Petrology of the 2020–21 effusive to explosive eruption of La Soufrière Volcano, St Vincent: insights into plumbing system architecture and magma assembly mechanism

Author:

Weber Gregor12ORCID,Blundy Jon1,Barclay Jenni3,Pyle David M.1,Cole Paul4,Frey Holli5,Manon Matthew5,Davies Bridie V.3,Cashman Katharine2

Affiliation:

1. Department of Earth Sciences, University of Oxford, Oxford OX1 3AN, UK

2. School of Earth Sciences, University of Bristol, Bristol BS8 1RJ, UK

3. School of Environmental Sciences, University of East Anglia, Norwich NR4 7TJ, UK

4. School of Geography, Earth and Environmental Sciences, University of Plymouth, Plymouth PL4 8AA, UK

5. Geoscience Department, Union College, NY 12308 Schenectady, United States

Abstract

Abstract The 2020–21 eruption of La Soufrière, St Vincent began with extrusion of a viscous lava dome, which was destroyed upon transition to a major explosive phase. Here we present petrological data to reconstruct the processes leading up to these events. Bulk-rock SiO 2 contents range from 52.8 to 55.4 wt%, classifying the lava and the subsequent scoria as basaltic andesite, the latter being slightly more mafic. Macrocrystal chemistry and modes (plag–cpx–opx–tmt–ol) and crystallinity (45–50 vol%) are largely identical for both phases of the eruption. Pyroxenes are homogenous and precipitated mostly from andesitic melts. Conversely, plagioclase shows strong normal zonation resulting from magma ascent and stalling at multiple crustal levels. Clinopyroxene thermobarometry reveals that crystallization predominantly took place between 8 and 13 km depth at temperatures of 997 35 + 18 C . A lack of evidence for mafic recharge and changes in volatile content and the omnipresence of xenoliths, suggests pre-eruptive destabilization of an andesitic–dacitic melt pocket that disrupted and entrained antecedent mush. Olivine diffusion profiles show that this interaction preceded the onset of eruption. Low dissolved sulfur contents (≤270 ppm S) place constraints on the total SO 2 gas release. Melt–mush disruption appears to be a dominant driver of eruptions at La Soufrière.

Funder

Natural Environment Research Council

Schweizerischer Nationalfonds zur Förderung der Wissenschaftlichen Forschung

Publisher

Geological Society of London

Subject

Geology,Ocean Engineering,Water Science and Technology

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