Severe Global Cooling After Volcanic Super-Eruptions? The Answer Hinges on Unknown Aerosol Size

Author:

McGraw Zachary12ORCID,DallaSanta Kevin12,Polvani Lorenzo M.134,Tsigaridis Kostas52,Orbe Clara21,Bauer Susanne E.2

Affiliation:

1. a Department of Applied Physics and Applied Mathematics, Columbia University, New York, New York

2. b NASA Goddard Institute for Space Studies, New York, New York

3. c Department of Earth and Environmental Sciences, Columbia University, New York, New York

4. d Division of Ocean and Climate Physics, Lamont-Doherty Earth Observatory, New York, New York

5. e Center for Climate Systems Research, Columbia University, New York, New York

Abstract

Abstract Volcanic super-eruptions have been theorized to cause severe global cooling, with the 74 kya Toba eruption purported to have driven humanity to near-extinction. However, this eruption left little physical evidence of its severity and models diverge greatly on the magnitude of post-eruption cooling. A key factor controlling the super-eruption climate response is the size of volcanic sulfate aerosol, a quantity that left no physical record and is poorly constrained by models. Here we show that this knowledge gap severely limits confidence in model-based estimates of super-volcanic cooling, and accounts for much of the disagreement among prior studies. By simulating super-eruptions over a range of aerosol sizes, we obtain global mean responses varying from extreme cooling all the way to the previously unexplored scenario of widespread warming. We also use an interactive aerosol model to evaluate the scaling between injected sulfur mass and aerosol size. Combining our model results with the available paleoclimate constraints applicable to large eruptions, we estimate that global volcanic cooling is unlikely to exceed 1.5°C no matter how massive the stratospheric injection. Super-eruptions, we conclude, may be incapable of altering global temperatures substantially more than the largest Common Era eruptions. This lack of exceptional cooling could explain why no single super-eruption event has resulted in firm evidence of widespread catastrophe for humans or ecosystems. Significance Statement Whether volcanic super-eruptions pose a threat to humanity remains a subject of debate, with climate models disagreeing on the magnitude of global post-eruption cooling. We demonstrate that this disagreement primarily stems from a lack of constraint on the size of volcanic sulfate aerosol particles. By evaluating the range of aerosol size scenarios, we demonstrate that eruptions may be incapable of causing more than 1.5°C cooling no matter how much sulfur they inject into the stratosphere. This could explain why archaeological records provide no evidence of increased human mortality following the Toba super-eruption. Further, we raise the unexplored possibility that the largest super-eruptions could cause global-scale warming.

Funder

National Science Foundation

Publisher

American Meteorological Society

Subject

Atmospheric Science

Reference64 articles.

1. Late Pleistocene human population bottlenecks, volcanic winter, and differentiation of modern humans;Ambrose, S. H.,1998

2. A new volcanic stratospheric sulfate aerosol forcing emulator (EVA_H): Comparison with interactive stratospheric aerosol models;Aubry, T. J.,2020

3. Climate change modulates the stratospheric volcanic sulfate aerosol lifecycle and radiative forcing from tropical eruptions;Aubry, T. J.,2021

4. MATRIX (Multiconfiguration Aerosol TRacker of mIXing state): An aerosol microphysical module for global atmospheric models;Bauer, S. E.,2008

5. Historical (1850–2014) aerosol evolution and role on climate forcing using the GISS ModelE2.1 contribution to CMIP6;Bauer, S. E.,2020

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