Snowball Earth Initiation and the Thermodynamics of Sea Ice

Autor(en)
Johannes Hörner, Aiko Voigt, Christoph Braun
Abstrakt

Snowball Earth is a hypothesized state in the deep past of Earth in which the ocean was completely or nearly completely covered by sea ice, resulting from a runaway ice-albedo feedback. Here, we address how the treatment of sea-ice thermodynamics affects the initiation of a Snowball Earth in the global climate model ICON-A run in an idealized slab-ocean aquaplanet setup. Specifically, we study the impact of vertical resolution and brine pockets of ice by comparing the 3-layer Winton and a 0-layer Semtner scheme, and we investigate the impact of limiting ice thickness to 5 m. The internal heat storage of ice is increased by higher vertical resolution and brine pockets, which weakens surface melting and increases global albedo by allowing snow and ice to persist longer into the summer season. The internal heat storage weakens the melt-ratchet effect, as is confirmed with offline simulations with the two ice schemes. The result is a substantially easier Snowball Earth initiation and an increase in the critical CO2 for Snowball initiation by 50%. Limiting ice thickness impedes Snowball initiation as the removal of excess ice leads to an artificial heat source. Yet, the impact is minor and critical CO2 is decreased by 5% only. The results show that while the sea-ice thickness limit plays only a minor role, the internal heat storage of ice represents an important factor for Snowball initiation and needs to be taken into account when modeling Snowball Earth initiation.

Organisation(en)
Institut für Meteorologie und Geophysik
Externe Organisation(en)
Karlsruher Institut für Technologie, Institute of Meteorology and Climate Research
Journal
Journal of Advances in Modeling Earth Systems
Band
14
Anzahl der Seiten
18
ISSN
1942-2466
DOI
https://doi.org/10.1029/2021MS002734
Publikationsdatum
08-2022
Peer-reviewed
Ja
ÖFOS 2012
105204 Klimatologie
Schlagwörter
ASJC Scopus Sachgebiete
Allgemeine Erdkunde und Planetologie, Global and Planetary Change, Environmental Chemistry
Sustainable Development Goals
SDG 13 – Maßnahmen zum Klimaschutz
Link zum Portal
https://ucrisportal.univie.ac.at/de/publications/a52cbbd3-997b-4c81-a09f-aa4f919b4027