Article ID Journal Published Year Pages File Type
1773983 Icarus 2011 19 Pages PDF
Abstract

The leading face of Saturn’s moon Iapetus, Cassini Regio, has an albedo only one tenth that on its trailing side. The origin of this enigmatic dichotomy has been debated for over 40 years, but with new data, a clearer picture is emerging. Motivated by Cassini radar and imaging observations, we investigate Soter’s model of dark exogenous dust striking an originally brighter Iapetus by modeling the dynamics of the dark dust from the ring of the exterior retrograde satellite Phoebe under the relevant perturbations. In particular, we study the particles’ probabilities of striking Iapetus, as well as their expected spatial distribution on the Iapetian surface. We find that, of the long-lived particles (≳5 μm), most particle sizes (≳10 μm) are virtually certain to strike Iapetus, and their calculated distribution on the surface matches up well with Cassini Regio’s extent in its longitudinal span. The satellite’s polar regions are observed to be bright, presumably because ice is deposited there. Thus, in the latitudinal direction we estimate polar dust deposition rates to help constrain models of thermal migration invoked to explain the bright poles (Spencer, J.R., Denk, T. [2010]. Science 327, 432–435). We also analyze dust originating from other irregular outer moons, determining that a significant fraction of that material will eventually coat Iapetus—perhaps explaining why the spectrum of Iapetus’ dark material differs somewhat from that of Phoebe. Finally we track the dust particles that do not strike Iapetus, and find that most land on Titan, with a smaller fraction hitting Hyperion. As has been previously conjectured, such exogenous dust, coupled with Hyperion’s chaotic rotation, could produce Hyperion’s roughly isotropic, moderate-albedo surface.

► Most dust grains coming from irregulars and larger than ∼10 μm strike Iapetus. ► Our simulated dust distribution on Iapetus matches dark coating’s longitudinal spread. ► We estimate that tens of μm/Myr of ice sublimation will produce bright poles. ► Dust from other retrograde irregulars is almost equally likely to strike Iapetus. ► Most material that slips past Iapetus hits Titan; tiny fraction strikes Hyperion.

Related Topics
Physical Sciences and Engineering Earth and Planetary Sciences Space and Planetary Science
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