Published January 1, 2024 | Version v1
Journal article Open

Liquefaction ground deformations and cascading coastal flood hazard in the 2023 Kahramanmaraş earthquake sequence

  • 1. Ohio State Univ, Dept Civil Environm & Geodet Engn, 2036 Neil Ave, Columbus, OH 43210 USA
  • 2. Portland State Univ, Dept Civil & Environm Engn, Portland, OR USA
  • 3. Univ Calif Berkeley, Dept Civil & Environm Engn, Berkeley, CA USA
  • 4. Middle East Tech Univ, Dept Civil Engn, Ankara, Turkiye
  • 5. Univ Calif Los Angeles, Dept Civil & Environm Engn, Los Angeles, CA USA
  • 6. Zemin Etud & Tasarim AS, Istanbul, Turkiye
  • 7. Iskenderun Tech Univ, Dept Civil Engn, Hatay, Turkiye

Description

The 2023 Kahramanmara & scedil; earthquake sequence produced extensive liquefaction-induced ground deformations and ongoing flooding along the shoreline of the Mediterranean port city of & Idot;skenderun, T & uuml;rkiye. This study compiles field observations and analyses from cross-disciplinary perspectives to investigate whether earthquake-induced liquefaction was a significant factor for increasing the flood hazard in & Idot;skenderun. Geotechnical reconnaissance observations following the earthquakes included seaward lateral spreading, settlement beneath buildings, and failures of coastal infrastructure. Three presented lateral spreading case histories indicate consistent ground deformation patterns with areas of reclaimed land. Persistent scatterer interferometry (PSI) measurements from synthetic aperture radar (SAR) imagery identify a noticeably greater rate of pre- and post-earthquake subsidence within the & Idot;skenderun coastal and urban areas relative to the surrounding regions. The PSI measurements also indicate subsidence rates accelerated following the earthquakes and were typically highest near the observed liquefaction manifestations. These evaluations suggest that while the liquefaction of coastal reclaimed fill caused significant ground deformations in the shoreline area, ongoing subsidence of & Idot;skenderun and other factors likely also exacerbated the flood hazard. Insights from this work suggest the importance of evaluating multi-hazard liquefaction and flood consequences for enhancing the resilience of coastal cities.

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