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An integrated approach for landslide hazard assessment: A case study of the Middle Dnieper Basin, Ukraine

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Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Ukraine is characterised by active natural hazards processes within different structural, tectonic and landscape zones. In Middle Dnieper basin region mass movement processes have great impact on people’s livelihoods and infrastructure. These processes occur on the slopes with different geological structure. The determining causes include lithologic and stratigraphic conditions, hydrogeological regime, structural and textural peculiarities of rocks and the geomorphology of the slopes. Landslide inventory database has been developed based on long-term observations of more than 400 landslides and landslide-prone areas. This paper takes efforts forward by combining different geological and geophysical methods to advance the current understanding of landslide phenomena and contributing towards a better informed assessment of landslide hazard and risk. The developed methodology is implemented in a test sites of Kyiv region, covering an area of 18.3 km2 situated in the Middle Dnieper basin. Electrical Resistivity Tomography, Self-Potential and Infrared Thermography techniques were employed to investigate the lithostratigraphic sequences, the geometry of landslide body and potential mass movement. The results presented here confirm the potential of using an integrated approach that combines different field data to better plan mitigation activities and measures for the effective land management. This study will be useful in increasing the safety aspects of the infrastructures and lives and also for planning of research and developmental activities.
Wydawca
Rocznik
Tom
Strony
81--86
Opis fizyczny
Bibliogr. 20 poz., fot., rys., wykr.
Twórcy
autor
  • Taras Shevchenko National University of Kyiv, Institute of Geology, 60, Volodymyrska str., Kyiv, 03001, Ukraine
  • City, University of London, School of Mathematics, Computer Science and Engineering, Department of Civil Engineering, London, United Kingdom
  • Taras Shevchenko National University of Kyiv, Institute of Geology, 60, Volodymyrska str., Kyiv, 03001, Ukraine
  • Taras Shevchenko National University of Kyiv, Institute of Geology, 60, Volodymyrska str., Kyiv, 03001, Ukraine
  • Taras Shevchenko National University of Kyiv, Institute of Geology, 60, Volodymyrska str., Kyiv, 03001, Ukraine
  • Taras Shevchenko National University of Kyiv, Institute of Geology, 60, Volodymyrska str., Kyiv, 03001, Ukraine
Bibliografia
  • DAHLIN T. 1996. 2D resistivity surveying for environmental and engineering applications. First Break. Vol. 14. Iss. 7 p. 275–284. DOI 10.3997/1365-2397.1996014.
  • FOSTER C., GIBSON A., WILDMAN G. 2008. The new national Landslide Database and Landslide hazard assessment of Great Britain [online]. First World Landslide Forum. Tokyo, Japan 18–21 November 2008 p. 203–206. [Access 05.09.2020]. Available at: http://nora.nerc.ac.uk/4694/
  • FRODELLA W., FIDOLINI F., MORELLI S., PAZZI V. 2015. Application of Infrared Thermography for landslide mapping: the Rotolon DSGDS case study. Rendiconti Online della Società Geologica Italiana. No. 35 p. 144–147. DOI 10.3301/ROL.2015.85.
  • FRODELLA W., GIGLI G., MORELLI S., LOMBARDI L., CASAGLI N. 2017. Landslide mapping and characterization through Infrared Thermography (IRT): Suggestions for a methodological approach from some case studies. Remote Sensing. Vol. 9(12), 1281. DOI 10.3390/rs9121281.
  • FRODELLA W., MORELLI S., GIGLI G., CASAGLI N. 2014. Contribution of infrared thermography to the slope instability characterization. [online] Proceedings of World Landslide Forum 3. Beijing, China 2–6 June 2014. [Access 05.09.2020]. Available at: http://hdl.handle.net/11576/2690166
  • GARCÍA-RODRÍGUEZ M.J., MALPICA J.A., BENITO B., DIAZ M. 2008. Susceptibility assessment of earthquake-triggered landslides in El Salvador using logistic regression. Geomorphology. Vol. 95. Iss. 3 p. 172–191. DOI 10.1016/j.geomorph.2007.06.001.
  • GIGLI G., FRODELLA W., GARFAGNOLI F., MORELLI S., MUGNAI F., MENNA F., CASAGLI N. 2014. 3-D geomechanical rock mass characterization for the evaluation of rockslide susceptibility scenarios. Land-slides. Vol. 11 p. 131–140. DOI 10.1007/s10346-013-0424-2.
  • IVANIK O., SHEVCHUK V., KRAVCHENKO D., YANCHENKO V., SHPYRKO S., GADIATSKA K. 2019. Geological and geomorphological factors of natural hazards in Ukrainian Carpathians. Journal of Ecological Engineering. Vol. 20. Iss. 4 p. 177–186. DOI 10.12911/22998993/102964.
  • JABOYEDOFF M., OPPIKOFER T., ABELLÁN A., DERRON M.-H., LOYE A., METZGER R., PEDRAZZINI A. 2012. Use of LIDAR in landslide investigations: A review. Natural Hazards. No. 61 p. 5–28. DOI 10.1007/s11069-010-9634-2.
  • MARESCOT L., MONNET R., CHAPELLIER D. 2008. Resistivity and induced polarization surveys for slope instability studies in the Swiss Alps. Engineering Geology. Vol. 98(1) p. 18–28. DOI 10.1016/j.enggeo.2008.01.010.
  • MENSHOV O., SHEVCHENKO O., ANDREEVA O. 2020. Integration of magnetic and hydrogeological studies for landslides and soil erosion assessment. Case study from area Lake Glinka (Kyiv, Ukraine). Geoinformatics: Theoretical and Applied Aspects 2020. Conference Proceedings. Vol. 2020. 11–14.05.2020. Kyiv p. 1–5. European Association of Geoscientists & Engineers. DOI 10.3997/2214-4609.2020geo122.
  • MYKOLAENKO O.A., ZHYRNOV P.V., TOMCHENKO O.V., PIDLISETSKA I.O. 2020. Exogenic processes’ remote monitoring of Kanivske Reservoir’s right bank. Geoinformatics: Theoretical and Applied Aspects 2020. Conference Proceedings. Vol. 2020. 11–14.05.2020. Kyiv p. 1–5. European Association of Geoscientists & Engineers. DOI 10.3997/2214-4609.2020geo099.
  • PATELLA D. 1997. Introduction to ground surface self-potential tomography. Geophysical Prospecting. Vol. 45. Iss. 4 p. 653– 681. DOI 10.1046/j.1365-2478.1997.430277.x.
  • PERRONE A., LAPENNA V., PISCITELLI S. 2014. Electrical resistivity tomography technique for landslide investigation: A review. Earth-Science Reviews. Vol. 135 p. 65–82. DOI 10.1016/j.earscirev.2014.04.002.
  • REYNOLDS J. M. 2011. An introduction to applied and environmental geophysics. Chichester. John Wiley and Sons Ltd. ISBN 978-0- 471-48535-3 (pbk) pp. 710.
  • SANTOSO B., HASANAH M.U., SETIANTO 2019. Landslide investigation using self potential method and electrical resistivity tomography (Pasanggrahan, South Sumedang, Indonesia). IOP Conference Series: Earth and Environmental Science. Vol. 311 p. 1–9. International Symposium on Geophysical Issues. 2–4.06.2018, Bandung, Indonesia. DOI 10.1088/1755-1315/311/1/012068.
  • TELFORD W.M., GELDART L.P., SHERIFF R.E. 1990. Applied geophysics. Cambridge. Cambridge University Press. ISBN 9780521339384 pp. 792. DOI 10.1017/CBO9781139167932.
  • TEZA G., MARCATO G., CASTELLI E., GALGARO A. 2012. IRTROCK: A Matlab toolbox for contactless recognition of surface and shallow weakness traces of a rock mass by infrared thermo-graphy. Computers & Geosciences. Vol. 45 p. 109–118. DOI 10.1016/j.cageo.2011.10.022.
  • VYZHVA S., ONYSHCHUK V., ONYSHCHUK I., REVA M., SHABATURA O. 2019. Application of geophysical methods in the study of landslides. 18th International Conference on Geoinformatics – Theoretical and Applied Aspects. Kyiv, May 2019. European Association of Geoscientists & Engineers Source p. 1–5. DOI 10.3997/2214-4609.201902066.
  • WU J.H., LIN H.M., LEE D.H., FANG S.C. 2015. Integrity assessment of rock mass behind the shotcreted slope using thermography. Engineering Geology. Vol. 80. No. 1–2 p. 164–173. DOI 10.1016/j.enggeo.2005.04.005.
Uwagi
Opracowanie rekordu ze środków MEiN, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2022-2023).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-553a52a8-04a1-488f-b899-741f0d2531cc
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