HR: 16:45h
AN: U34A-04 INVITED [Abstracts]
TI: Global mantle circulation models with thermodynamically self consistent mineralogy: bridging
the geodynamic/seismic gap
AU: * Bunge, H
EM: bunge@lmu.de
AF: Department of Earthsciences, Munich University, Munich, 80333, Germany
AU: Steinle-Neumann, G
AF: Bayerisches Geoinstitut, Bayreuth University, Bayreuth, 95440, Germany
AU: Piazzoni, A
AF: Department of Earthsciences, Munich University, Munich, 80333, Germany
AU: Schuberth, B
AF: Department of Earthsciences, Munich University, Munich, 80333, Germany
AU: Moder, C
AF: Department of Earthsciences, Munich University, Munich, 80333, Germany
AU: Oeser, J
AF: Department of Earthsciences, Munich University, Munich, 80333, Germany
AB:
Seismic tomography is a powerful tool to aide plate reconstructions.
Still its use has been hampered mainly because we don't understand
very well how to interpret seismic images in terms of temperature
and composition. Notable examples are observations of
anti-correlation of bulk sound and shear velocity near the bottom
of the mantle and a general lack of strong compressional heterogeneity
in the lower mantle, both of which have given rise to a variety of
speculations on lower mantle dynamics and its relation to past plate
motion. Here we address this fundamental problem directly by employing
a newly published, thermodynamically self consistent mantle mineralogy
model, derived from considerations of Gibbs free energy minimisation
of the mantle phase assemblage, which provides us with estimates of
density and elastic constants for a wide range of lower mantle P,T
conditions. We combine the model with simulations of global mantle
circulation, where the very high numerical grid point resolution of
less than 20 km throughout the mantle, amounting to more than 100
million grid points totally, is sufficient to achieve a vigorous
regime of high Rayleigh number thermal convection that lies within
the parameter range for which the mineralogic model was validated.
We find a number of important results. For example, the hot spot
flux is likely to exceed 10 TW, giving hot spots a more prominent
role than is commonly believed. We also find that the anti-correlation
of bulk sound and shear, and the low level of compressional wave
speed arise naturally in our mineralogy/geodynamics simulations
under the assumption of an isochemical mantle, greatly facilitating
the interpretation of seismic heterogeneity in terms of past subduction.
We will discuss these findings and explore their consequences for
the development of next generation geodynamic earth models.
DE: 1525 Paleomagnetism applied to tectonics: regional, global
DE: 1527 Paleomagnetism applied to geologic processes
DE: 1532 Reference fields: regional, global
DE: 7270 Tomography (6982, 8180)
DE: 8120 Dynamics of lithosphere and mantle: general (1213)
SC: Union [U]
MN: 2007 Fall Meeting