Title of article :
The orbital–thermal evolution and global expansion of Ganymede
Author/Authors :
Bland، نويسنده , , Michael T. and Showman، نويسنده , , Adam P. and Tobie، نويسنده , , Gabriel، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2009
Pages :
15
From page :
207
To page :
221
Abstract :
The tectonically and cryovolcanically resurfaced terrains of Ganymede attest to the satelliteʹs turbulent geologic history. Yet, the ultimate cause of its geologic violence remains unknown. One plausible scenario suggests that the Galilean satellites passed through one or more Laplace-like resonances before evolving into the current Laplace resonance. Passage through such a resonance can excite Ganymedeʹs eccentricity, leading to tidal dissipation within the ice shell. To evaluate the effects of resonance passage on Ganymedeʹs thermal history we model the coupled orbital–thermal evolution of Ganymede both with and without passage through a Laplace-like resonance. In the absence of tidal dissipation, radiogenic heating alone is capable of creating large internal oceans within Ganymede if the ice grain size is 1 mm or greater. For larger grain sizes, oceans will exist into the present epoch. The inclusion of tidal dissipation significantly alters Ganymedeʹs thermal history, and for some parameters (e.g. ice grain size, tidal Q of Jupiter) a thin ice shell (5 to 20 km) can be maintained throughout the period of resonance passage. The pulse of tidal heating that accompanies Laplace-like resonance capture can cause up to 2.5% volumetric expansion of the satellite and contemporaneous formation of near surface partial melt. The presence of a thin ice shell and high satellite orbital eccentricity would generate moderate diurnal tidal stresses in Ganymedeʹs ice shell. Larger stresses result if the ice shell rotates non-synchronously. The combined effects of satellite expansion, its associated tensile stress, rapid formation of near surface partial melt, and tidal stress due to an eccentric orbit may be responsible for creating Ganymedeʹs unique surface features.
Keywords :
Thermal histories , Resonancesorbital , Ganymede , interiors
Journal title :
Icarus
Serial Year :
2009
Journal title :
Icarus
Record number :
2376730
Link To Document :
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