PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
October 9, 2025Reviews of Geophysics4 citationsOpen Access

Meteorological Tsunamis: From Local Hazard to Global Relevance

View Full Paper
IVIvica VilibićPZPetra ZemunikJŠJadranka Šepić

Key Points

  • Meteotsunamis can cause severe flooding and damage, with multi-meter sea level oscillations reported.
  • Recent advances allow real-time tracking and simulation of meteorological tsunamis using climate models.
  • Global hazard mapping efforts are underway to assess meteotsunami risks across coastal areas.
  • The 2022 volcanic eruption has highlighted the potential for meteotsunamis to become a global hazard.

Abstract

Abstract Research on meteorological tsunamis or meteotsunamis—long ocean waves in the tsunami frequency band generated by propagating atmospheric disturbances which resonantly enhance ocean waves—has grown significantly in recent decades. This expansion is due to progress in (a) ocean and atmospheric measurements, including advanced instrumentation with higher precision and smaller sampling time steps, as well as installation of meteotsunami tracking measurement networks, (b) ocean and atmospheric data products, including those related to the upper atmosphere and ionosphere, and (c) supercomputing capabilities and sophisticated atmosphere‐ocean models that successfully simulate both atmospheric planetary processes and mesoscale systems capable of generating meteotsunamis, as well as sea level response to these. Meteotsunamis can induce multi‐meter sea level oscillations in harbors and low‐lying areas, leading to severe flooding, infrastructure damage, injuries, and sometimes fatalities. Traditionally, meteotsunami research focused on individual event analyses using available sea level and lower‐layer atmospheric observations. Recently, efforts have shifted toward global hazard mapping, the development of forecast and early‐warning systems, and toward quantifying projected meteotsunamis intensity and frequency, using climate models. The January 2022 eruption of the Hunga Tonga‐Hunga Ha'apai volcano, which generated acoustic‐gravity waves that circled the globe, has spurred research of planetary meteotsunami waves and their potential to pose coastal hazards worldwide. Additionally, meteotsunamis radiate acoustic‐gravity waves vertically, creating ionospheric oscillations detectable through electron content variations. This review will cover the mentioned developments and conclude with a discussion of research gaps and potential directions for further studies.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Vilibić et al. (2025) studied this question.

synapsesocial.com/papers/68e70db790569dd607ee6606https://doi.org/10.1029/2024rg000867
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1The Mediterranean and Black Sea meteotsunamis: an overview2020 · 36 citations
  2. 2Twenty-Seven Years of Progress in the Science of Meteorological Tsunamis Following the 1992 Daytona Beach Event2019 · 134 citations
  3. 3Modelling extreme water levels using intertidal topography and bathymetry derived from multispectral satellite images2023 · 11 citations
  4. 4Unequal distributions of crowdsourced weather data in England and Wales2024 · 25 citations
  5. 5Atmospheric processes responsible for generation of the 2008 Boothbay meteotsunami2013 · 41 citations