HR: 13:55h
AN: U33B-02 [Abstracts]
TI: The Fate of Subducted Basaltic Crust in the Earth's Lower Mantle : an Experimental Petrological
Study
AU: * Ricolleau, A
EM: angele.ricolleau@lmcp.jussieu.fr
AF: Laboratoire de Mineralogie-Cristallographie, Bat 7
140 rue de Boucicaut, paris, 75015
France
AU: Fiquet, G
EM: guillaume.fiquet@lmcp.jussieu.fr
AF: Laboratoire de Mineralogie-Cristallographie, Bat 7
140 rue de Boucicaut, paris, 75015
France
AU: Perrillat, J
EM: Jean-Philippe.Perrillat@univ-lyon1.fr
AF: Laboratoire de Sciences de la Terre, ENS-Lyon, 46 allee d'Italie, Lyon, 69364
France
AU: Daniel, I
EM: isabelle.daniel@univ-lyon1.fr
AF: Laboratoire de Sciences de la Terre, ENS-Lyon, 46 allee d'Italie, Lyon, 69364
France
AU: Menguy, N
EM: nicolas.menguy@lmcp.jussieu.fr
AF: Laboratoire de Mineralogie-Cristallographie, Bat 7
140 rue de Boucicaut, paris, 75015
France
AU: Cardon, H
EM: herve.cardon@ens-lyon.fr
AF: Laboratoire de Sciences de la Terre, ENS-Lyon, 46 allee d'Italie, Lyon, 69364
France
AU: Addad, A
EM: ahmed.addad@univ-lille1.fr
AF: Centre Commun de Microscopie, Bat C6
Universite des Sciences et Technologies de Lille 1, Villeneuve d'Ascq, 59655
France
AU: Vanni, C
EM: christian.vanni@univ.u-3mrs.fr
AF: Centre pluridisciplinaire de microscopie electronique et de microanalyses, Faculte St Jerome
case 221, Marseille, 13397
France
AU: Guignot, N
EM: guignot@esrf.fr
AF: ESRF, BP 220, Grenoble, F-38043
France
AB:
Several models have attempted to reconcile observed geochemical data with a whole mantle convection. Such a convection
pattern would be in agreement with geochemical constraints, provided the crustal component of subducted lithospheric slabs is
denser than the surrounding mantle and reaches the lowermost mantle, where it could accumulate and eventually generate
ascending plumes, producing the particular geochemical signatures observed at the surface [AlbarŠde, {\it Chem. Geol.} 145,
413-429, 1998; Coltice and Ricard, {\it Earth Planet. Sci. Lett.} 174, 125-137, 1999]. In such models, the key point is that
the relatively minor crustal component of the subducting lithosphere is able to reach the base of the mantle. The density
differential between the oceanic crust and the mantle is thus a crucial parameter we would like to address experimentally.
In this work, we describe synchrotron X-ray diffraction experiments carried out {\it in situ} at high-pressure and
high-temperature (to 90 GPa and 2800 K), and coupled with the study of recovered samples by Analytical Transmission
Electronic Microscopy (ATEM). Quenched samples were prepared with the FIB (Focused Ion Beam) technique for ATEM
investigations, so as to obtain chemical compositions of observed phases identified by selected area electron diffraction
(SAED) patterns study. Under lower mantle pressure and temperature conditions, the high aluminium budget of MORB cannot be
totally accommodated in an orthorhombic perovskite structure and two Al-rich phases are observed in our experiments, in
addition to Mg-perovskite, Ca-perovskite, and stishovite. The chemical compositions of individual phases were taken into
account in the Rietveld refinements made to the X-ray diffraction patterns, from which phase relative abundances, molar
volumes, hence densities could be extracted.
We provide an estimate for the density profile of a MORB oceanic crust at lower mantle pressure and temperature conditions as
well as a detailed phase relationships picture for this chemical composition. We show that the density profile of a MORB
oceanic crust may intersect that of a normal lower mantle at depths greater than 2000 km.
DE: 3630 Experimental mineralogy and petrology
DE: 3655 Major element composition
DE: 3924 High-pressure behavior
DE: 3954 X ray, neutron, and electron spectroscopy and diffraction
SC: Union [U]
MN: 2004 AGU Fall Meeting