HR: 1340h
AN: V13A-1436 [Abstracts]
TI: Fluid-Metasedimentary Rock Interactions Within Subduction Zone M\'{e}lange: The Secret to Trace Element
Enrichments in Arc Magmas?
AU: Breeding, C M
EM: mike.breeding@gia.edu
AF: Gemological Institute of America, 5345 Armada Drive, Carlsbad, CA 92008
United States
AU: * Ague, J J
EM: jay.ague@yale.edu
AF: Yale University, Dept. Geology and Geophysics, PO Box 208109, New Haven, CT 06520-8109
United States
AU: Br\"{o}cker, M
EM: brocker@nwz.uni-muenster.de
AF: Universit\"{a}t M\"{u}nster, Institut f\"{u}r Mineralogie, Corrensstrasse 24, M\"{u}nster, 48149
Germany
AB:
Fluid alteration of deeply-subducted metasedimentary rocks on the island of Syros, Greece, was investigated using geochemical
mass balance analysis to evaluate potential sources for trace elements in arc magmas. Concentrations of large ion lithophile
elements (LILE; e.g., Ba, K, Rb, Cs, Ca, Sr), U, and Pb are generally elevated in arc magmas relative to more refractory
elements like Ti, Th, Hf, Nb, and Zr. This geochemical ``fingerprint'' is considered to be a strong indicator of fluid
addition to arc magma source regions. However, the source for trace elements and the fluids that transport them are
controversial because experiments and field observations suggest that metamorphic dehydration of subducted mafic, ultramafic,
and/or sedimentary rock reservoirs alone is unable to liberate and transport the required elements to the mantle wedge. New
petrological and geochemical data from contacts between subducted metasedimentary rock and meta-ultramafic m\'{e}lange matrix
on Syros reveal that multiple sources may be required. We propose that dehydration fluids from subducting slabs infiltrate
and equilibrate with heterogeneous meta-ultramafic/metamafic rocks in m\'{e}lange zones near the slab-mantle interface. When
these fluids gain access to subducted metasedimentary rock they can preferentially leach LILE, U, and Pb, without sediment
melting, due mostly to the breakdown of phengite and epidote. Migration of these trace element-enriched fluids into the
sub-arc mantle wedge could directly trigger partial melting and produce the elevated Ba/Th, Sr/Th, Pb/Th, U/Th and radiogenic
Sr that are characteristic geochemical features of arc magmatism. Our findings provide a mechanism for the geochemical
decoupling of Th from U and Pb consistent with the U-Th isotopic disequilibrium observed in many arcs. Infiltration at
shallower depths (e.g., Syros) would produce metasomatized mantle that could be carried deeper by wedge corner flow to
undergo partial melting when it reached sub-arc regions.
DE: 8439 Physics and chemistry of magma bodies
DE: 3640 Igneous petrology
DE: 3655 Major element composition
DE: 3660 Metamorphic petrology
DE: 3670 Minor and trace element composition
SC: Volcanology, Geochemistry, Petrology [V]
MN: 2004 AGU Fall Meeting