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Article

Unlocking Coastal Insights: An Integrated Geophysical Study for Engineering Projects—A Case Study of Thorikos, Attica, Greece

by
Stavros Karizonis
* and
George Apostolopoulos
School of Mining and Metallurgical Engineering, National Technical University of Athens, 15780 Athens, Greece
*
Author to whom correspondence should be addressed.
Geosciences 2025, 15(6), 234; https://doi.org/10.3390/geosciences15060234
Submission received: 4 April 2025 / Revised: 4 June 2025 / Accepted: 13 June 2025 / Published: 19 June 2025
(This article belongs to the Section Geophysics)

Abstract

Urban expansion in coastal areas involves infrastructure development, industrial growth, and mining activities. These coastal environments face various environmental and geological hazards that require geo-engineers to devise solutions. An integrated geophysical approach aims to address such complex challenges as sea level rise, sea water intrusion, shoreline erosion, landslides and previous anthropogenic activity in coastal settings. In this study, the proposed methodology involves the systematic application of geophysical methods (FDEM, 3D GPR, 3D ERT, seismic), starting with a broad-scale survey and then proceeding to a localized exploration, in order to identify lithostratigraphy, bedrock depth, sea water intrusion and detect anthropogenic buried features. The critical aspect is to leverage the unique strengths and limitations of each method within the coastal environment, so as to derive valuable insights for survey design (extension and orientation of measurements) and data interpretation. The coastal zone of Throrikos valley, Attica, Greece, serves as the test site of our geophysical investigation methodology. The planning of the geophysical survey included three phases: The application of frequency-domain electromagnetic (FDEM) and 3D ground penetrating radar (GPR) methods followed by a 3D electrical resistivity tomography (ERT) survey and finally, using the seismic refraction tomography (SRT) and multichannel analysis of surface waves (MASW). The FDEM method confirmed the geomorphological study findings by revealing the paleo-coastline, superficial layers of coarse material deposits and sea water preferential flow due to the presence of anthropogenic buried features. Subsequently, the 3D GPR survey was able to offer greater detail in detecting the remains of an old marble pier inland and top layer relief of coarse material deposits. The 3D ERT measurements, deployed in a U-shaped grid, successfully identified the anthropogenic feature, mapped sea water intrusion, and revealed possible impermeable formation connected to the bedrock. ERT results cannot clearly discriminate between limestone or deposits, as sea water intrusion lowers resistivity values in both formations. Finally, SRT, in combination with MASW, clearly resolves this dilemma identifying the lithostratigraphy and bedrock top relief. The findings provide critical input for engineering decisions related to foundation planning, construction feasibility, and preservation of coastal infrastructure. The methodology supports risk-informed design and sustainable development in areas with both natural and cultural heritage sensitivity. The applied approach aims to provide a complete information package to the modern engineer when faced with specific challenges in coastal settings.
Keywords: coastal geophysics; integrated geophysical survey in coastal areas; seawater intrusion; 3D ground penetrating radar (3D GPR); 3D electrical resistivity tomography (3D ERT); frequency electromagnetic method (FDEM); seismics (refraction tomography & MASW) coastal geophysics; integrated geophysical survey in coastal areas; seawater intrusion; 3D ground penetrating radar (3D GPR); 3D electrical resistivity tomography (3D ERT); frequency electromagnetic method (FDEM); seismics (refraction tomography & MASW)

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MDPI and ACS Style

Karizonis, S.; Apostolopoulos, G. Unlocking Coastal Insights: An Integrated Geophysical Study for Engineering Projects—A Case Study of Thorikos, Attica, Greece. Geosciences 2025, 15, 234. https://doi.org/10.3390/geosciences15060234

AMA Style

Karizonis S, Apostolopoulos G. Unlocking Coastal Insights: An Integrated Geophysical Study for Engineering Projects—A Case Study of Thorikos, Attica, Greece. Geosciences. 2025; 15(6):234. https://doi.org/10.3390/geosciences15060234

Chicago/Turabian Style

Karizonis, Stavros, and George Apostolopoulos. 2025. "Unlocking Coastal Insights: An Integrated Geophysical Study for Engineering Projects—A Case Study of Thorikos, Attica, Greece" Geosciences 15, no. 6: 234. https://doi.org/10.3390/geosciences15060234

APA Style

Karizonis, S., & Apostolopoulos, G. (2025). Unlocking Coastal Insights: An Integrated Geophysical Study for Engineering Projects—A Case Study of Thorikos, Attica, Greece. Geosciences, 15(6), 234. https://doi.org/10.3390/geosciences15060234

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