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Crete
Fast and efficient void detection in carbonates by combined ERT and borehole data: A case study from Chania Airport in Greece
Quaternary influx of proximal coarse-grained dust altered circum-Mediterranean soil productivity and impacted early human culture
New constraints from U–Pb dating of detrital zircons on the palaeogeographic origin of metasediments in the Talea Ori, central Crete
The Late Bronze Age Eruption of Santorini Volcano and Its Impact on the Ancient Mediterranean World
The tectonometamorphic evolution of the Uppermost Unit south of the Dikti Mountains, Crete
Abstract The Eastern Mediterranean is one of the most seismically active regions in Europe. Crete, located in the centre of the Eastern Mediterranean, should experience tsunamis resulting from large magnitude earthquakes or volcanic eruptions. At three locations, boulders were observed that may relate to tsunami or storm events. At Lakki, the size of the boulders slightly favours a tsunami origin for deposition. By contrast, at Kommos, boulder size and geomorphology are consistent with storm parameters in the Mediterranean. The most compelling evidence for tsunami transport is found at Diplomo Petris, where a lithologically varied grouping of large boulders (≤690 t) is exposed at sea level. The calculated storm wave heights (15 m) required to transport the observed boulders significantly exceeds winter averages: therefore, these accumulations are interpreted as tsunami deposits. Radiocarbon dating of encrusting biological material was undertaken to constrain periods of boulder motion. Encrustations from Diplomo Petris and Lakki predate the 365 CE earthquake, suggesting that this event transported the largest boulders; the first time that boulder deposits have been identified on Crete from this tsunami. Therefore, these data are important for developing local and regional hazard assessments but also to inform numerical models of tsunami propagation in the Mediterranean.
Pleistocene submerged landscapes and Palaeolithic archaeology in the tectonically active Aegean region
Abstract In this paper we review the main, long- and short-term geological and geotectonic processes that have controlled the development of Pleistocene landscapes in the Aegean region above and below the fluctuating sea level. We discuss the potential for further research on reconstruction of submerged landscapes of the continental shelf and beyond with the aim of addressing questions concerning Palaeolithic settlement. The geological, tectonic, morphological and hydrogeological background provides information for the assessment of the natural resources available to hominins. Along with the palaeogeographical evolution of the shallow coastal and shelf areas, they are examined in parallel with the terrestrial archaeological record in order to open windows to future work in a region that has remained marginal to human origins research. On the basis of the multi-variable tectonic evolution and geomorphological configuration of the coastal and shelf areas, we propose to divide the Aegean region into nine geographical units, each with its own geotectonic and morphological history and traits. These units can be further grouped to provide larger neighbouring and culturally meaningful regions, suitable for archaeological analysis, or subdivided to provide smaller target areas in which to work.
Magnetic properties of soils in a designated Natura area (GR4310010, Giouchtas Mountain)
Tracking Earthquake Archaeological Evidence in Late Minoan IIIB (∼1300–1200 B.C.) Crete (Greece): A Proof of Concept
Structural decoupling in a convergent forearc setting (southern Crete, Eastern Mediterranean)
All That Rubble Leads to Trouble: Reassessing the Seismological Value of Archaeological Destruction Layers in Minoan Crete and Beyond
Two-dimensional inversion of direct current resistivity data incorporating topography by using finite difference techniques with triangle cells: Investigation of Kera fault zone in western Crete
Supplementary Cementitious Materials
Western Crete: From Captain Spratt to modern archaeoseismology
The earliest use of seismological observation to identify and date archaeological sites in western Crete was attempted by Captain T.A.B. Spratt in the late nineteenth century. Since then, the development of the subdiscipline of archaeoseismology has offered a great deal to our understanding of western Crete, especially regarding major sites such as Phalasarna and Kissamos. This paper is a review and summary of archaeoseismology in western Crete, presenting the archaeoseismological and excavation evidence from Phalasarna and Kissamos. It also presents evidence from other archaeological sites in western Crete and expresses the potential the region has for future archaeoseismological research.