HR: 0800h
AN: V31C-0631 [Abstracts]
TI: Magma Diversity in the Trans-Mexican Volcanic Belt: the role of Mantle Heterogeneities, Slab-derived
Fluxes and Crustal Contamination.
AU: * Schaaf, P
EM: pschaaf@geofisica.unam.mx
AF: Instituto de Geofisica, UNAM, Ciudad Universitaria, Mexico-City, D.F 04510
Mexico
AU: Valdez, G
EM: valdezm@servidor.unam.mx
AF: Instituto de Geofisica, UNAM, Ciudad Universitaria, Mexico-City, D.F 04510
Mexico
AU: Siebe, C
EM: csiebe@geofisica.unam.mx
AF: Instituto de Geofisica, UNAM, Ciudad Universitaria, Mexico-City, D.F 04510
Mexico
AU: Carrasco, G
EM: gerardoc@geociencias.unam.mx
AF: Centro de Geociencias, UNAM, Campus Juriquilla, Queretaro, QRO 76230
Mexico
AB:
The Plio-Quaternary Trans-Mexican Volcanic Belt (TMVB) is related to subduction of the Cocos and Rivera plates underneath the
North American plate. Non-parallelism of the magmatic arc with respect to the trench can be explained by oblique subduction
and changes of dip angle. In this contribution we compare geochemical and Sr-Nd-Pb isotope data of five TMVB stratovolcanoes
(from east to west: Colima Volcano, Nevado de Toluca, Popocatepetl, La Malinche, and Pico de Orizaba) and associated cinder
cones. Volcanic products range in stratovolcanoes from andesites (e.g. Colima, Popocatepetl) to rhyolites (e.g. Pico de
Orizaba), and from basalts to andesites in the monogenetic cones. Concentrations of incompatible elements correlate
positively with Sr-Nd-Pb isotope ratios from east to west along the arc. 87Sr/86Sr, eNd, and 206Pb/204Pb range from
0.7034-0.7050, +6.9 to minus 1.8, and 18.57-18.78, respectively, displaying considerable differences. In the central TMVB,
REE patterns of closely spaced high-Mg basaltic andesites differ substantially. This cannot be explained by fractional
crystallization processes or differential partial melting of a homogeneous mantle source. Instead, it points towards
small-scale mantle heterogeneities. LILE (e.g. Cs, Rb, Ba, Pb) and HFSE (e.g. Ta, Nb, Zr) display variations of orders in
magnitude at different segments along the arc. These variations might correlate with amounts of slab-derived aqueous fluids
and intensity of metasomatic reactions between the subducting lithosphere and the overlying mantle wedge. Isotopic ratios of
mid-lower crustal xenoliths found in nearly all stratovolcano products reflect the nature of the underlying crust beneath the
TMVB. Tertiary-Cretaceous plagiogranites (Colima), Cretaceous limestones (Popocatepetl), and Grenvillian quartzites (Pico de
Orizaba)and their increasing radiogenic isotope ratios match well with the observed isotopic signatures of the
stratovolcanoes. Moreover, elevated CO2 amounts in Popocatepetl gas plumes can be explained by the ingestion of limestone by
the rising magma. Long-lived recycling of oceanic crust and sediments into the mantle, varying amounts of mantle and slab
flux heterogeneities, and obvious crustal assimilation processes are responsible for the complex element and isotope
distributions observed along the TMVB.
DE: 1040 Radiogenic isotope geochemistry
DE: 3613 Subduction zone processes (1031, 3060, 8170, 8413)
DE: 3640 Igneous petrology
DE: 8410 Geochemical modeling (1009, 3610)
DE: 8413 Subduction zone processes (1031, 3060, 3613, 8170)
SC: Volcanology, Geochemistry, Petrology [V]
MN: Fall Meeting 2005