HR: 1330h
AN: V13A-02 [Abstracts]
TI: Petrologic Constraints on Iceland's Lower Crust
AU: * Kelley, D F
EM: kelley.196@osu.edu
AF: The Ohio State University, Dept. of Geol. Science, Columbus, OH 43210 United States
AU: Leftwich, T E
EM: leftwich@geology.ohio-state.edu
AF: The Ohio State University, Dept. of Geol. Science, Columbus, OH 43210 United States
AU: Barton, M
EM: barton.2@osu.edu
AF: The Ohio State University, Dept. of Geol. Science, Columbus, OH 43210 United States
AB:
Iceland is an area of relatively thick ocean crust that straddles the spreading MAR. Iceland was created by seafloor
spreading originating about 55 Ma above abnormally hot mantle. The high temperatures resulted in greater melt volumes that
enhanced crustal thickening. Geophysical investigations provide fundamental insight on crustal features, but results are
contradictory. Early seismic, magneto-telluric, and resistivity studies predicted thin crust with partial melt regions at
depths of 10-15 km beneath the neovolcanic zones. Reinterpretations based on recent seismic studies suggest thicker and
cooler crust. These studies have shown magma lenses at shallow depths beneath volcanic centers, but cannot confirm their
presence in the lower crust. Knowledge of the depth of magma chambers is critical to constrain the geothermal gradients in
Icelandic crust and to resolve discrepancies in interpretation of geophysical data. Analyses of glasses in Icelandic lavas
erupted from 11 volcanic centers throughout the rift zones have been compiled. The pressures of equilibration of these
liquids with ol, high-Ca pyx, and plag were estimated qualitatively from projections into the pseudoternary system Ol-Di-Qtz. The results (ca. 0.6 GPa) indicate crystallization in magma chambers located at about 20 km depth. Equilibrium pressures
also have been calculated quantitatively. These results (0.6±0.2 GPa) indicate magma chambers at 19.8±6.5 km depth
beneath the volcanic centers. Magma chamber at these depths are located in the lower crust inferring that it must be
relatively warm. Geothermal gradients have been calculated using the depths of the sourcing magma chambers and any shallow
seismically detected magma chambers at each location. An average crustal composition has been calculated from the compiled
geochemical data and was used to calculate density variations and seismic velocities along the geotherms. The distribution
of sample locations in this study provides sufficient data to characterize the Iceland rift system in terms of magma chamber
depths, rock type, geothermal gradient, density variation, and expected seismic velocity. Calculated density contrasts
across the moho are consistent with those determined gravimetrically, and calculated seismic velocities are consistent with
seismic studies beneath the rift system.
DE: 0350 Pressure, density, and temperature
DE: 3015 Heat flow (benthic) and hydrothermal processes
DE: 3640 Igneous petrology
DE: 8434 Magma migration
DE: 8439 Physics and chemistry of magma bodies
SC: Volcanology, Geochemistry, Petrology [V]
MN: 2005 Joint Assembly