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Article Dans Une Revue Geology Année : 2008

Scenario for the evolution of atmospheric pCO2 during a snowball Earth

Résumé

The snowball Earth theory, initially proposed by J.L. Kirschvink to explain the Neoproterozoic glacial episodes, suggests that the Earth was globally ice covered at 720 Ma (Sturtian episode) and 640 Ma (Marinoan episode). The reduction of the water cycle and the growth of large ice sheets led to a collapse of CO 2 consumption through continental weathering and biological carbon pumping. As a consequence, atmospheric CO 2 built up linearly to levels allowing escape from a snowball Earth. In this contribution, we question this assumed linear accumulation of CO 2 into the atmosphere. Using a numerical model of the carbon-alkalinity cycles, we suggest that during global glaciations, even a limited area of open waters (10 3 km 2) allows an effi cient atmospheric CO 2 diffusion into the ocean. This exchange implies that the CO 2 consumption through the low-temperature alteration of the oceanic crust persists throughout the glaciation. Furthermore, our model shows that rising CO 2 during the glaciation increases the effi ciency of this sink through the seawater acidifi cation. As a result, the atmospheric CO 2 evolution is asymptotic, limiting the growth rate of the atmospheric carbon reservoir. Even after the maximum estimated duration of the glaciation (30 m.y.), the atmospheric CO 2 is far from reaching the minimum deglaciation threshold (0.29 bar). Accounting for this previously neglected carbon sink, processes that decrease the CO 2 deglaciation threshold must be further explored.
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Dates et versions

hal-02902761 , version 1 (18-12-2020)

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Guillaume Le Hir, Gilles Ramstein, Yannick Donnadieu, Yves Goddéris. Scenario for the evolution of atmospheric pCO2 during a snowball Earth. Geology, 2008, 36 (1), pp.47-50. ⟨10.1130/G24124A.1⟩. ⟨hal-02902761⟩
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