Saturns Are Not Large Neptunes: The effect of removing inflated giants from empirical mass-radius relations

Abstract Empirical mass-radius relations have long been used in exoplanetology to study planet demographics and to predict masses and radii for objects where only one of these is known. Inferred transitions between planet classes can also provide empirical evidence in support of theory. However, mass-radius relations fitted in two-dimensions can be complicated when additional factors influence the planetary parameters, as is the case with the radius inflation of giant planets. In this work, we present an empirical mass-radius relation derived by fitting a broken power-law to a cleaned PlanetS sample from which inflated giants have been removed. We find that when inflated giants are excluded, the preferred model contains three breakpoints and four segments, showing the emergence of a distinct Saturnian regime between 54 ± 3M⊕ < M < 258 ± 11M⊕. In this regime, planets are still growing but at a lower rate than the Neptunian regime, consistent with the onset of gravitational self-compression. We also update the irradiation threshold for giant planet inflation, $S_{\\rm thr}=99 \\rm S_{\\oplus }$ ($1.3 \\rm ergs\\, s^{-1}\\, cm^{-2}$); below Sthr, 90 % of giant planets have a radius excess Δlog R < 2σ.

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Publication Details

Journal
Monthly Notices of the Royal Astronomical Society
Published
2026-09-17
DOI
https://doi.org/10.1093/mnras/stag1762
Primary Topic
Stellar, planetary, and galactic studies
Type
article
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article

Saturns Are Not Large Neptunes: The effect of removing inflated giants from empirical mass-radius relations

Niamh K. O'Sullivan, Valentina Tardugno, Georgina Dransfield
Monthly Notices of the Royal Astronomical Society
Stellar, planetary, and galactic studies
article

Saturns Are Not Large Neptunes: The effect of removing inflated giants from empirical mass-radius relations

Niamh K. O'Sullivan, Valentina Tardugno, Georgina Dransfield
article en

Abstract

Abstract Empirical mass-radius relations have long been used in exoplanetology to study planet demographics and to predict masses and radii for objects where only one of these is known. Inferred transitions between planet classes can also provide empirical evidence in support of theory. However, mass-radius relations fitted in two-dimensions can be complicated when additional factors influence the planetary parameters, as is the case with the radius inflation of giant planets. In this work, we present an empirical mass-radius relation derived by fitting a broken power-law to a cleaned PlanetS sample from which inflated giants have been removed. We find that when inflated giants are excluded, the preferred model contains three breakpoints and four segments, showing the emergence of a distinct Saturnian regime between 54 ± 3M⊕ < M < 258 ± 11M⊕. In this regime, planets are still growing but at a lower rate than the Neptunian regime, consistent with the onset of gravitational self-compression. We also update the irradiation threshold for giant planet inflation, $S_{\rm thr}=99 \rm S_{\oplus }$ ($1.3 \rm ergs\, s^{-1}\, cm^{-2}$); below Sthr, 90 % of giant planets have a radius excess Δlog R < 2σ.

Monthly Notices of the Royal Astronomical Society
Northeast Catholic College (US), University of Oxford (GB)
Openalex Percentile: Top 11%
Stellar, planetary, and galactic studies
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Saturns Are Not Large Neptunes: The effect of removing inflated giants from empirical mass-radius relations — Niamh K. O'Sullivan, Valentina Tardugno, et al. · Monthly Notices of the Royal Astronomical Society (2026) | TGRS Research Map | TGRS