English

Hot-Jupiter Core Mass from Roche-lobe Overflow

Earth and Planetary Astrophysics 2017-05-15 v2

Abstract

The orbits of many observed hot Jupiters are decaying rapidly due to tidal interaction, eventually reaching the Roche limit. We analytically study the ensuing coupled mass loss and orbital evolution during the Roche-lobe overflow and find two possible scenarios. Planets with light cores Mc6MM_c\lesssim 6M_\oplus (assuming a nominal tidal dissipation factor Q106Q\sim 10^6 for the host star) are transformed into Neptune-mass gas planets, orbiting at a separation (relative to the stellar radius) a/R3.5a/R_\star\approx 3.5. Planets with heavier cores Mc6MM_c\gtrsim 6M_\oplus plunge rapidly until they are destroyed at the stellar surface. Remnant gas-Neptunes, which are stable to photo-evaporation, are absent from the observations, despite their unique transit radius (510R5-10R_\oplus). This result suggests that Mc6MM_c\gtrsim 6M_\oplus, providing a useful constraint on the poorly-known core mass that may distinguish between different formation theories of gas giants. Alternatively, if one assumes a prior of Mc6MM_c\approx 6 M_\oplus from the core-accretion theory, our results suggest that QQ does not lie in the range 106Q10710^6\lesssim Q\lesssim 10^7.

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Cite

@article{arxiv.1611.09373,
  title  = {Hot-Jupiter Core Mass from Roche-lobe Overflow},
  author = {Sivan Ginzburg and Re'em Sari},
  journal= {arXiv preprint arXiv:1611.09373},
  year   = {2017}
}

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Matched to published version

R2 v1 2026-06-22T17:07:11.828Z