Crustal control of dissipative ocean tides in Enceladus and other icy moons
arXiv:1608.08488 · doi:10.1016/j.icarus.2016.08.009
Abstract
Could tidal dissipation within Enceladus' subsurface ocean account for the observed heat flow? Earthlike models of dynamical tides give no definitive answer because they neglect the influence of the crust. I propose here the first model of dissipative tides in a subsurface ocean, by combining the Laplace Tidal Equations with the membrane approach. For the first time, it is possible to compute tidal dissipation rates within the crust, ocean, and mantle in one go. I show that oceanic dissipation is strongly reduced by the crustal constraint, and thus contributes little to Enceladus' present heat budget. Tidal resonances could have played a role in a forming or freezing ocean less than 100 m deep. The model is general: it applies to all icy satellites with a thin crust and a shallow ocean. Scaling rules relate the resonances and dissipation rate of a subsurface ocean to the ones of a surface ocean. If the ocean has low viscosity, the westward obliquity tide does not move the crust. Therefore, crustal dissipation due to dynamical obliquity tides can differ from the static prediction by up to a factor of two.
56 pages, 14 figures, 4 tables; Icarus, in press
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Cited by in corpus (16)
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- Ocean Circulation on Enceladus With a High Versus Low Salinity Ocean
- Enceladus's crust as a non-uniform thin shell: I Tidal deformations
- Enceladus's crust as a non-uniform thin shell: II tidal dissipation
- Powering the Galilean Satellites with Moon-Moon Tides
- Spontaneous formation of geysers at only one pole on Enceladus' ice shell
- Final spin states of eccentric ocean planets
- Inclination damping on Callisto
- Thermal and orbital evolution of low-mass exoplanets
- The role of ocean circulation in driving hemispheric symmetry breaking of the ice shell of Enceladus
- The effect of salinity on ocean circulation and ice-ocean interaction on Enceladus
- Differing Enceladean ocean circulation and ice shell geometries driven by tidal heating in the ice versus the core
- Vital Signs: Seismology of ocean worlds
- Anisotropic tidal dissipation in misaligned planetary systems
- Comment on `Heating of Enceladus due to the dissipation of ocean tides' by R. Tyler