HR: 12:05h
AN: U22A-08 [Abstracts]
TI: Impact-Induced Deglaciation of the Snowball Earth?
AU: * Koeberl, C
EM: christian.koeberl@univie.ac.at
AF: Center for Earth Sciences, University of Vienna, Althanstrasse 14, Vienna, A-1090, Austria
AU: Ivanov, B A
EM: baivanov@idg.chph.ras.ru
AF: Institute for Dynamics of Geospheres, Russian Academy of Sciences, Moscow, 119334,
Russian Federation
AU: Goodman, J
EM: goodman_jason@wheatonma.edu
AF: Astronomy and Physics Department, Wheaton College, 26 E. Main St., Norton, MA 02766,
United States
AB:
Observational evidence indicates that the Precambrian Earth's history had episodes of total ice coverage of the
planet. The Snowball Earth hypothesis states that the Sturtian (about 710 Ma) and Marinoan glaciations (about
635 Ma) were of global extent and lasted for several million years each. A variation of this hypothesis, called the
Slushball Earth, requires milder conditions without substantial equatorial sea ice. The Snowball Earth glaciations
would have ended abruptly in a greenhouse environment, whereas the Slushball would have experienced a
slower deglaciation. Not only is the cause of a possible glaciation unclear, but the cause and mechanism of
deglaciation is also debated. The goal of our study is to investigate if it is conceivable that a large-scale impact
event might have triggered the deglaciation. The problem of the climatic effects of large impact events is not clear,
as previously a Chicxulub-scale impact was suggested to induce global freezing.
In terms of cratering rates, it is statistically plausible that the impact of a ~5 km diameter asteroid occurs during a
"snowball period" with a duration of several million years. Most probably is an impact into the ice-covered ocean.
In such a case a vapor plume with a total mass of n×1015 kg will rise up and then collapse over the atmosphere,
creating a transient "hot spot". The more indirect consequences may include a global enrichment of the upper
atmosphere with water vapors, dust and sea salt particles (in the case of an impact into ocean). Photochemical
reactions should be taken into account for a further climatic modeling. At this point our simulations do not allow a
conclusion if an impact of a realistic magnitude could cause deglaciation of a Snowball Earth.
DE: 0456 Life in extreme environments
DE: 1605 Abrupt/rapid climate change (4901, 8408)
DE: 1621 Cryospheric change (0776)
DE: 5420 Impact phenomena, cratering (6022, 8136)
SC: Union [U]
MN: 2007 Fall Meeting