.) https://doi.org/10.31660/0445-0108-2020-1-30-41

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ISSN 0445-0108 (Print)