The Magmatic Evolution and the Regional Context of the 1835 AD Osorno Volcano Products (41°06’S, Southern Chile)

Author:

Morgado Eduardo123ORCID,Morgan Daniel J1,Harvey Jason1,Castruccio Angelo24,Brahm Raimundo5ORCID,McGee Lucy E6,Parada Miguel-Ángel24,Georgiev Bogomil1,Hammond Samantha J7

Affiliation:

1. University of Leeds Institute of Geophysics and Tectonics, School of Earth and Environment, , Leeds LS2 9JT, UK

2. Centro de Excelencia en Geotermia de los Andes (CEGA-FONDAP 15090013) , Plaza Ercilla 303, Santiago, 8320000, Chile

3. Escuela de Geología , Universidad Mayor, Manuel Montt 367, Providencia, Santiago, 7500994, Chile

4. Universidad de Chile Departamento de Geología, Facultad de Ciencias Físicas y Matemáticas, , Plaza Ercilla 303, Santiago, 8320000, Chile

5. Victoria University of Wellington School of Geography, Environment & Earth Sciences, Te Herenga Waka, , PO Box 600, Wellington 6140, New Zealand

6. University of Adelaide Earth Sciences, School of Physical Sciences, , Adelaide 5005, Australia

7. The Open University Environment, Earth and Ecosystems, , Milton Keynes, MK7 6AA, UK

Abstract

Abstract Osorno volcano (41°06’S, 72°20’W) is a composite stratovolcano of the Central Southern Volcanic Zone of the Chilean Andes. It is the southernmost member of a NE–SW trending alignment of volcanic edifices including La Picada and Puntiagudo volcanoes and the Cordón Cenizos chain. According to contemporary descriptions recorded by Charles Darwin in 1835, two eruptive events occurred: the first during January–February, and the second during November–December 1835 and January 1836. The volcano erupted basaltic andesite lavas and tephra fall deposits (52.4 to 52.9 SiO2 wt. %), which contain phenocrysts of olivine, plagioclase, clinopyroxene, and spinel. The compositions of these phenocryst phases, together with those of olivine-hosted melt inclusions, allowed us to constrain intensive parameters for the pre-eruptive magmas. These varied from 1060°C to 1140°C, with an oxygen fugacity buffer of ~ΔQFM +1.1, dissolved water concentrations of up to 5.6 wt. % (average of ~4.2 wt. %) and maximum pressures equivalent to ~7-km depth. Textural relations, such as crystal accumulations and clots, zoning in crystals and other indications of disequilibrium, lead us to infer the involvement of a crystal mush, rich in individual crystals and clots of crystals, which underwent a degree of disaggregation and entrainment into the transiting magma prior to eruption. Comparison of trace element abundances, including rare earth elements, fluid-mobile elements, and relatively fluid-immobile elements, combined with 87Sr/86Sr and 143Nd/144Nd isotope ratios, allows us to consider variations in slab-derived fluid input and the minor role of crustal contamination on the Osorno eruptive products and those from neighboring volcanic systems. Our results suggest both a greater contribution from slab-derived fluid and a higher degree of partial melting in the systems supplying stratovolcanoes (Osorno, Calbuco, and La Picada) relative to those supplying small eruptive centers built over the major regional Liquiñe-Ofqui Fault Zone.

Publisher

Oxford University Press (OUP)

Subject

Geochemistry and Petrology,Geophysics

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