The 1831 CE mystery eruption identified as Zavaritskii caldera, Simushir Island (Kurils)
Abstract
Polar ice cores and historical records evidence a large-magnitude volcanic eruption in 1831 CE. This event was estimated to have injected ~13 Tg of sulfur (S) into the stratosphere which produced various atmospheric optical phenomena and led to Northern Hemisphere climate cooling of ~1 °C. The source of this volcanic event remains enigmatic, though one hypothesis has linked it to a modest phreatomagmatic eruption of Ferdinandea in the Strait of Sicily, which may have emitted additional S through magma–crust interactions with evaporite rocks. Here, we undertake a high-resolution multiproxy geochemical analysis of ice-core archives spanning the 1831 CE volcanic event. S isotopes confirm a major Northern Hemisphere stratospheric eruption but, importantly, rule out significant contributions from external evaporite S. In multiple ice cores, we identify cryptotephra layers of low K andesite-dacite glass shards occurring in summer 1831 CE and immediately prior to the stratospheric S fallout. This tephra matches the chemistry of the youngest Plinian eruption of Zavaritskii, a remote nested caldera on Simushir Island (Kurils). Radiocarbon ages confirm a recent (<300 y) eruption of Zavaritskii, and erupted volume estimates are consistent with a magnitude 5 to 6 event. The reconstructed radiative forcing of Zavaritskii (−2 ± 1 W m −2 ) is comparable to the 1991 CE Pinatubo eruption and can readily account for the climate cooling in 1831–1833 CE. These data provide compelling evidence that Zavaritskii was the source of the 1831 CE mystery eruption and solve a confounding case of multiple closely spaced observed and unobserved volcanic eruptions.
Article Details
Journal Info
Proceedings of the National Academy of Sciences
National Academy of Sciences
Authors (19)
William Hutchison
School of Earth and Environmental Sciences, University of St Andrews
Patrick Sugden
School of Earth and Environmental Sciences, University of St Andrews
Andrea Burke
School of Earth and Environmental Sciences, University of St Andrews
Peter Abbott
Climate and Environmental Physics & Oeschger Centre for Climate Change Research, University of Bern
Vera V. Ponomareva
Institute of Volcanology and Seismology, Russian Academy of Sciences
Oleg Dirksen
Institute of Volcanology and Seismology, Russian Academy of Sciences
Maxim V. Portnyagin
GEOMAR Helmholtz Centre for Ocean Research Kiel
Breanyn MacInnes
Department of Geological Sciences, Central Washington University
Joanne Bourgeois
Department of Earth & Space Sciences, University of Washington
Ben Fitzhugh
Department of Anthropology, University of Washington
Magali Verkerk
Department of Earth and Environmental Sciences, University of Exeter
Thomas J. Aubry
Department of Earth and Environmental Sciences, University of Exeter
Samantha L. Engwell
British Geological Survey, The Lyell Centre
Anders Svensson
Centre for Ice and Climate, Section for the Physics of Ice, Climate, and Earth, Niels Bohr Institute, University of Copenhagen
Nathan J. Chellman
Division of Hydrologic Sciences, Desert Research Institute
Joseph R. McConnell
Division of Hydrologic Sciences, Desert Research Institute
Siwan Davies
Department of Geography, College of Science, Swansea University
Michael Sigl
Gill Plunkett
School of Natural and Built Environment, Queen’s University Belfast