Mass Upper Bounds for Over 50 Kepler Planets Using Low-S/N Transit Timing Variations
arXiv:2208.14398 · doi:10.3847/1538-3881/ac8985
Abstract
Prospects for expanding the available mass measurements of the Kepler sample are limited. Planet masses have typically been inferred via radial velocity (RV) measurements of the host star or time-series modeling of transit timing variations (TTVs) in multiplanet systems; however, the majority of Kepler hosts are too dim for RV follow-up, and only a select number of systems have strong enough TTVs for time-series modeling. Here, we develop a method of constraining planet mass in multiplanet systems using low signal-to-noise ratio (S/N) TTVs. For a sample of 175 planets in 79 multiplanet systems from the California-Kepler Survey, we infer posteriors on planet mass using publicly available TTV time-series from Kepler. For 53 planets ( of our sample), low-S/N TTVs yield informative upper bounds on planet mass, i.e., the mass constraint strongly deviates from the prior on mass and yields a physically reasonable bulk composition. For 25 small planets, low-S/N TTVs favor volatile-rich compositions. Where available, low-S/N TTV-based mass constraints are consistent with RV-derived masses. TTV time-series are publicly available for each Kepler planet, and the compactness of Kepler systems makes TTV-based constraints informative for a substantial fraction of multiplanet systems. Leveraging low-S/N TTVs offers a valuable path toward increasing the available mass constraints of the Kepler sample.
18 pages, accepted to AJ
References in corpus (11)
- Seven temperate terrestrial planets around the nearby ultracool dwarf star TRAPPIST-1
- DHP Framework: Digital Health Passports Using Blockchain -- Use case on international tourism during the COVID-19 pandemic
- Mass-Radius Relationships for Solid Exoplanets
- Detailed Models of super-Earths: How well can we infer bulk properties?
- The Mass of KOI-94d and a Relation for Planet Radius, Mass, and Incident Flux
- Ocean Planet or Thick Atmosphere: On the Mass-Radius Relationship for Solid Exoplanets with Massive Atmospheres
- Planetary Candidates Observed by Kepler V: Planet Sample from Q1-Q12 (36 Months)
- TTVFast: An efficient and accurate code for transit timing inversion problems
- Transit Light Curves with Finite Integration Time: Fisher Information Analysis
- A Joint Mass-Radius-Period Distribution of Exoplanets
- Physical Properties and Impact Parameter Variations of Kepler Planets from Analytic Light Curve Modeling