Further Evidence of Modified Spin-down in Sun-like Stars: Pileups in the Temperature-Period Distribution
Abstract
We combine stellar surface rotation periods determined from NASA's Kepler mission with spectroscopic temperatures to demonstrate the existence of pileups at the long-period and short-period edges of the temperature-period distribution for main-sequence stars with temperatures exceeding ~5500 K. The long-period pileup is well described by a curve of constant Rossby number, with a critical value of Rocrit ≲ Ro⊙. The long-period pileup was predicted by van Saders et al. as a consequence of weakened magnetic braking, in which wind-driven angular momentum losses cease once stars reach a critical Rossby number. Stars in the long-period pileup are found to have a wide range of ages (~2-6 Gyr), meaning that, along the pileup, rotation period is strongly predictive of a star's surface temperature but weakly predictive of its age. The short-period pileup, which is also well described by a curve of constant Rossby number, is not a prediction of the weakened magnetic braking hypothesis but may instead be related to a phase of slowed surface spin-down due to core-envelope coupling. The same mechanism was proposed by Curtis et al. to explain the overlapping rotation sequences of low-mass members of differently aged open clusters. The relative dearth of stars with intermediate rotation periods between the short- and long-period pileups is also well described by a curve of constant Rossby number, which aligns with the period gap initially discovered by McQuillan et al. in M-type stars. These observations provide further support for the hypothesis that the period gap is due to stellar astrophysics, rather than a nonuniform star formation history in the Kepler field.
- Publication:
-
The Astrophysical Journal
- Pub Date:
- July 2022
- DOI:
- arXiv:
- arXiv:2203.08920
- Bibcode:
- 2022ApJ...933..114D
- Keywords:
-
- Stellar rotation;
- Solar analogs;
- Stellar evolution;
- Stellar magnetic fields;
- Stellar winds;
- 1629;
- 1941;
- 1599;
- 1610;
- 1636;
- Astrophysics - Solar and Stellar Astrophysics;
- Astrophysics - Earth and Planetary Astrophysics
- E-Print:
- Accepted to ApJ. 29 pages, 21 figures. The data and code required to reproduce this work is available at http://github.com/trevordavid/rossby-ridge