HR: 10:35h
AN: V12B-02 INVITED [Abstracts]
TI: Subglacial and Ice-contact Volcanism at the Öræfajökull Stratovolcano, Iceland.
AU: * Stevenson, J A
EM: j.stevenson@lancs.ac.uk
AF: Department of Environmental Sciences, Lancaster University, Lancaster, LA1 4YQ
United Kingdom
AU: * Stevenson, J A
EM: j.stevenson@lancs.ac.uk
AF: Department of Earth Sciences, The Open University,
Walton Hall, Milton Keynes, MK7 6AA
United Kingdom
AU: McGarvie, D W
EM: d.mcgarvie@open.ac.uk
AF: Department of Earth Sciences, The Open University,
Walton Hall, Milton Keynes, MK7 6AA
United Kingdom
AU: Smellie, J L
EM: jlsm@bas.ac.uk
AF: British Antarctic Survey, High Cross,
Madingley Road, Cambridge, CB3 0AT
United Kingdom
AU: Gilbert, J S
EM: j.s.gilbert@lancs.ac.uk
AF: Department of Environmental Sciences, Lancaster University, Lancaster, LA1 4YQ
United Kingdom
AB:
Eruptions of Öræfajökull have produced mafic and silicic magmas, and have taken place in both glacial and
interglacial periods. The geology of the volcano records the differing response of magmas of contrasting composition to
interaction with ice of variable thickness and gives insight into the development of a long-lived ice-covered stratovolcano.
Vatnafjall, a ridge on the southeast flank of Öræfajökull, is the first area of the volcano to have been mapped
in detail and the geological map is presented here alongside descriptions of each erupted unit.
The oldest units comprise pillow lavas, hyaloclastite and jointed lava flows that were formed during subglacial basaltic
eruptions involving abundant meltwater. The products of a subsequent explosive, initially phreatomagmatic, subglacial
rhyolite eruption were confined by ice to form a tephra pile over 200 m thick that was intruded by dense rhyolite magma
towards the end of the eruption. Confinement by ice caused a later trachydacite lava flow to form buttresses and a steep
pillar. Whilst some of the meltwater produced infiltrated the lava (to generate red and black glassy breccias and cause
localised steam explosions), it is likely that much of it drained down the steep topography. The most recently-erupted units
are subaerial basaltic lava flows, the oldest of which were erupted during an interglacial period and have subsequently been
partially eroded and scoured by advancing ice.
Ice has been important in shaping the edifice by confining eruptive products to form constructive features and by later
eroding parts of them to form deep valleys. Reconstructions of volcano-ice interaction allowed the local thickness of the
glacier at the time of each eruption to be estimated, and demonstrates that the upper surface of the ice has varied in
altitude by over ~700 m.
DE: 1645 Solid Earth (1225)
DE: 1827 Glaciology (0736, 0776, 1863)
DE: 8414 Eruption mechanisms and flow emplacement
DE: 8499 General or miscellaneous
SC: Volcanology, Geochemistry, Petrology [V]
MN: Fall Meeting 2005