A study of the electrostatic properties of the interiors of low-mass stars: Possible implications for the observed rotational properties
arXiv:2410.10003 · doi:10.1051/0004-6361/202450670
Abstract
In the partially ionized material of stellar interiors, the strongest forces acting on electrons and ions are the Coulomb interactions between charges. The dynamics of the plasma as a whole depend on the magnitudes of the average electrostatic interactions and the average kinetic energies of the particles that constitute the stellar material. An important question is how these interactions of real gases are related to the observable stellar properties. Specifically, the relationships between rotation, magnetic activity, and the thermodynamic properties of stellar interiors are still not well understood. In this study, we investigate the electrostatic effects within the interiors of low-mass main sequence (MS) stars. Specifically, we introduce a global quantity, a global plasma parameter, which allows us to compare the importance of electrostatic interactions across a range of low-mass theoretical models () with varying ages and metallicities. We then correlate the electrostatic properties of the theoretical models with the observable rotational trends on the MS. We use the open-source 1D stellar evolution code MESA to compute a grid of main-sequence stellar models. Our models span the space of a set of 66 Kepler main-sequence stars. We identify a correlation between the prominence of electrostatic effects in stellar interiors and stellar rotation rates. The variations in the magnitude of electrostatic interactions with age and metallicity further suggest that understanding the underlying physics of the collective effects of plasma can clarify key observational trends related to the rotation of low-mass stars on the MS. These results may also advance our understanding of the physics behind the observed weakened magnetic braking in stars.
13 pages, 9 figures, 3 tables
References in corpus (24)
- Modules for Experiments in Stellar Astrophysics (MESA)
- Modules for Experiments in Stellar Astrophysics (MESA): Pulsating Variable Stars, Rotation, Convective Boundaries, and Energy Conservation
- Improved Age Estimation for Solar-Type Dwarfs Using Activity-Rotation Diagnostics
- Modules for Experiments in Stellar Astrophysics (MESA): Time-Dependent Convection, Energy Conservation, Automatic Differentiation, and Infrastructure
- Stellar magnetism: empirical trends with age and rotation
- Helioseismology and Solar Abundances
- Slowing the Spins of Stellar Cores
- On magnetic instabilities and dynamo action in stellar radiation zones
- Coulomb tunneling for fusion reactions in dense matter: Path integral Monte Carlo versus mean field
- Surface rotation and photometric activity for Kepler targets. II. G and F main-sequence stars, and cool subgiant stars
- Skye: A Differentiable Equation of State
- Weakened magnetic braking supported by asteroseismic rotation rates of Kepler dwarfs
- Rotation periods and ages of solar analogs and solar twins revealed by the Kepler Mission
- Equation of state of classical Coulomb plasma mixtures
- Photometric variability as a proxy for magnetic activity and its dependence on metallicity
- Rotation Distributions around the Kraft Break with TESS and Kepler: The Influences of Age, Metallicity, and Binarity
- Atomic diffusion and turbulent mixing in solar-like stars: Impact on the fundamental properties of FG-type stars
- Oscillator models of the solar cycle: Towards the development of inversion methods
- Magnetic activity evolution of solar-like stars: I. S_ph-Age relation derived from Kepler observations
- Temporal variation of the photometric magnetic activity for the Sun and Kepler solar-like stars
- Transition from multipolar to dipolar dynamos in stratified systems
- Rotation of Kepler field dwarfs and sub giants: Spectroscopic from APOGEE
- The partial ionisation zone of heavy elements in F-stars: a study on how it correlates with rotation
- Asteroseismology of low-mass stars: the balance between partial ionisation and Coulomb interactions