- Abstract:
- This article analyzes the impact of climate change on the stability and deformations of geodetic networks and engineering structures in North-East Russia. The study covers key climatic factors – temperature, precipitation, and frost depth – from 2016 to 2025, based on data from the Russian Hydrometeorological Center. Methodologies include deformation mathematical modeling, descriptive statistics, and multivariate regression analysis, integrating geotechnical soil characteristics and seasonal variations. Results highlight significant effects of climatic factors on deformations and emphasize the need for adaptive monitoring and engineering measures to ensure infrastructure resilience in the region.
- Keywords:
- climate change, deformations, geodetic networks, North-East Russia, predictive models, stability monitoring, geotechnical characteristics
- For citation:
- Arno V.V., Kolesnichenko E.P., Garifulina I.Yu., Dolbin I.D. Analysis and modeling of the impact of climate change in the North-East Russia on the stability and deformation of geodetic networks and engineering structures. Mine Surveying and Subsurface Use. 2025;25(6):72-77. (In Russ.). https://doi.org/10.56195/20793332-2025-25-6-72-77.
- Information about the authors:
-
- Veronika V. Arno – Cand. Sci. (Eng.), Associate Professor, Northeastern State University, Polytechnic Institute, 685030, Magadan, Russian Federation; e-mail:
This email address is being protected from spambots. You need JavaScript enabled to view it. - Eva P. Kolesnichenko – Student of the Field of Training "State and Municipal Audit", Higher School of Economics, Lomonosov Moscow State University, 119991, Moscow, Russian Federation; e-mail:
This email address is being protected from spambots. You need JavaScript enabled to view it. - Irina Yu. Garifulina – Senior Lecturer of the Department of Geology and Mining. Northeastern State University, Polytechnic Institute, 685030, Magadan, Russian Federation; e-mail: irina-kajtukova@ yandex.ru
- Ivan D. Dolbin – Student of the Mining Department, North-Eastern State University Polytechnic Institute, 685030, Magadan, Russian Federation; e-mail:
This email address is being protected from spambots. You need JavaScript enabled to view it.
- Veronika V. Arno – Cand. Sci. (Eng.), Associate Professor, Northeastern State University, Polytechnic Institute, 685030, Magadan, Russian Federation; e-mail:
- References:
-
- 1. Абрамов Д.А., Макарьева О.М., Землянскова А.А., Осташов А.А. и др. Геотемпературный мониторинг криолитозоны Магаданской области 2021–2024 гг.: Тезисы доклада. Рельеф и четвертичные образования Арктики, Субарктики и Северо-Запада России. 2024; 11:450-456. Abramov D.A., Makar’eva O.M., Zemlyanskova A.A., Ostashov A.A., et al. Abstract of the report “Geotemperature Monitoring of the Permafrost Zone in the Magadan Region in 2021–2024”. Relief and Quaternary Formations of the Arctic, Subarctic, and North-West of Russia. 2024; 11: 450-456 (In Russ.). https://doi.org/10.24412/2687-1092-2024-11-450-456.
- 2. Веркулич С.Р., Демидов Н.Э., Анисимов М.А. Разработка проекта организации мониторинга многолетнемерзлых грунтов высокоширотной Арктики на базе наблюдательной сети Росгидромета. Российские полярные исследования. 2021; 43 (1): 23-27. Verkulich S.R., Demidov N.E., Anisimov M.A. Development of a project for organizing monitoring of permafrost soils in the high-latitude Arctic based on the observation network of Roshydromet. Russian Polar Research. 2021; 43 (1): 23-27. (In Russ.).
- 3. Ефимов В.М., Васильчук Ю.К., Рожин И.И. и др. Моделирование температурного режима грунтовых оснований с сезонно-охлаждающими устройствами в условиях криолитозоны Республики Саха (Якутия). Арктика и Антарктика. 2017; 4: 86-97. Efimov V.M., Vasilchuk Yu.K., Rozhin I.I., et al. Modeling the Temperature Regime of Soil Foundations with Seasonal Cooling Devices in the Cryolithozone of the Sakha Republic (Yakutia). Arctic and Antarctic. 2017; 4: 86-97. (In Russ.). https://doi.org/10.7256/2453-8922.2017.4.25036.
- 4. Куштин В.И., Ревякин А.А., Соколова В.А. и др. Современные методы мониторинга деформаций зданий и сооружений. Инженерный вестник Дона. 2020; 11 (71): 27-37. Kushtin V.I., Revyakin A.A., Sokolova V.A., et al. Modern Methods of Monitoring Deformations of Buildings and Structures. Engineering Bulletin of the Don. 2020; 11 (71): 27-37. (In Russ.).
- 5. Макарьева О.М., Землянскова А.А., Абрамов Д.А. и др. Региональная система мониторинга многолетнемерзлых пород Магаданской области. Рельеф и четвертичные образования Арктики, Субарктики и Северо-Запада России. 2023; 10: 192-195. Makarieva O.M., Zemlyanskova A.A., Abramov D.A., et al. Regional Monitoring System of Permafrost in the Magadan Region. Relief and Quaternary Formations of the Arctic, Subarctic, and North-West of Russia. 2023; 10: 192-195. (In Russ.). https://doi.org/10.24412/2687-1092-2023-10-192-195.
- 6. Melnikov V.P., Osipov V.I., Bruchkov A.V., et al. Past and Future of Perma-frost Monitoring: Stability of Russian Energetic Infrastructure. Energies. 2022; 15 (9): 3190. https://doi.org/10.3390/en15093190.
- 7. Нестеренко М.Ю., Цвяк А.В. Оценка возможности и точности применения GNSS-систем для мониторинга деформаций земной поверхности на разрабатываемых месторождениях углеводородов. Бюллетень Оренбургского научного центра УрО РАН. 2016; 4: 15. Nesterenko M.Yu., Tsvyak A.V. Assessment of the Possibility and Accuracy of Using GNSS Systems for Monitoring Earth Surface Deformations at Hydrocarbon Deposits under Development. Bulletin of the Orenburg Scientific Center of the Ural Branch of the Russian Academy of Sciences. 2016; 4: 15. (In Russ.).
- 8. Нестеренко Ю.М. Цвяк А.В., Нестеренко М.Ю. Методические основы геодинамического мониторинга с использованием глобальных навигационных спутниковых систем. Бюллетень Оренбургского научного центра УрО РАН. 2017; 4: 10. Nesterenko Yu.M., Tsvyak A.V., and Nesterenko M.Yu. Methodological Foundations of Geodynamic Monitoring Using Global Navigation Satellite Systems. Bulletin of the Orenburg Scientific Center of the Ural Branch of the Russian Academy of Sciences. 2017; 4: 10. (In Russ.).
- 9. Шевчук Р.В., Маневич А.И., Акматов Д.Ж. и др. Современные методы, методики и технические средства мониторинга движений земной коры. Горная промышленность. 2022; 5: 99-104. Shevchuk R.V., Manevich A.I., Akmatov D.Zh., et al. Modern Methods, Techniques, and Technical Means of Monitoring Earthquake Movements. Mining Industry. 2022; 5: 99-104. (In Russ.). https://doi.org/10.30686/1609-9192-2022-5-99-104.
- 10. Юров Ф.Д. Особенности организации мониторинга линейных транспортных систем в криолитозоне. Перспективы развития инженерных изысканий в строительстве в Российской Федерации: Материалы Семнадцатой oбщероссийской научно-практической конференции и выставки изыскательских организаций, Москва, 29 ноября – 02 декабря 2022 года. Москва, 2022: 234-242. Yurov F.D. Features of the organization of monitoring of linear transport systems in the permafrost zone. Prospects for the development of engineering surveys in construction in the Russian Federation: Materials of the Seventeenth All-Russian Scientific and Practical Conference and Exhibition of Surveying Organizations, Moscow, November 29 – December 02, 2022. Moscow, 2022: 234-242. (In Russ.).
- 11. Harmening C., Neuner H. A spatio-temporal deformation model for laser scanning point clouds. Journal of Geodesy. 2020; 94 (2): 26. https://doi. org/10.1007/s00190-020-01352-0.
- 12. Jahr T. Non-tidal tilt and strain signals recorded at the Geodynamic Observatory Moxa, Thuringia / Germany. Geodesy and Geodynamics. 2018; 9 (3): 229-236. https://doi.org/10.1016/j.geog.2017.03.015.
- 13. Jahr T., Kroner C., Lippmann A. Strainmeters at Moxa observatory, Germany. Journal of Geodynamics. 2006; 41 (1-3): 205-212. https://doi. org/10.1016/j.jog.2005.08.017.
- 14. Liu L., Schaefer K., Zhang T., et al. Recent Warming Degradation of Permafrost in the Northern Hemisphere: A Multi-Model Assessment. The Cryosphere. 2021; 15: 1-25.
- 15. Makarieva O.M, Zemlianskova A., Abramov D., et al. Geocryological Conditions of Small Mountain Catchment in the Upper Kolyma Highland (Northeastern Asia). Geosciences. 2024; 14: 88. https://doi.org/10.3390/geosciences14040088.
- 16. Melnikov V.P., Osipov V.I., Brouchkov A.V., et al. Climate warming and permafrost thaw in the Russian Arctic: Potential economic impacts on public infrastructure by 2050. Natural Hazards. 2022; 112(1): 231-251. https://doi.org/10.1007/s11069-021-05179-6.
- 17. Telling J., Lyda A., Hartzell P., et al. Review of Earth science research using terrestrial laser scanning. Earth-Science Reviews. 2017; 169: 35-68. https://doi.org/10.1016/j.earscirev.2017.04.007.
