Rotation period distribution of CoRoT and Kepler Sun-like stars
arXiv:1509.01523 · doi:10.1051/0004-6361/201526085
Abstract
We study the distribution of the photometric rotation period (Prot), which is a direct measurement of the surface rotation at active latitudes, for three subsamples of Sun-like stars: one from CoRoT data and two from Kepler data. We identify the main populations of these samples and interpret their main biases specifically for a comparison with the solar Prot. Prot and variability amplitude (A) measurements were obtained from public CoRoT and Kepler catalogs combined with physical parameters. Because these samples are subject to selection effects, we computed synthetic samples with simulated biases to compare with observations, particularly around the location of the Sun in the HR diagram. Theoretical grids and empirical relations were used to combine physical parameters with Prot and A. Biases were simulated by performing cutoffs on the physical and rotational parameters in the same way as in each observed sample. A crucial cutoff is related with the detectability of the rotational modulation, which strongly depends on A. The synthetic samples explain the observed Prot distributions of Sun-like stars as having two main populations: one of young objects (group I, with ages younger than ~1 Gyr) and another of MS and evolved stars (group II, with ages older than ~1 Gyr). The proportions of groups I and II in relation to the total number of stars range within 64-84% and 16-36%, respectively. Hence, young objects abound in the distributions, producing the effect of observing a high number of short periods around the location of the Sun in the HR diagram. Differences in the Prot distributions between the CoRoT and Kepler Sun-like samples may be associated with different Galactic populations. Overall, the synthetic distribution around the solar period agrees with observations, which suggests that the solar rotation is normal with respect to Sun-like stars within the accuracy of current data.
13 pages, 8 figures, A&A accepted
References in corpus (18)
- Improved Age Estimation for Solar-Type Dwarfs Using Activity-Rotation Diagnostics
- Rotation Periods of 34,030 Kepler Main-Sequence Stars: The Full Autocorrelation Sample
- Measuring the rotation period distribution of field M-dwarfs with Kepler
- Seismic constraints on the radial dependence of the internal rotation profiles of six Kepler subgiants and young red giants
- The Mass-Dependence of Angular Momentum Evolution in Sun-Like Stars
- Rotation and magnetism of Kepler pulsating solar-like stars. Towards asteroseismically calibrated age-rotation relations
- Automated supervised classification of variable stars I. Methodology
- Testing the recovery of stellar rotation signals from Kepler light curves using a blind hare-and-hounds exercise
- Populations of rotating stars III. SYCLIST, the new Geneva Population Synthesis code
- Astrophysical Ionizing Radiation and the Earth: A Brief Review and Census of Intermittent Intense Sources
- Magnetic Activity Cycles in the Exoplanet Host Star epsilon Eridani
- The circumstellar envelope of IRC+10216 from milli-arcsecond to arcmin scales
- The Solar-Stellar Connection
- HD 98618: A Star Closely Resembling our Sun
- Stellar characterization of CoRoT/Exoplanet fields with MATISSE
- A comprehensive comparison of the Sun to other stars: searching for self-selection effects
- New solar twins and the metallicity and temperature scales of the Geneva Copenhagen Survey
- The expected stellar populations in the Kepler and CoRoT fields
Cited by in corpus (9)
- Asteroseismology of solar-type stars
- Vertical Structure of the Transition Zone from Infalling Rotating Envelope to Disk in the Class 0 Protostar, IRAS04368+2557
- A semi-empirical model for magnetic braking of solar-type stars
- New Suns in the Cosmos II: Differential rotation in Kepler Sun-like stars
- Rotation signature of TESS B-type stars. A comprehensive analysis
- A wavelet analysis of photometric variability in Kepler white dwarf stars
- On the behaviour of spin-orbit connection of exoplanets
- Chronos --- Taking the pulse of our Galactic neighbourhood (ESA Voyage 2050 White Paper)
- Recovering Signals in CoRoT Mission (RSCoRoT): I. Short Period Variable Stars