Marine Geohazards of the Bay of Naples (Southern Tyrrhenian Sea, Italy): A Review Integrating Morpho-Bathymetric and Seismo-Stratigraphic Analysis
Abstract
:1. Introduction
2. Geological Setting
3. Materials and Methods
4. Results
4.1. Literature Review
4.1.1. Earthquakes
4.1.2. Submarine Landslides
4.1.3. Marine Tephra
4.1.4. Pyroclastic Density Currents
4.1.5. Tsunamis
4.2. Morpho-Bathymetric and Seismo-Stratigraphic Analysis
4.2.1. Ammontatura Slope Basin
4.2.2. Northern Ischia Debris Avalanche Deposits
5. Discussion and Conclusions
Author Contributions
Funding
Conflicts of Interest
References
- Kopp, H.; Chiocci, F.L.; Berndt, C.; Çağatay, M.N.; Ferreira, T.; Fortes, C.J.E.M.; Gràcia, E.; González Vega, A.; Kopf, A.; Sørensen, J.; et al. Marine Geohazards: Safeguarding Society and the Blue Economy from a Hidden Threat; Position Paper 26 of the European Marine Board; European Marine Board IVZW: Ostend, Belgium, 2021; pp. 1–100. ISBN 9789464206111. [Google Scholar] [CrossRef]
- International Centre for Geohazard. Offshore Geohazards. 2003. Available online: https://www.yumpu.com/en/document/view/4725434/offshore-geohazards-ngi (accessed on 1 May 2024).
- CIESM. Marine Geo-Hazards in the Mediterranean; CIESM Workshop Monographs; CIESM: Monte Carlo, Monaco, 2011; Volume 42, pp. 1–192. [Google Scholar]
- Urgeles, R.; Camerlenghi, A. Submarine landslides of the Mediterranean Sea: Trigger mechanisms, dynamics, and frequency-magnitude distribution. J. Geophys. Res. 2013, 118, 2600–2618. [Google Scholar] [CrossRef]
- Ceramicola, S.; Praeg, D.; Coste, M.; Forlin, E.; Cova, A.; Colizza, E.; Critelli, S. Submarine Mass-Movements along the Slopes of the Active Ionian Continental Margins and Their Consequences for Marine Geohazards (Mediterranean Sea). In Submarine Mass Movements and Their Consequences, 1st ed.; Krastel, S., Behrmann, J., Volker, G., Urgeles, R., Chaytor, J., Huhn, K., Strasser, N., Harbitz, C., Eds.; Advances in Natural and Technological Hazards Research; Springer: Cham, Switzerland, 2014; Volume 37, pp. 295–306. [Google Scholar] [CrossRef]
- Camargo, J.M.R.; Silva, M.; Ferreira, A.; Araujio, T. Marine Geohazards: A Bibliometric-Based Review. Geosciences 2019, 9, 100. [Google Scholar] [CrossRef]
- Chivata Cardenas, I.; Flage, R.; Aven, T. Marine geohazards exposed: Uncertainties involved. Mar. Georesources Geotechnol. 2023, 41, 589–619. [Google Scholar] [CrossRef]
- Wang, Y.; Heidarzadeh, M.; Satake, K.; Mulia, I.E.; Yamada, M. A tsunami warning system based on offshore bottom pressure gauges and data assimilation for Crete Island in the Eastern Mediterranean Basin. J. Geophys. Res. Solid Earth 2020, 125, e2020JB020293. [Google Scholar] [CrossRef]
- Heidarzadeh, M.; Gusman, A.R.; Mulya, I.R. The landslide source of the eastern Mediterranean tsunami on 6 February 2023 following the MW 7.8 Kahramanmaraş (Türkiye) inland earthquake. Geosci. Lett. 2023, 10, 50. [Google Scholar] [CrossRef]
- Fusi, N.; Mirabile, L.; Camerlenghi, A.; Ranieri, G. Marine geophysical survey of the Gulf of Naples (Italy): Relationship between submarine volcanic activity and sedimentation. Mem. Soc. Geol. Ital. 1991, 47, 95–114. [Google Scholar]
- Milia, A.; Torrente, M.; Russo, M.; Zuppetta, A. Tectonics and crustal structure of the Campania continental margin: Relationships with volcanism. Mineral. Petrol. 2003, 79, 33–47. [Google Scholar] [CrossRef]
- Insinga, D.; Molisso, F.; Lubritto, C.; Sacchi, M.; Passariello, I.; Morra, V. The proximal marine record of Somma–Vesuvius volcanic activity in the Naples and Salerno bays, Eastern Tyrrhenian Sea, during the last 3 kyrs. J. Volcanol. Geoth. Res. 2008, 177, 170–186. [Google Scholar] [CrossRef]
- Sacchi, M.; Pepe, F.; Corradino, M.; Insinga, D.D.; Molisso, F.; Lubritto, C. The Neapolitan Yellow Tuff caldera offshore the Campi Flegrei: Stratal architecture and kinematic reconstruction during the last 15 ky. Mar. Geol. 2014, 354, 15–33. [Google Scholar] [CrossRef]
- Sacchi, M.; De Natale, G.; Spiess, V.; Steinmann, L.; Acocella, V.; Corradino, M.; de Silva, S.; Fedele, A.; Fedele, L.; Geshi, N.; et al. A roadmap for amphibious drilling at the Campi Flegrei caldera: Insights from a MagellanPlus workshop. Sci. Drill. 2019, 26, 29–46. [Google Scholar] [CrossRef]
- Chiocci, F.L.; De Alteriis, G. The Ischia debris avalanche: First clear submarine evidence in the Mediterranean of a volcanic island prehistorical collapse. Terra Nova 2006, 18, 202–209. [Google Scholar] [CrossRef]
- de Alteriis, G.; Scotto di Santolo, A.; Chiocci, F.L.; Ramondini, M.; Violante, C. The Case of Ischia Underwater Debris Avalanche (Italy, Tyrrhenian Sea) and Its High Mobility. In Engineering Geology for Society and Territory; Lollino, G., Manconi, A., Locat, J., Huang, Y., Canals Artigas, M., Eds.; Springer: Cham, Switzerland, 2014; Volume 4. [Google Scholar] [CrossRef]
- Milia, A. The Dohrn canyon: A response to the eustatic fall and tectonic uplift of the outer shelf along the eastern Tyrrhenian sea margin, Italy. Geo-Mar. Lett. 2000, 20, 101–108. [Google Scholar] [CrossRef]
- Aiello, G.; Iorio, M.; Molisso, F.; Sacchi, M. Integrated Morpho-Bathymetric, Seismic-Stratigraphic, and Sedimentological Data on the Dohrn Canyon (Naples Bay, Southern Tyrrhenian Sea): Relationships with Volcanism and Tectonics. Geosciences 2020, 10, 319. [Google Scholar] [CrossRef]
- Tinti, S.; Pagnoni, G.; Piatanesi, A. Simulation of tsunamis induced by volcanic activity in the Gulf of Naples (Italy). Nat. Hazards Earth Syst. Sci. 2003, 3, 311–320. [Google Scholar] [CrossRef]
- Tinti, S.; Chiocci, F.L.; Zaniboni, F.; Pagnoni, G.; de Alteriis, G. Numerical simulation of the tsunami generated by a past catastrophic landslide on the volcanic island of Ischia, Italy. Mar. Geophys. Res. 2011, 32, 287–297. [Google Scholar] [CrossRef]
- Selva, J.; Acocella, V.; Bisson, M.; Caliro, S.; Costa, A.; Della Seta, M.; De Martino, P.; de Vita, S.; Giordano, G.; Martino, S.; et al. Multiple natural hazards at volcanic islands: A review for the Ischia volcano (Italy). J. Appl. Volcanol. 2019, 8, 5. [Google Scholar] [CrossRef]
- Grezio, A.; Cinti, F.R.; Costa, A.; Faenza, L.; Perfetti, P.; Pierdominici, S.; Grezio, A.; Cinti, F.R.; Costa, A.; Faenza, L.; et al. Multisource Bayesian probabilistic tsunami hazard analysis for the Gulf of Naples (Italy). J. Geophys. Res. 2020, 125, e2019JC015373. [Google Scholar] [CrossRef]
- Aiello, G.; Caccavale, M. Quaternary Evolution of Ischia: A Review of Volcanology and Geology. Appl. Sci. 2023, 13, 3554. [Google Scholar] [CrossRef]
- Aiello, G.; Sacchi, M. New morpho-bathymetric data on marine hazard in the offshore of Gulf of Naples (Southern Italy). Nat. Hazards 2022, 111, 2881–2908. [Google Scholar] [CrossRef]
- Patacca, E.; Scandone, P. Geology of Southern Apennines. Boll. Soc. Geol. Ital. 2007, 75–119. [Google Scholar]
- Milia, A.; Torrente, M.M. Tectonics and stratigraphic architecture of a peri-Tyrrhenian half-graben (Gulf of Naples, Italy). Tectonophysics 1999, 315, 301–318. [Google Scholar] [CrossRef]
- Conti, A.; Bigi, S.; Cuffaro, M.; Doglioni, C.; Scrocca, D.; Muccini, F.; Cocchi, L.; Ligi, M.; Bortoluzzi, G. Transfer zones in an oblique back-arc basin setting: Insights from the Latium-Campania segmented margin (Tyrrhenian Sea). Tectonics 2017, 36, 78–107. [Google Scholar] [CrossRef]
- Malinverno, A. Evolution of the Tyrrhenian Sea-Calabrian Arc system: The past and the present. Rend Online Soc. Geol. Ital. 2012, 21, 11–15. [Google Scholar]
- Bigi, G.; Coli, M.; Cosentino, D.; Dal Piaz, G.V.; Parotto, M.; Sartori, R.; Scandone, P. Structural Model of Italy—Scale 1: 500.000; CNR 1983-SELCA 1992; Consiglio Nazionale delle Ricerche: Rome, Italy, 2017. [Google Scholar]
- Vitale, S.; Ciarcia, S. Tectono-stratigraphic setting of the Campania region (Southern Italy). J. Maps 2018, 14, 9–21. [Google Scholar] [CrossRef]
- Iannace, A.; Merola, D.; Perrone, V.; Amato, A.; Cinque, A.; Santacroce, R.; Sbrana, A.; Sulpizio, R.; Zanchetta, G.; Budillon, F.; et al. Note Illustrative della Carta Geologica d’Italia alla Scala 1: 50.000—Fogli 466—485 “Sorrento-Termini”; ISPRA, Servizio Geologico d’Italia: Rome, Italy, 2015; pp. 1–201. Available online: https://www.isprambiente.gov.it/Media/carg/note_illustrative/466_485_Sorrento_Termini.pdf (accessed on 26 February 2024).
- Gurioli, L.; Sulpizio, R.; Cioni, R.; Sbrana, A.; Santacroce, R.; Luperini, W.; Andronico, D. Pyroclastic flow hazard assessment at Somma–Vesuvius based on the geological record. Bull. Volcanol. 2010, 72, 1021–1038. [Google Scholar] [CrossRef]
- Bruno, P.; de Alteriis, G.; Florio, G. The western undersea section of the Ischia volcanic complex (Italy, Tyrrhenian sea) inferred by marine geophysical data. Geophys. Res. Lett. 2002, 29, 9. [Google Scholar] [CrossRef]
- De Vita, S.; Sansivero, F.; Orsi, G.; Marotta, E. Cyclical slope instability andvolcanism related to volcano-tectonism in resurgent calderas: The Ischia island (Italy) case study. Eng. Geol. 2006, 86, 148–165. [Google Scholar] [CrossRef]
- De Alteriis, G.; Violante, C. Catastrophic landslides off Ischia volcanic island (Italy) during prehistory. In Geohazard in Rocky Coastal Areas; Violante, C., Ed.; The Geological Society: London, UK, 2009; Volume 322, pp. 73–104. [Google Scholar] [CrossRef]
- Sbrana, A.; Toccaceli, R.M.; Biagio, G.; Cubellis, E.; Faccenna, C.; Fedi, M.; Florio, G.; Fulignati, P.; Giordano, F.; Giudetti, G.; et al. Geologic Map of Ischia, Scale 1:10.000—Maps and Explanatory Notes; Campania Region, Sector of Soil Defence, Geothermics and Geotechnics: Naples, Italy, 2011. [Google Scholar]
- Sbrana, A.; Marianelli, P.; Pasquini, G. Volcanology of Ischia (Italy). J. Maps 2018, 14, 494–503. [Google Scholar] [CrossRef]
- Della Seta, M.; Marotta, E.; Orsi, G.; De Vita, S.; Sansivero, F.; Fredi, P. Slope instability induced by volcano-tectonics as an additional source of hazard in active volcanic areas: The case of Ischia island (Italy). Bull. Volcanol. 2012, 74, 79–106. [Google Scholar] [CrossRef]
- Kilburn, C.R.J.; Carlino, S.; Danesi, S.; Pino, N.A. Potential for rupture before eruption at Campi Flegrei caldera, Southern Italy. Commun. Earth Environ. 2023, 4, 190. [Google Scholar] [CrossRef]
- De Novellis, V.; Carlino, S.; Castaldo, R.; Tramelli, A.; De Luca, C.; Pino, N.A.; Pepe, S.; Convertito, V.; Zinno, I.; De Martino, P.; et al. The 21 August 2017 Ischia (Italy) earthquake source model inferred from seismological, GPS, and DInSAR measurements. Geophys. Res. Lett. 2018, 45, 2193–2202. [Google Scholar] [CrossRef]
- Di Fiore, V.; Aiello, G.; D’Argenio, B. Gravity instabilities in the Dohrn Canyon (Bay of Naples, Southern Tyrrhenian Sea): Potential wave and run-up (tsunami) reconstruction from a fossil submarine landslide. Geol. Carpathica 2011, 62, 55–63. [Google Scholar] [CrossRef]
- Pratson, L.F.; Coakley, B.J. A model for the headward erosion of submarine canyons induced by downslope-eroding sediment flows. Geol. Soc. Am. Bull. 1996, 108, 225–234. [Google Scholar] [CrossRef]
- Aiello, G.; Caccavale, M. The Coastal Areas of the Bay of Naples: The Sedimentary Dynamics and Geological Evolution of the Naples Canyons. Geosciences 2023, 13, 226. [Google Scholar] [CrossRef]
- Satow, C.; Watt, S.; Cassidy, M.; Pyle, D.; Deng, Y.N. The Contributions of Marine Sediment Cores to Volcanic Hazard Assessments: Present Examples and Future Perspectives. Geosciences 2023, 13, 124. [Google Scholar] [CrossRef]
- Brown, R.J.; Orsi, G.; De Vita, S. New insights into Late Pleistocene explosive volcanic activity and caldera formation on Ischia (southern Italy). Bull. Volcanol. 2008, 70, 583–603. [Google Scholar] [CrossRef]
- de Alteriis, G.; Insinga, D.D.; Morabito, S.; Morra, V.; Chiocci, F.L.; Terrasi, F.; Lubritto, C.; Di Benedetto, C.; Pazzanese, M. Age of submarine debris avalanches and tephrostratigraphy offshore Ischia Island, Tyrrhenian Sea, Italy. Mar. Geol. 2010, 278, 1–18. [Google Scholar] [CrossRef]
- de Vita, S.; Di Vito, M.A.; Gialanella, C.; Sansivero, F. The impact of the Ischia Porto Tephra eruption (Italy) on the Greek colony of Pithekoussai. Quat. Int. 2013, 303, 142–152. [Google Scholar] [CrossRef]
- Tomlinson, E.; Albert, P.G.; Wulf, S.; Brown, R.J.; Smith, V.C.; Keller, J.; Orsi, G.; Bourne, A.J.; Menzies, M.A. Age and geochemistry of tephra layers from Ischia, Italy: Constraints from proximal-distal correlations with Lago Grande di Monticchio. J. Volcanol. Geoth. Res. 2014, 287, 22–39. [Google Scholar] [CrossRef]
- D’Antonio, M.; Arienzo, I.; Brown, R.J.; Petrosino, P.; Pelullo, C.; Giaccio, B. Petrography and Mineral Chemistry of Monte Epomeo Green Tuff, Ischia Island, South Italy: Constraints for Identification of the Y-7 Tephrostratigraphic Marker in Distal Sequences of the Central Mediterranean. Minerals 2021, 11, 955. [Google Scholar] [CrossRef]
- Primerano, P.; Giordano, G.; Costa, A.; de Vita, S.; Di Vito, M.A. Reconstructing fallout features and dispersal of Cretaio Tephra (Ischia Island, Italy) through field data analysis and numerical modelling: Implications for hazard assessment. J. Volcanol. Geotherm. Res. 2021, 415, 107248. [Google Scholar] [CrossRef]
- Sacchi, M.; Insinga, D.; Milia, A.; Molisso, F.; Raspini, A.; Torrente, M.M.; Conforti, A. Stratigraphic signature of the Vesuvius 79 AD event off the Sarno prodelta system, Naples Bay. Mar. Geol. 2005, 222–223, 443–469. [Google Scholar] [CrossRef]
- Insinga, D.D.; Petrosino, P.; Alberico, I.; de Lange, G.J.; Lubritto, C.; Molisso, F.; Sacchi, M.; Sulpizio, R.; Wu, J.; Lirer, F. The Late Holocene tephra record of the central Mediterranean Sea: Mapping occurrences and new potential isochrons for the 4.4–2.0 ka time interval. J. Quat. Sci. 2020, 35, 213–231. [Google Scholar] [CrossRef]
- Sacchi, M.; Passaro, S.; Molisso, F.; Matano, F.; Steinmann, L.; Spiess, V.; Pepe, F.; Corradino, M.; Caccavale, M.; Tamburrino, S.; et al. The Holocene marine record of unrest, volcanism, and hydrothermal activity of Campi Flegrei and Somma Vesuvius. In Vesuvius, Campi Flegrei, and Campanian Volcanism; De Vivo, B., Belkin, H.E., Rolandi, G., Eds.; Elsevier Inc.: Amsterdam, The Netherlands, 2020; pp. 435–469. [Google Scholar]
- de Vita, S.; Sansivero, F.; Orsi, G.; Marotta, E.; Piochi, M. Volcanological and structural evolution of the Ischia resurgent caldera (Italy) over the past 10 k.y. In Stratigraphy and Geology of Volcanic Areas; Groppelli, G., Viereck, L., Eds.; GSA Book Series, Special Paper; Geological Society of America: Boulder, CO, USA, 2010; Volume 464, pp. 193–239. [Google Scholar]
- Alberico, I.; Lirer, L.; Petrosino, P.; Scandone, R. Volcanic hazard and risk assessment from pyroclastic flows at Ischia Island (southern Italy). J. Volcanol. Geotherm Res. 2008, 171, 118–136. [Google Scholar] [CrossRef]
- Gurioli, L.; Cioni, R.; Sbrana, A.; Zanella, E. Transport and deposition of pyroclastic density currents over an inhabited area: The deposits of the AD 79 eruption of Vesuvius at Herculaneum (Italy). Sedimentology 2002, 49, 929–953. [Google Scholar] [CrossRef]
- Cioni, R.; Gurioli, L.; Lanza, R.; Zanella, E. Temperatures of the A.D. 79 pyroclastic density current deposits (Vesuvius, Italy). J. Geophys. Res. 2004, 109, B02207. [Google Scholar] [CrossRef]
- Gurioli, L.; Zanella, E.; Pareschi, M.T.; Lanza, R. Influences of urban fabric on pyroclastic density currents at Pompeii (Italy) I: Flow direction and deposition. J. Geophys. Res. 2007, 112, B05213. [Google Scholar] [CrossRef]
- Shea, T.; Gurioli, L.; Houghton, B.F.; Cioni, R.; Cashman, K.V. Column collapse and generation of pyroclastic density currents during the A.D. 79 eruption of Vesuvius: The role of pyroclastic density. Geology 2011, 39, 695–698. [Google Scholar] [CrossRef]
- Cioni, R.; Tadini, A.; Gurioli, L.; Bertagnini, A.; Mulas, M.; Bevilacqua, A.; Neri, A. Estimating eruptive parameters and related uncertainties for pyroclastic density current deposits: Worked examples from Somma-Vesuvius (Italy). Bull. Volcanol. 2020, 82, 65. [Google Scholar] [CrossRef]
- Tadini, A.; Bevilacqua, A.; Neri, A.; Cioni, R.; Biagioli, G.; Vitturi, M.; Esposti Ongaro, T. Reproducing pyroclastic density current deposits of the 79 CE eruption of the Somma-Vesuvius volcano using the box-model approach. Solid Earth 2021, 12, 119–139. [Google Scholar]
- Aiello, G. Submarine Stratigraphy of the Eastern Bay of Naples: New Seismo-Stratigraphic Data and Implications for the Somma-Vesuvius and Campi Flegrei Volcanic Activity. J. Mar. Sci. Eng. 2022, 10, 1520. [Google Scholar] [CrossRef]
- Milia, A.; Molisso, F.; Raspini, A.; Sacchi, M.; Torrente, M.M. Syneruptive features and sedimentary processes associated with pyroclastic currents entering the sea: The AD 79 eruption of Vesuvius, Bay of Naples, Italy. J. Geol. Soc. Lond. 2008, 165, 839–848. [Google Scholar] [CrossRef]
- Sparks, R.S.J.; Sigurdsson, H.; Carey, S.N. The entrance of pyroclastic flows into the sea, II. Theoretical considerations on subaqueous emplacement and welding. J. Volcanol. Geoth. Res. 1980, 7, 97–105. [Google Scholar]
- Trofimovs, J.; Sparks, R.S.J.; Talling, P.J. Anatomy of a submarine pyroclastic flow and associated turbidity current: July 2003 dome collapse, Soufrière Hills volcano, Montserrat, West Indies. Sedimentology 2008, 55, 617–634. [Google Scholar] [CrossRef]
- Di Capua, A.; Groppelli, G. Emplacement of pyroclastic density currents (PDCs) in a deep-sea environment: The Val d’Aveto Formation case (Northern Apennines, Italy). J. Volcanol. Geoth. Res. 2016, 328, 1–8. [Google Scholar] [CrossRef]
- Clare, M.A.; Yeo, I.A.; Watson, S.; Wysoczanski, R.; Seabrook, S.; Mackay, K.; Hunt, J.E.; Lane, E.; Talling, P.J.; Pope, E.; et al. Fast and destructive density currents created by ocean-entering volcanic eruptions. Science 2023, 381, 1085–1092. [Google Scholar] [CrossRef] [PubMed]
- Maeno, F.; Imamura, F. Tsunami generation by a rapid entrance of pyroclastic flow into the sea during the 1883 Krakatau eruption, Indonesia. J. Geophys. Res. 2011, 116, B09205. [Google Scholar] [CrossRef]
- Alberico, I.; Di Fiore, V.; Iavarone, R.; Petrosino, P.; Piemontese, L.; Tarallo, D.; Punzo, M.; Marsella, E. The Tsunami Vulnerability Assessment of Urban Environments through Freely Available Datasets: The Case Study of Napoli City (Southern Italy). J. Mar. Sci. Eng. 2015, 3, 981–1005. [Google Scholar] [CrossRef]
- Paris, R.; Ulvrova, M.; Selva, J.; Brizuela, B.; Costa, A.; Grezio, A.; Lorito, S.; Tonini, R. Probabilistic hazard analysis for tsunamis generated by subaqueous volcanic explosions in the Campi Flegrei caldera, Italy. J. Volcanol. Geotherm. Res. 2019, 379, 106–116. [Google Scholar] [CrossRef]
- Rosi, M.; Levi, S.T.; Pistolesi, M.; Bertagnini, A.; Brunelli, D.; Cannavò, V.; Di Renzoni, A.; Ferranti, F.; Renzulli, A.; Yoon, D. Geoarchaeological Evidence of Middle-Age Tsunamis at Stromboli and Consequences for the Tsunami Hazard in the Southern Tyrrhenian Sea. Sci. Rep. 2019, 9, 677. [Google Scholar] [CrossRef]
- Maramai, A.; Graziani, L.; Brizuela, B. Italian Tsunami Effects Database (ITED): The First Database of Tsunami Effects Observed Along the Italian Coasts. Front. Earth Sci. 2021, 9, 596044. [Google Scholar] [CrossRef]
- Tateo, F. Horribile dictu: Environmental catastrophes and writing in the late Middle Ages. In Le Calamità Ambientali nel Tardo Medioevo Europeo: Realtà, Percezioni, Reazioni, Proceedings of the Atti del XII Convegno del Centro Studi Sulla Civiltà del Tardo Medioevo, San Miniato, Italy, 31 May–2 June 2008; Centro Studi Sulla Civiltà del Tardo Med; Mattheus, M., Ed.; Firenze University Press: Firenze, Italy, 2010; Volume 12, p. 111. ISBN 978-88-8453-499-6. (In Italian) [Google Scholar]
Time | Magnitude (Mw) | Location | Depth | Latitude | Longitude |
---|---|---|---|---|---|
27 September 2023 | 4.2 | Campi Flegrei | 3 km | 40°82′ | 14°16′ |
2 October 2023 | 4.0 | Campi Flegrei | 3 km | 40°83′ | 14°15′ |
21 August 2017 | 3.9 | Casamicciola (Ischia) | 2 km | 40°74′ | 13°90′ |
7 September 2023 | 3.8 | Campi Flegrei | 3 km | 40°83′ | 14°15′ |
16 October 2023 | 3.6 | Campi Flegrei | 2 km | 40°8′ | 14°14′ |
11 June 2023 | 3.6 | Campi Flegrei | 3 km | 40°83′ | 14°11′ |
18 August 2023 | 3.6 | Campi Flegrei | 2 km | 40°83′ | 14°14′ |
8 May 2023 | 3.4 | Campi Flegrei | 3 km | 40°83′ | 14°14′ |
22 September 2023 | 3.0 | Campi Flegrei | 1 km | 40°83′ | 14°14′ |
23 November 2023 | 3.1 | Campi Flegrei | 3 km | 40°83′ | 14°14′ |
17 February 2024 | 3.0 | Campi Flegrei | 3 km | 40°84′ | 14°12′ |
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Aiello, G.; Caccavale, M. Marine Geohazards of the Bay of Naples (Southern Tyrrhenian Sea, Italy): A Review Integrating Morpho-Bathymetric and Seismo-Stratigraphic Analysis. GeoHazards 2024, 5, 393-414. https://doi.org/10.3390/geohazards5020021
Aiello G, Caccavale M. Marine Geohazards of the Bay of Naples (Southern Tyrrhenian Sea, Italy): A Review Integrating Morpho-Bathymetric and Seismo-Stratigraphic Analysis. GeoHazards. 2024; 5(2):393-414. https://doi.org/10.3390/geohazards5020021
Chicago/Turabian StyleAiello, Gemma, and Mauro Caccavale. 2024. "Marine Geohazards of the Bay of Naples (Southern Tyrrhenian Sea, Italy): A Review Integrating Morpho-Bathymetric and Seismo-Stratigraphic Analysis" GeoHazards 5, no. 2: 393-414. https://doi.org/10.3390/geohazards5020021
APA StyleAiello, G., & Caccavale, M. (2024). Marine Geohazards of the Bay of Naples (Southern Tyrrhenian Sea, Italy): A Review Integrating Morpho-Bathymetric and Seismo-Stratigraphic Analysis. GeoHazards, 5(2), 393-414. https://doi.org/10.3390/geohazards5020021