Published February 2026 | Version Published
Journal Article Open

Further constraints on Jupiter's primordial structure

  • 1. ROR icon University of Zurich
  • 2. ROR icon California Institute of Technology
  • 3. ROR icon University of Michigan–Ann Arbor

Abstract

The primordial structure of Jupiter remains uncertain, yet it holds vital clues on the planet’s formation and early evolution. Recent work used dynamical constraints from Jupiter’s inner moons to determine its primordial state, thereby providing a novel, formation-era anchor point for interior modeling. Building on this approach, we combine these dynamical constraints with thermal evolution simulations to investigate which primordial structures are consistent with present-day Jupiter. We present 4,250 evolutionary models of the planetary structure, including compositional mixing and helium phase separation, spanning a broad range of initial entropies and composition profiles. We find that Jupiter’s present-day structure is best explained by a warm (4.98−2.57+3.00 kB mu−1), metal-rich dilute core inherited from formation. To simultaneously satisfy constraints on Jupiter’s primordial spin, however, its envelope must have been significantly warmer (9.32−0.58+0.48 kB mu−1) at the time of disk dispersal. We determine Jupiter’s primordial radius to be 1.89−0.49+0.40 RJ. These results provide new constraints on Jupiter’s formation, suggesting that most heavy elements were accreted early during runaway gas accretion, and placing bounds on the energy dissipated during the accretion shock.

Copyright and License

© The Authors 2026. Open Access article, published by EDP Sciences, under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.

Acknowledgement

We thank Ankan Sur, Roberto Tejada Arevalo, and Adam Burrows for kindly providing their Jupiter models. This work has been carried out within the framework of the National Centre of Competence in Research PlanetS supported by the Swiss National Science Foundation under grants 51NF40_182901, 51NF40_205606, and 215634. FCA is supported in part by Grant No. 2508843 from the National Science Foundation (USA) and by the Leinweber Institute for Theoretical Physics at the University of Michigan. KB is thankful for the support of the David and Lucile Packard Foundation, and the National Science Foundation (grant No. AST 2408867) as well as to Caltech and 3 CPE.

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Additional details

Related works

Is new version of
Discussion Paper: arXiv:2512.03961 (arXiv)

Funding

Swiss National Science Foundation
51NF40_182901
Swiss National Science Foundation
51NF40_205606
Swiss National Science Foundation
215634
National Science Foundation
2508843
Leinweber Institute for Theoretical Physics

Dates

Submitted
2025-08-25
Accepted
2025-12-01
Available
2026-01-30
Published online

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