Five years of BRITE-Constellation photometry of the luminous blue variable P Cygni: properties of the stochastic low-frequency variability
arXiv:2110.12056 · doi:10.1093/mnras/stab3112
Abstract
Luminous Blue Variables (LBVs) are massive stars that are likely to be a transitionary phase between O stars and hydrogen-free classical Wolf-Rayet stars. The variability of these stars has been an area of study for both professional and amateur astronomers for more than a century. In this paper, we present five years of precision photometry of the classical LBV P Cygni taken with the BRITE-Constellation nanosatellites. We have analyzed these data with Fourier analysis to search for periodicities that could elucidate the drivers of variability for these stars. These data show some long-timescale variability over the course of all six calendar years of observations, but the frequencies needed to reproduce the individual light curves are not consistent from one year to the next. These results likely show that there is no periodic phenomenon present for P Cygni, meaning that the variability is largely stochastic. We interpret the data as being caused by internal gravity waves similar to those seen in other massive stars, with P Cygni exhibiting a larger amplitude and lower characteristic frequency than the main-sequence or blue supergiant stars previously studied. These results show evidence that LBVs may be an extrapolation of the blue supergiants, which have previously been shown to be an extension of main-sequence stars in the context of the stochastic low-frequency photometric variability.
10 pages, accepted for publication in MNRAS
References in corpus (16)
- Binary interaction dominates the evolution of massive stars
- Luminous Blue Variables are Antisocial: Their Isolation Implies that they are Kicked Mass Gainers in Binary Evolution
- Low-frequency gravity waves in blue supergiants revealed by high-precision space photometry
- A detection threshold in the amplitude spectra calculated from Kepler data obtained during K2 mission
- Three-Dimensional Simulations of Massive Stars: I. Wave Generation and Propagation
- Photometric detection of internal gravity waves in upper main-sequence stars. II. Combined TESS photometry and high-resolution spectroscopy
- The BRITE Constellation nanosatellite mission: Testing, commissioning and operations
- Fully compressible simulations of waves and core convection in main-sequence stars
- On the Origin of Stochastic, Low-Frequency Photometric Variability in Massive Stars
- The Most Massive Heartbeat: An In-depth Analysis of ι Orionis
- Low-frequency variability in massive stars: Core generation or surface phenomenon?
- Simulating the formation of Carinae's surrounding nebula through unstable triple evolution and stellar merger-induced eruption
- Wind-envelope interaction as the origin of the slow cyclic brightness variations of luminous blue variables
- Stochastic light variations in hot stars from wind instability: Finding photometric signatures and testing against the TESS data
- BRITE-Constellation reveals evidence for pulsations in the enigmatic binary Carinae
- 13 Years of P Cygni Spectropolarimetry: Investigating Mass-loss Through H, Periodicity, and Ellipticity
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- Approaches to lowering the cost of large space telescopes