Viscous dissipation in the fluid core of the Moon
arXiv:2201.00781 · doi:10.1029/2021JE006966
Abstract
The spin axes of the mantle, fluid core and solid inner core of the Moon precess at frequency yr though with different orientations, leading to viscous friction at the core-mantle boundary (CMB) and inner core boundary (ICB). Here, we use a rotational model of the Moon with a range of inner core and outer core radii to investigate the relative importance of viscous dissipation at the CMB and ICB, and to show how this dissipation is connected to the phase lead angle () of the mantle ahead of its Cassini state. We show that when the inner core radius is km and the free inner core nutation frequency approaches , viscous dissipation at the ICB can be comparable to that at the CMB, and in the most extreme cases exceed it by as much as a factor 10. If so, the viscous dissipation in the lunar core projected back in time depends on how has evolved relative to . We further show that constraints on the CMB and ICB radii of the lunar core can in principle be extracted by matching the observed phase lead of arcsec; this requires an improved estimate of tidal dissipation and an accurate model of the turbulent viscous torque. Lastly, when our rotational model is constrained to match arcsec, our results suggest that the viscous dissipation at the ICB is likely insufficient to have ever been above the threshold to power a thermally driven dynamo.
26 pages, 3 figures
References in corpus (5)
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- A past lunar dynamo thermally driven by the precession of its inner core
- The coupling between inertial and rotational eigenmodes in planets with liquid cores
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- The Cassini State of the Moon's inner core