A Fourth Planet in the Kepler-51 System Revealed by Transit Timing Variations

Open Access
Authors
  • K. Masuda
  • J.E. Libby-Roberts
  • J.H. Livingston
  • K.B. Stevenson
  • P. Gao
  • S. Vissapragada
  • G. Fu
  • T. Han
  • M. Greklek-McKeon
  • S. Mahadevan
  • E. Agol
  • A. Bello-Arufe
  • Z. Berta-Thompson
  • C.I. Cañas
  • Y. Chachan
  • L. Hebb
  • R. Hu
  • Y. Kawashima
  • H.A. Knutson
  • C.V. Morley
  • C.A. Murray
  • K. Ohno
  • A. Tokadjian
  • X. Zhang
  • L. Welbanks
  • M.C. Nixon
  • R. Freedman
  • N. Narita
  • A. Fukui
  • J.P. de Leon
  • M. Mori
  • E. Palle
  • F. Murgas
  • H. Parviainen
  • E. Esparza-Borges
  • D. Jontof-Hutter
  • K.A. Collins
  • P. Benni
  • K. Barkaoui
  • F.J. Pozuelos
  • M. Gillon
  • E. Jehin
  • Z. Benkhaldoun
  • S. Hawley
  • A.S.J. Lin
  • Guđmundur Stefánsson ORCID logo
  • A. Bieryla
  • M. Yilmaz
  • H.V. Senavci
  • E. Girardin
  • G. Marino
  • G. Wang
Publication date 12-2024
Journal Astronomical Journal
Article number 294
Volume | Issue number 168 | 6
Number of pages 36
Organisations
  • Faculty of Science (FNWI) - Anton Pannekoek Institute for Astronomy (API)
Abstract

Kepler-51 is a ≲1 Gyr old Sun-like star hosting three transiting planets with radii ≈6-9 R and orbital periods ≈45-130 days. Transit timing variations (TTVs) measured with past Kepler and Hubble Space Telescope (HST) observations have been successfully modeled by considering gravitational interactions between the three transiting planets, yielding low masses and low mean densities (≲0.1 g cm−3) for all three planets. However, the transit time of the outermost transiting planet Kepler-51d recently measured by the James Webb Space Telescope 10 yr after the Kepler observations is significantly discrepant from the prediction made by the three-planet TTV model, which we confirmed with ground-based and follow-up HST observations. We show that the departure from the three-planet model is explained by including a fourth outer planet, Kepler-51e, in the TTV model. A wide range of masses (≲MJup) and orbital periods (≲10 yr) are possible for Kepler-51e. Nevertheless, all the coplanar solutions found from our brute-force search imply masses ≲10 M for the inner transiting planets. Thus, their densities remain low, though with larger uncertainties than previously estimated. Unlike other possible solutions, the one in which Kepler-51e is around the 2:1 mean motion resonance with Kepler-51d implies low orbital eccentricities (≲0.05) and comparable masses (∼5 M) for all four planets, as is seen in other compact multiplanet systems. This work demonstrates the importance of long-term follow-up of TTV systems for probing longer-period planets in a system.

Document type Article
Note Publisher Copyright: © 2024. The Author(s). Published by the American Astronomical Society.
Language English
Published at https://doi.org/10.3847/1538-3881/ad83d3
Other links https://www.scopus.com/pages/publications/85211060597
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