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Thermal-orbital evolution of Eris

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abstract

The large Kuiper Belt object (KBO) Eris is nearly as big as Pluto and has a small moon, Dysnomia. Constraints on the system's spin and orbit characteristics were recently used to argue for a dissipative Eris, requiring a differentiated structure but not necessarily a subsurface ocean. Here, we model the thermal history of Eris coupled to its spin-orbital evolution, finding a subsurface ocean is preferred in order for Eris to be sufficiently dissipative. Spinning down Eris without an ocean is difficult, requiring a warm convecting ice shell protected by a thick insulating layer and very dissipative anelastic behavior in ice. Oceans make up 77-100% of successful thermal-orbital evolution models, depending on the parameters assumed, which increases to >98% when the Andrade $\beta$ parameter for ice is restricted to $\beta\leq3\times10^{-11}$ Pa$^{-1}$ s$^{-0.25}$. Oceans freeze over by the present day unless insulation (porosity, gas clathrates) or antifreeze are present.

fields

astro-ph.EP 1

years

2025 1

verdicts

CONDITIONAL 1

representative citing papers

Synchronous Rotation in the (120347) Salacia-Actaea System

astro-ph.EP · 2025-09-02 · conditional · novelty 6.0

Observations show that Salacia and Actaea are likely in fully synchronous rotation, with Salacia's albedo-variation lightcurve matching the 5.49389-day mutual orbital period.

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  • Synchronous Rotation in the (120347) Salacia-Actaea System astro-ph.EP · 2025-09-02 · conditional · none · ref 1 · internal anchor

    Observations show that Salacia and Actaea are likely in fully synchronous rotation, with Salacia's albedo-variation lightcurve matching the 5.49389-day mutual orbital period.