HR: 1340h
AN: S43B-1008 [Abstracts]
TI: Seismological Signature of Chemical Differentiation of Earth's Upper Mantle
AU: * Matsukage, K N
EM: kmatsu@mx.ibaraki.ac.jp
AF: Ibaraki University, 2-1-1 Bunkyo, Mito, 310-0056
Japan
AU: Nishihara, Y
EM: yu.nishihara@yale.edu
AF: Yale University, 210 Whitney Avenue, New Haven, CT 06520
United States
AU: Karato, S
EM: shun-ichiro.karato@yale.edu
AF: Yale University, 210 Whitney Avenue, New Haven, CT 06520
United States
AB:
Chemical differentiation from a primitive rock (such as pyrolite) to harzburgite due to partial melting and melt extraction
is one of the most important mechanisms that causes the chemical heterogeneity in Earth's upper mantle. In this study, we
investigate the seismic signature of chemical differentiation that helps mapping chemical heterogeneity in the upper mantle.
The relation between chemical differentiation and its seismological signature is not straightforward because a large number
of unknown parameters are involved although the seismological observations provide only a few parameters (e.g., $V_P$, $V_S$,
$Q_P$). Therefore it is critical to identify a small number of parameters by which the gross trend of chemical evolution can
be described.
The variation in major element composition in natural samples reflect complicated processes that include not only partial
melting but also other complex processes (e.g., metasomatism, influx melting). We investigate the seismic velocities of
hypothetical but well-defined simple chemical differentiation processes (e.g., partial melting of various pressure
conditions, addition of Si-rich melt or fluid), which cover the chemical variation of the natural mantle peridotites with
various tectonic settings (mid ocean ridge, island arc and continent). The seismic velocities of the peridotites were
calculated to 13 GPa and 1730 K. We obtained two major conclusions. First is that the variations of seismic velocities of
upper mantle peridotites can be interpreted in terms of a few distinct parameters. For one class of peridotites which is
formed by simple partial melting (e.g. mid-ocean ridges peridotites), seismic velocities can be described in terms of one
parameter, namely Mg$\#$ (=Mg/(Mg+Fe) atomic ratio). In contrast, some of the peridotites in the continental (cratonic)
environment with high silica content and high Mg$\#$ need at least two parameters (such as Mg$\#$ and Opx$\#$ (the volume
fraction of orthopyroxene)) are needed to characterize their seismic velocities. Second is the jump of seismic velocity at
300 km in harzburgite that is caused by orthorhombic (opx) to high-pressure monoclinic phase transition in $MgSiO_3$
pyroxene. If opx-rich harzburgite (the maximum content of opx in continental harzburgite is $\sim$45 vol$%$) exists at
around 300km, the maximum contrast of jump would be 2.5 $%$ for $V_S$ and 0.9 $%$ for $V_P$. This phase transition will
correspond to the seismological discontinuity around 300km (X-discontinuity).
DE: 8124 Earth's interior--composition and state (old 8105)
DE: 3909 Elasticity and anelasticity
DE: 3924 High-pressure behavior
DE: 1025 Composition of the mantle
DE: 1212 Earth's interior--composition and state (8105)
SC: Seismology [S]
MN: 2004 AGU Fall Meeting