Surface rotation of Kepler red giant stars
arXiv:1707.05989 · doi:10.1051/0004-6361/201629884
Abstract
Kepler allows the measurement of starspot variability in a large sample of field red giants for the first time. With a new method that combines autocorrelation and wavelet decomposition, we measure 361 rotation periods from the full set of 17,377 oscillating red giants in our sample. This represents 2.08% of the stars, consistent with the fraction of spectroscopically detected rapidly rotating giants in the field. The remaining stars do not show enough variability to allow us to measure a reliable surface rotation period. Because the stars with detected rotation periods have measured oscillations, we can infer their global properties, e.g. mass and radius, and quantitatively evaluate the predictions of standard stellar evolution models as a function of mass. Consistent with results for cluster giants when we consider only the 4881 intermediate-mass stars, M>2.0 M from our full red giant sample, we do not find the enhanced rates of rapid rotation expected from angular momentum conservation. We therefore suggest that either enhanced angular momentum loss or radial differential rotation must be occurring in these stars. Finally, when we examine the 575 low-mass (M<1.1 M) red clump stars in our sample, which were expected to exhibit slow (non-detectable) rotation, 15% of them actually have detectable rotation. This suggests a high rate of interactions and stellar mergers on the red giant branch.
Paper accepted for publication in A&A. 11 pages with 7 figures
References in corpus (13)
- Improved Age Estimation for Solar-Type Dwarfs Using Activity-Rotation Diagnostics
- Measuring the rotation period distribution of field M-dwarfs with Kepler
- Testing the recovery of stellar rotation signals from Kepler light curves using a blind hare-and-hounds exercise
- Impact on asteroseismic analyses of regular gaps in Kepler data
- Gap interpolation by inpainting methods : Application to Ground and Space-based Asteroseismic data
- Solar-like oscillations with low amplitude in the CoRoT target HD 181906
- Precise radial velocities of giant stars. IV. A correlation between surface gravity and radial velocity variation and a statistical investigation of companion properties
- The Role of Planet Accretion in Creating the Next Generation of Red Giant Rapid Rotators
- Star-planet interactions: II. Is planet engulfment the origin of fast rotating red giants?
- Dipole modes with depressed amplitudes in red giants are mixed modes
- Rapid Rotation of Low-Mass Red Giants Using APOKASC: A Measure of Interaction Rates on the Post-main-sequence
- The K2 M67 Study: An Evolved Blue Straggler in M67 from K2 Mission Asteroseismology
- Rotational periods and evolutionary models for subgiant stars observed by CoRoT
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- Stellar masses from granulation and oscillations of 23 bright red giants observed by BRITE - Constellation
- Differential Rotation in Convective Envelopes: Constraints from Eclipsing Binaries