HR: 0800h
AN: V31E-0703 [Abstracts]
TI: Eruptive and Transportation Processes During Caldera-Forming Eruptions of Sete Cidades Volcano, São Miguel, Azores
AU: * Kueppers, U
EM: Ulrich.T.Kueppers@azores.gov.pt
AF: Centro de Vulcanologia e Avalia\c{c}ão de Riscos Geológicos, University of the
Azores, Ponta Delgada, 9501-801, Portugal
AU: Queiroz, M G
EM: Maria.GP.Queiroz@azores.gov.pt
AF: Centro de Vulcanologia e Avalia\c{c}ão de Riscos Geológicos, University of the
Azores, Ponta Delgada, 9501-801, Portugal
AU: Pacheco, J M
EM: Jose.MR.Pacheco@azores.gov.pt
AF: Centro de Vulcanologia e Avalia\c{c}ão de Riscos Geológicos, University of the
Azores, Ponta Delgada, 9501-801, Portugal
AB:
Sete Cidades volcano forms the Western part of the island of São Miguel, Azores, which is hosting three active
trachytic central volcanoes (Sete Cidades, Fogo, Furnas). Volcanic activity in the archipelago exhibits a strong
tectonic control and on São Miguel, the NW-SE trending basaltic Terceira Rift is intersecting the central
volcanoes. All three have erupted since the settlement of the island in the 15{th} century. The Eastern part of the
island is considered extinct.
The oldest dated subaerial rocks of Sete Cidades exhibit an age of 210 ka. Morphology of the present summit
caldera (5 km diameter, up to 350 m deep), stratigraphy, and distribution of the deposits suggest a multiple-stage
evolution and at least three caldera-forming eruptions (CFE) are assumed to have occurred. 14C-dating
revealed ages of 36, 29, and 16 ka, respectively, for the most recent ones. Today, the average slope angle is
12° and the maximum distance of the coastline from the caldera rim approx. 5 km. Assuming a comparable
situation at the time of the CFE, a large portion of the eruptive products has probably not been deposited on land.
After a pause of several thousand years, eruptive activity resumed approx. 5 ka ago and started filling the caldera.
As deposits of minor thickness and distribution can be found between the deposits of the CFE, it is unclear
whether the caldera formation is completely finished.
Climatic factors (e.g. precipitation, air humidity) have affected the deposits by erosion, weathering, and possibly
significant reworking and caused dense vegetation on all flanks of the volcano. Still, it was possible to establish
distribution and thickness of the deposits of the CFE and constrain differences in eruptive behaviour and
transport/emplacement mechanisms. They are composed of air-fall deposits and pyroclastic density currents but
show significant differences amongst them: (1) Degree of pre- and syn-eruptive magma-magma interaction and
syn-eruptive magma-water interaction. (2) Ratio of juvenile/lithic content and basaltic/trachytic magma. (3) Degree
of vesiculation and crystal content of the juvenile material. (4) Percentage of air-fall deposits within the deposits
of a single CFE and the timing of their deposition. (5) Distribution of air-fall deposits. (6) Degree of welding. The
results highlight the bandwidth of possible eruptive scenarios at this trachytic central volcano cut by an active rift.
Based on the study of these eruptions, volcanic hazard maps can be produced that are essential for adequate
risk assessment.
DE: 8404 Volcanoclastic deposits
DE: 8408 Volcano/climate interactions (1605, 3309)
DE: 8414 Eruption mechanisms and flow emplacement
DE: 8428 Explosive volcanism
DE: 8440 Calderas
SC: Volcanology, Geochemistry, Petrology [V]
MN: 2007 Fall Meeting