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Magma and Mineral Composition Response to Increasing Slab-Derived Fluid Flux: Nevado de Longavi Volcano, Southern Chilean Andes
Indexado
WoS WOS:000778166700001
Scopus SCOPUS_ID:85127424971
DOI 10.3389/FEART.2022.846997
Año 2022
Tipo artículo de investigación

Citas Totales

Autores Afiliación Chile

Instituciones Chile

% Participación
Internacional

Autores
Afiliación Extranjera

Instituciones
Extranjeras


Abstract



Nevado de Longavi volcano (NLV), in the Southern-Central Chilean Andes, has erupted during the Holocene magmas with compositions that are in several ways atypical for the region. These characteristics include elevated La/Yb ratios in evolved magmas, in an area of only moderately thick crust, coupled with low concentrations of K, Th, and other incompatible elements and elevated ratios of fluid-mobile (B, Cs, Li, Sb) to fluid-immobile elements. Samples have an unusual mafic mineralogy dominated by amphibole. The petrology of the Holocene products of NLV have been related to the influence of an oceanic transform fault (Mocha Fracture Zone; MFZ) that supplies the mantle wedge with unusually high amounts of fluids via dehydration of serpentinite bodies hosted by the subducted oceanic lithosphere. Because the trace of this transform fault is oblique to the convergence vector, its position along the arc has varied through time, as has the magnitude of its influence on the nature of the magmas erupted at NLV. The whole-rock and mineral chemistry of volcanic products from NLV, tied to a simplified stratigraphy, documents the secular changes in the magmatic system as the oceanic fault approached its current position. Magmas erupted similar to 1-0.6 Ma are relatively low in water (as inferred from mineralogy and chemical proxies) and reduced (NNO-1 to NNO+0.5), and are similar to compositions found in neighboring volcanoes. From 0.25 Ma to the present, magmas are water-rich and oxidized (NNO-0.5 to NNO+1.7). In the intervening 0.6-0.25 Ma, mafic magmatism acquired a transient crustal component, which we identify as subducted sediment melts, on the basis of radiogenic isotopes and Pb, Th, and U abundances. Fluids released from serpentinite in the fracture zone were rich in Li, B, Sb, Cs and Ba, but not in K, Th, U and Sr. The fluid addition led to enhanced melting, particularly hydrous magmas that stabilized amphibole early during fractionation, higher oxygen fugacities, and distinctive chemical compositions.

Revista



Revista ISSN
Frontiers In Earth Science 2296-6463

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Disciplinas de Investigación



WOS
Geosciences, Multidisciplinary
Scopus
Sin Disciplinas
SciELO
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Publicaciones WoS (Ediciones: ISSHP, ISTP, AHCI, SSCI, SCI), Scopus, SciELO Chile.

Colaboración Institucional



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Autores - Afiliación



Ord. Autor Género Institución - País
1 Selles, Daniel Hombre Harvard University - Estados Unidos
Teck Resources Chile Ltda - Chile
Teck Resources Ltd. - Canadá
2 Dungan, Michael Hombre UNIV OREGON - Estados Unidos
University of Oregon - Estados Unidos
3 Langmuir, Charles Hombre Harvard University - Estados Unidos
4 Rodriguez, Ana Carolina Mujer Harvard University - Estados Unidos
Corp Nacl Cobre CODELCO - Chile
Corporación Nacional del Cobre - Chile
5 Leeman, William P. Hombre Rice Univ - Estados Unidos
Rice University - Estados Unidos

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Financiamiento



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