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Article Dans Une Revue Geochemistry, Geophysics, Geosystems Année : 2014

Lifting the cover of the cauldron: Convection in hot planets

Résumé

Convection models of planetary mantles do not usually include a specific treatment of near-surface dynamics. In all situations where surface dynamics is faster than internal dynamics, the lateral transport of material at the surface forbids the construction of a topography that could balance the internal convective stresses. This is the case if intense erosion erases the topography highs and fills in the depressions or if magma is transported through the lithosphere and spreads at the surface at large distances. In these cases, the usual boundary condition of numerical simulations, that the vertical velocity cancels at the surface should be replaced by a condition where the vertical flux on top of the convective mantle equilibrates that allowed by the surface dynamics. We show that this new boundary condition leads to the direct transport of heat to the surface and changes the internal convection that evolves toward a heat-pipe pattern. We discuss the transition between this extreme situation where heat is transported to the surface to the usual situation where heat diffuses through the lithosphere. This mechanism is much more efficient to cool a planet and might be the major cooling mechanism of young planets. Even the modest effect of material transport by erosion on Earth is not without effect on mantle convection and should affect the heat flow budget of our planet. Key Points: Convection and erosion can be strongly coupled on young planets A heat pipe mechanism can cool a young planet very rapidly Free slip conditions may not be appropriate in mantle convection models. © 2014. American Geophysical Union. All Rights Reserved.
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hal-02046717 , version 1 (20-12-2021)

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Y. Ricard, S. Labrosse, F. Dubuffet. Lifting the cover of the cauldron: Convection in hot planets. Geochemistry, Geophysics, Geosystems, 2014, 15 (12), pp.4617-4630. ⟨10.1002/2014GC005556⟩. ⟨hal-02046717⟩
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