HR: 11:50h
AN: U42A-07 INVITED [Abstracts]
TI: Convective Differentiation of the Earth's Mantle
AU: * Hansen, U
EM: hansen@earth.uni-muenster.de
AF: Institue for Geophysics, Muenster University, Corrensstr.24, Muenster, 48149, Germany
AU: Schmalzl, J
EM: joergs@earth.uni-muenster.de
AF: Institue for Geophysics, Muenster University, Corrensstr.24, Muenster, 48149, Germany
AU: Stemmer, K
EM: Kai.stemmer@dlr.de
AF: Deutsches Zentrum fuer Luft- und Raumfahrt, Rutherfordstr.2, Berlin, 12489, Germany
AB:
The differentiation of the Earth is likely to be influenced by convective motions within the early mantle. Double-
diffusive convection (d.d.c), driven by thermally and compositionally induced density differences is considered as
a vital mechanism behind the dynamic differentiation of the early mantle.. We demonstrate that d.d.c can lead to
layer formation on a planetary scale in the diffusive regime where composition stabilizes the system whil heat
provides the destabilizing force. Choosing initial conditions in which a stable compositional gradient overlies a
hot reservoir we mimic the situation of a planet in a phase after core formation. Differently from earlier studies we
fixed the temperature rather than the heat flux at the lower boundary, resembling a more realistic condition for the
core-mantle boundary. We have carried out extended series of numerical experiments, ranging from 2D
calculations in constant viscosity fluids to fully 3D experiments in spherical geometry with strongly temperature
dependent viscosity. The buoyancy ratio R and the Lewis number Le are the important dynamical parameters. In
all scenarios we could identify a parameter regime where the non-layered initial structure developed into a state
consisting of several, mostly two layers. Initially plumes from the bottom boundary homogenize a first layer which
subsequently thickens. The bottom layer heats up and then convection is initiated in the top layer. This creates
dynamically (i.e. without jump in the material behavior) a stack of separately convecting layers. The bottom layer
is significantly thicker than the top layer. Strongly temperature dependent viscosity leads to a more complex
evolution The formation of the bottom layer is followed by the generation of several layers on top. Finally the
uppermost layer starts to convect. In general, the multilayer structure collapses into a two layer system. We
employed a numerical technique, allowing for a diffusion free treatment of the compositional field. In each case a
similar evolution has been observed. This indicates that a temporary formation of layered structures in planetary
interiors is a typical phenomenon. Moreover, in this scenario, plate tectonics appears only in later stages of the
evolution.
DE: 0560 Numerical solutions (4255)
DE: 1212 Earth's interior: composition and state (7207, 7208, 8105, 8124)
DE: 1213 Earth's interior: dynamics (1507, 7207, 7208, 8115, 8120)
SC: Union [U]
MN: 2007 Joint Assembly