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Jan Mayen, Norway
Official, Figure in a journal article
Exceedance probability maps at FL250
Figure D1 in: Titos, M., Martínez Montesinos, B., Barsotti, S., Sandri, L., Folch, A., Mingari, L., Macedonio, G. & Costa, A. (2022). Long-term hazard assessment of explosive eruptions at Jan Mayen (Norway) and implications for air traffic in the North Atlantic. Natural Hazards and Earth System Sciences, 22(1), 139-163. https://doi.org/10.5194/nhess-22-139-2022

Hekla, Katla, Askja, Iceland
Figure in a journal article
Expected impacts of tephra dispersal on European airspace sectors
Figure 11 in: Scaini, C., Biass, S., Galderisi, A., Bonadonna, C., Folch, A., Smith, K., & Höskuldsson, A. (2014). A multi-scale risk assessment for tephra fallout and airborne concentration from multiple Icelandic volcanoes–Part 2: Vulnerability and impact. Natural hazards and earth system sciences, 14(8), 2289–2312. https://doi.org/10.5194/nhess-14-2289-2014

Asamayama, Japan
Map sheet or poster
Expected Range of Volcanic Rocks
Japan Meteorological Agency. (2004). Expected Range of Volcanic Rocks.

Esan, Japan
Official, Map in a booklet, long fact-sheet, or handbook
Expected scope of volcanic phenomena and areas targeted for evacuation
Page 4 in: Hakodate City. (2016). Disaster Prevention Handbook of Esan. 12 p.

Soufrière Guadeloupe, Guadeloupe [France]
Figure in a journal article
Exposure-based risk analysis considering the conditional probability and the overall probability of VBPs exceeding selected energy thresholds
Figure 10 in: Massaro, S., Rossi, E., Sandri, L., Bonadonna, C., Selva, J., Moretti, R., & Komorowski, J. C. (2022). Assessing hazard and potential impact associated with volcanic ballistic projectiles: The example of La Soufrière de Guadeloupe volcano (Lesser Antilles). Journal of volcanology and geothermal research, 423, 107453. https://doi.org/10.1016/j.jvolgeores.2021.107453

Spurr, United States
Official, Figure in hazard assessment
Extent of flooding associated with failure of lahar dams in Chakachatna River
Figure 16 in: Waythomas, C.F. & Nye, C.J. (2002). Preliminary volcano-hazard assessment for Mount Spurr Volcano, Alaska. U.S. Geological Survey, Open-File Report 2001-482, 40 p., 1 plate. https://doi.org/10.3133/ofr01482

Spurr, United States
Official, Figure in hazard assessment
Extent of proximal hazard zones around Mount Spurr volcano
Figure 8 in: Waythomas, C.F. & Nye, C.J. (2002). Preliminary volcano-hazard assessment for Mount Spurr Volcano, Alaska. U.S. Geological Survey, Open-File Report 2001-482, 40 p., 1 plate. https://doi.org/10.3133/ofr01482

Fagradalsfjall, Iceland
Official, Figure or insert in a report
Fagradalsfjall Lava flow model
Figure 11 in: Icelandic Meteorological Office (IMO). (2021). Fagradalsfjall Lava Flow Model. (Reproduced in: Barsotti, S., Parks, M. M., Pfeffer, M. A., Óladóttir, B. A., Barnie, T., Titos, M. M., ... & Sigurðsson, E. M. (2023). The eruption in Fagradalsfjall (2021, Iceland): how the operational monitoring and the volcanic hazard assessment contributed to its safe access. Natural Hazards, 116(3), 3063-3092.)

Lanzarote, Canary Islands [Spain]
Figure in a journal article
Fallout scenarios at the highest probability vent for the NE wind direction and for all wind rose directions performed with VORIS 2.0.1
Figure 5 in: Becerril, L., Martí, J., Bartolini, S., & Geyer, A. (2017). Assessing qualitative long-term volcanic hazards at Lanzarote Island (Canary Islands). Natural Hazards and Earth System Sciences, 17(7), 1145-1157. https://doi.org/10.5194/nhess-17-1145-2017

Nevado de Toluca, Mexico
Figure in a journal article
Fallout simulation obtained with HAZMAP computer routine with same input parameters (Table 3), but with two different wind profiles
Figure 12 in: Capra, L., Norini, G., Groppelli, G., Macías, J.L., & Arce, J.L. (2008). Volcanic hazard zonation of the Nevado de Toluca volcano, México. Journal of Volcanology and Geothermal Research, 176(4), p. 469-484. https://doi.org/10.1016/j.jvolgeores.2008.04.016

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