On the relation between active-region lifetimes and the autocorrelation function of light curves
arXiv:2108.08616 · doi:10.1093/mnras/stab2402
Abstract
Rotational modulation of stellar light curves due to dark spots encloses information on spot properties and, thus, on magnetic activity. In particular, the decay of the autocorrelation function (ACF) of light curves is presumed to be linked to spot/active-region lifetimes, given that some coherence of the signal is expected throughout their lifetime. In the literature, an exponential decay has been adopted to describe the ACF. Here, we investigate the relation between the ACF and the active-region lifetimes. For this purpose, we produce artificial light curves of rotating spotted stars with different observation, stellar, and spot properties. We find that a linear decay and respective timescale better represent the ACF than the exponential decay. We therefore adopt a linear decay. The spot/active-region timescale inferred from the ACF is strongly restricted by the observation length of the light curves. For 1-year light curves our results are consistent with no correlation between the inferred and the input timescales. The ACF decay is also significantly affected by differential rotation and spot evolution: strong differential rotation and fast spot evolution contribute to a more severe underestimation of the active-region lifetimes. Nevertheless, in both circumstances the observed timescale is still correlated with the input lifetimes. Therefore, our analysis suggests that the ACF decay can be used to obtain a lower limit of the active-region lifetimes for relatively long-term observations. However, strategies to avoid or flag targets with fast active-region evolution or displaying stable beating patterns associated with differential rotation should be employed.
12 pages, 19 Figures, Accepted for publication in MNRAS
References in corpus (8)
- Array Programming with NumPy
- The K2 Mission: Characterization and Early results
- A Kepler Study of Starspot Lifetimes with Respect to Light Curve Amplitude and Spectral Type
- Surface rotation and photometric activity for Kepler targets. II. G and F main-sequence stars, and cool subgiant stars
- The influence of metallicity on stellar differential rotation and magnetic activity
- Increasing Lifetime of Recurrent Sunspot Groups within the Greenwich Photoheliographic Results
- Starspot signature on the light curve: Learning about the latitudinal distribution of spots
- Stellar activity and rotation of the planet host Kepler-17 from long-term space-borne photometry