HR: 0800h
AN: V21C-0721 [Abstracts]
TI: Transition between fragmentation and permeable outgassing of low viscosity magmas
AU: Namiki, A
EM: namiki-atsuko@aist.go.jp
AF: Kanazawa University, Kakuma, Kanazawa, 920-1192, Japan
AU: * Manga, M
EM: manga@seismo.berkeley.edu
AF: EPS, UC Berkeley, 307, McConeHall, Berkeley, CA 94720-4767, United States
AB:
Explosive volcanic eruption requires that magma fragments into discrete parcels. Silicic magma can fragment
through brittle failure or other processes that depend on the viscoelasticity of the melt. Owing to the low viscosity
of basaltic magmas, however, the fragmentation mechanism must be different and will be governed by fluid
mechanics alone.
We perform a series of decompression experiments on bubbly Newtonian fluids with viscosities and surface
tensions similar to those of basaltic magmas. For sufficiently rapid expansion, the bubbly fluid expands
continuously, eventually tearing into several pieces. We find that the fragmentation threshold is governed by a
critical Reynolds number of ~ 1, indicating that it is the inertia of the expanding fluid that drives the continued
expansion
and ultimate breakup into discrete parcels. Experiments in which the fluid does not fragment allow us to
determine the gas permeability of the bubbly fluid as the bubbles expand.
Permeability remains small until the volume fraction of bubbles exceeds about 70%. We scale the results of the
laboratory experiments to basaltic eruptions and find that the predicted fragmentation threshold is consistent with
the exit velocities that characterize effusive and explosive eruptions. Our experimental results suggest that the
mechanism for fragmentation of low viscosity basaltic
magma is fundamentally different from that of high viscosity silicic magma, and that magma with low viscosities
can fragment easily.
DE: 8414 Eruption mechanisms and flow emplacement
DE: 8424 Hydrothermal systems (0450, 1034, 3017, 3616, 4832, 8135)
DE: 8434 Magma migration and fragmentation
SC: Volcanology, Geochemistry, Petrology [V]
MN: 2007 Fall Meeting