Spin-Orbit Misalignment and Precession in the Kepler-13Ab Planetary System
Abstract
Gravity darkening induced by rapid stellar rotation provides us with a unique opportunity to characterize the spin-orbit misalignment of a planetary system through analysis of its photometric transit. We use the gravity-darkened transit modeling code simuTrans to reproduce the transit light curve of Kepler-13Ab by separately analyzing phase-folded transits for 12 short-cadence Kepler quarters. We verify the temporal change in impact parameter indicative of spin-orbit precession identified by Szabó et al. and Masuda, reporting a rate of change {db}/{dt}=(-4.1+/- 0.2)× {10}-5 day-1. We further investigate the effect of light dilution on the fitted impact parameter and find that less than 1% of additional light is sufficient to explain the seasonal variation seen in the Kepler quarter data. We then extend our precession analysis to the phase curve data from which we report a rate of change {db}/{dt}=(-3.2+/- 1.3)× {10}-5 day-1. This value is consistent with that of the transit data at a lower significance and provides the first evidence of spin-orbit precession based solely on the temporal variation of the secondary eclipse.
- Publication:
-
The Astronomical Journal
- Pub Date:
- January 2018
- DOI:
- 10.3847/1538-3881/aa991f
- arXiv:
- arXiv:1711.02681
- Bibcode:
- 2018AJ....155...13H
- Keywords:
-
- planets and satellites: individual: Kepler-13;
- KOI-13;
- stars: rotation;
- techniques: photometric;
- Astrophysics - Earth and Planetary Astrophysics
- E-Print:
- Accepted to AJ. 8 pages, 7 figures