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May 9, 2026Scientific Reports0 citationsOpen Access

Small-scale phreatic explosions from a low-enthalpy hydrothermal system caused the abandonment of Milos Island (Greece) in Roman times

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RSRoberto SulpizioFLFederico LucchiFLFederico Lucci

Key Points

  • The research aims to understand the causes and effects of phreatic explosions in the geothermal system of Milos Island during Roman times.
  • Analysis of field and laboratory data from the hydrothermal system on Milos Island.
  • Examination of historical records related to seismic events, particularly the AD 365 Crete earthquake.
  • Investigation of archaeological finds, including Roman-age pottery beneath phreatic deposits.
  • Phreatic explosions occurred at depths of 3–20 m, linked to rapid depressurization from seismic activity.
  • Evidence of repeated explosive events indicates a destabilized hydrothermal system over time.
  • Archaeological findings suggest a correlation between these explosions and the decline of settlement activity on Milos in the fourth century AD.

Abstract

This study investigates the mechanisms underlying phreatic explosions within the geothermal system of eastern Milos Island. Field, laboratory and historical data suggest that a long-standing hydrothermal system, characterized by silica-rich crusts over altered rhyolitic lava domes and volcaniclastics, experienced multiple explosive events leading to its eventual disruption. The explosions, occurring at depths of 3–20 m, were likely triggered by rapid depressurization, possibly induced by seismic activity. Intermediate to large-magnitude local earthquakes or large-magnitude regional earthquakes, such as the AD 365 Crete event, could have generated dynamic stress sufficient to destabilize the system, leading to cavitation-driven explosions. Overlapping craters and deposits indicate repeated explosive activity over years, ultimately resulting in the exhaustion of the hydrothermal system. Archaeological evidence, including Roman-age pottery beneath phreatic deposits, suggests that the explosions were sudden and unanticipated. The concurrent decline in settlement activity on Milos during the fourth century AD may be linked to these disruptions, in combination with broader regional seismic and socio-economic factors. This study highlights the sensitivity of hydrothermal systems to external stressors and the potential role of seismic events in triggering phreatic explosions.

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Cite This Study

Sulpizio et al. (2026) studied this question.

synapsesocial.com/papers/69fecf49b9154b0b8287654ehttps://doi.org/10.1038/s41598-026-43334-w
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