HR: 1340h
AN: V33A-0664 [Abstracts]
TI: Conditions Leading to Sudden Release of Magma Pressure
AU: * Damjanac, B
EM: branko@itascacg.com
AF: Itasca Consulting Group, 111 Third Avenue South
Suite 450, Minneapolis, MN 55401
United States
AU: Gaffney, E S
EM: edgaffney@earthlink.net
AF: Gaffney Associates, Inc., 111 North Walnut Street, Glenwood, IA 51534
AB:
Buildup of magmatic pressures in a volcanic system can arise from a variety of mechanisms. Numerical models of the response
of volcanic structures to buildup of pressures in magma in dikes and conduits provide estimates of the pressures needed to
reopen blocked volcanic vents. They also can bound the magnitude of sudden pressure drops in a dike or conduit due to such
reopening. Three scenarios are considered: a dike that is sheared off by covolcanic normal faulting, a scoria cone over a
conduit that is blocked by in-falling scoria and some length of solidified magma, and a lava flow whose feed has partially
solidified due to an interruption of magma supply from below. For faulting, it is found that magma would be able to follow
the fault to a new surface eruption. A small increase in magma pressure over that needed to maintain flow prior to faulting
is required to open the new path, and the magma pressure needed to maintain flow is lower but still greater than for the
original dike. The magma pressure needed to overcome the other types of blockages depends on the details of the blockage.
For example, for a scoria cone, it depends on the depth of the slumped scoria and on the depth to which the magma has
solidified in the conduit. In general, failure of the blockage is expected to occur by radial hydrofracture just below the
blocked length of conduit at magma pressures of 10 MPa or less, resulting in radial dikes. However, this conclusion is based
on the assumption that the fluid magma has direct access to the rock surrounding the conduit. If, on the other hand, there
is a zone of solidified basalt, still hot enough to deform plastically, surrounding the molten magma in the conduit, this
could prevent breakout of a hydrofracture and allow higher pressures to build up. In such cases, pressures could build high
enough to deform the overlying strata (scoria cone or lava flow). Models of such deformations suggest the possibility of
more violent eruptions resulting from sudden shear failure of a scoria cone with material accelerations near 100 m/s2.
DE: 8020 Mechanics, theory, and modeling
DE: 8414 Eruption mechanisms and flow emplacement
DE: 8428 Explosive volcanism
DE: 8486 Field relationships (1090, 3690)
SC: Volcanology, Geochemistry, Petrology [V]
MN: Fall Meeting 2005