COMBINING GEODETIC AND GEOPHYSICAL METHODS FOR STUDYING LANDSLIDE PROCESSES AFTER CONSTRUCTION COMPLETION

Engineering Surveying & Deformation Monitoring

Authors

First and Last Name Academic degree E-mail Affiliation
Anatolii Vivat Ph.D. anatoliyvivat [at] gmail.com Department of Engineering Geodesy Lviv Polytechnic National University
Lviv, Ukraine
Anatolii Tserklevych Sc.D. Anatolii.L.Tserklevych [at] lpnu.ua Department of Engineering Geodesy Lviv Polytechnic National University
Lviv, Ukraine
Natalia Nazarchuk No natalianazarchuk14 [at] gmail.com Guild of Geodesist Engineers
Lviv, Ukraine
Yaroslav Balabuk Ph.D. yaroslav.a.balabukh [at] lpnu.ua Department of Highways and Bridges Lviv Polytechnic National University
Lviv, Ukraine
Yurii Turba Ph.D. yurii.v.turba [at] lpnu.ua Department of Highways and Bridges Lviv Polytechnic National University
Lviv, Ukraine

I and my co-authors (if any) authorize the use of the Paper in accordance with the Creative Commons CC BY license

First published on this website: 27.08.2023 - 15:15
Abstract 

The combination of geodetic and geophysical research methods in the study of landslide processes is highly relevant as it provides opportunities to comprehend deformational phenomena. Typically, observations of deformations in constantly changing natural environments are conducted to monitor, study, and predict such dynamic systems. Various factors at the global, regional, and local scales influence these dynamic systems, including movements of tectonic plates, weather fluctuations, mass displacements of soil, alterations in river courses, and more. Researchers attempt to anticipate these changes by developing a priori models. To verify these models, measurements must be carried out.In monitoring studies, numerous methods are employed, such as geodetic, geophysical, ground-penetrating radar, electromagnetic, and others. In our research, we investigate the combination of geodetic and geophysical methods, which has yielded promising results for making informed decisions regarding road stabilization in Lviv city. This integrated approach enhances the understanding of deformation processes and contributes to the development of effective solutions for managing geological hazards and ensuring the stability of infrastructure.

References 

Atanasova, M., & Nikolov, H. (2019, October). Studying the coastal landslides processes by InSAR. In Earth Resources and Environmental Remote Sensing/GIS Applications X (Vol. 11156, pp. 225-234). SPIE.

Atanasova, M., Nikolov, H., Georgiev, I., Ivanov, A., & Dimitrov, N. (2019, September). Monitoring of landslide processes at the NE Bulgaria by joint use of GNSS and InSAR. In Proceeding 10th Congress of Balkan Geophysical Society (pp. 18-22).

Nguyen, M. D., Van Thang, N., Wakai, A., Sato, G., Karnjana, J., Hung, H. V., ... & Pham, B. T. (2021). Identification, Monitoring, and Assessment of an Active Landslide in Tavan-Hauthao, Sapa, Laocai, Vietnam–A Multidisciplinary Approach. Journal of Disaster Research, 16(4), 501-511.

Pleterski, Ž., Kregar, K., & Urbančič, T. (2022). Geodetic datum determination for the urbas landslide geodetic network. Network, 536, 552.

Sahaidak, M., & Berlinsky, M. (2020). Monitoring the development of landslides in the territory of Melekyne settlement (Mangush district, Donetsk region). (In Ukraine).

SP 2.3-37641918-544:2014 "Use of Geosynthetic Materials in Road Constructions. Main Requirements." (In Ukraine).

Tymchenko, O., (2014). Monitoring and prediction of slope failure along the Simferopol-Yalta-Sevastopol highway. Scientific Notes, (45), 546-552. (In Ukraine).

Vivat, A., Tretyak, K., Savchyn, I., Lano, O., & Navodych, M. (2021, October). Analysis and comparison of static and RTK measurements: case study for GNSS network of the Dnister PSPP. In International Conference of Young Professionals «GeoTerrace-2021» (Vol. 2021, No. 1, pp. 1-5). European Association of Geoscientists & Engineers.

Vivat, A., Nazarchuk, N., Brusak, I., & Hrabovyi, O. (2020, December). Research of motion fixing system based on micro electro mechanical systems. In International Conference of Young Professionals «GeoTerrace-2020» (Vol. 2020, No. 1, pp. 1-5). European Association of Geoscientists & Engineers.

Vivat, A., Nazarchuk, N., Tserklevych, A., Petrov, S., Mandzuk, V., & Lebedenko, V. (2022, November). Development of the Landslides System Operational Monitoring Used Geodesy Equipment. In 16th International Conference Monitoring of Geological Processes and Ecological Condition of the Environment (Vol. 2022, No. 1, pp. 1-5). European Association of Geoscientists & Engineers.

Tretiak, K. R., Petrov, S. L., Holubinka, Y. I., & Al-Alusi, F. K. F. (2014). Stability Analysis of Points in the Automated Geodetic Monitoring System for Engineering Structures of the Kaniv Hydroelectric Power Plant. Geodesy, Cartography, and Aerial Photography, L.: Lviv Polytechnic Publishing House, 80, 5-19.

Wang, H., Zhang, L., Luo, H., He, J., & Cheung, R. W. M. (2021). AI-powered landslide susceptibility assessment in Hong Kong. Engineering Geology, 288, 106103.