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Jupiter's evolution with primordial composition gradients

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arxiv 1801.08149 v1 pith:VDY3K2R6 submitted 2018-01-24 astro-ph.EP

Jupiter's evolution with primordial composition gradients

classification astro-ph.EP
keywords jupitercompositionevolutiongradientgradientsmassprimordialstructure
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Recent formation and structure models of Jupiter suggest that the planet can have composition gradients and not be fully convective (adiabatic). This possibility directly affects our understanding of Jupiter's bulk composition and origin. In this Letter we present Jupiter's evolution with a primordial structure consisting of a relatively steep heavy-element gradient of 40 Earth masses. We show that for a primordial structure with composition gradients, most of the mixing occurs in the outer part of the gradient during the early evolution (several 10^7 years), leading to an adiabatic outer envelope (60% of Jupiter's mass). We find that the composition gradient in the deep interior persists, suggesting that about 40% of Jupiter's mass can be non-adiabatic with a higher temperature than the one derived from Jupiter's atmospheric properties. The region that can potentially develop layered-convection in Jupiter today is estimated to be limited to about 10% of the mass.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. The influence of composition gradients on giant planet radii

    astro-ph.EP 2026-07 conditional novelty 7.0

    Composition gradients change giant-planet radii only by altering total entropy over time; after a ~Gyr decoupling age the radius depends only on mass and bulk metallicity.