The open flux evolution of a solar-mass star on the main sequence
arXiv:1711.03904 · doi:10.1093/mnras/stx2599
Abstract
Magnetic activity is known to be correlated to the rotation period for moderately active main sequence solar-like stars. In turn, the stellar rotation period evolves as a result of magnetised stellar winds that carry away angular momentum. Understanding the interplay between magnetic activity and stellar rotation is therefore a central task for stellar astrophysics. Angular momentum evolution models typically employ spin-down torques that are formulated in terms of the surface magnetic field strength. However, these formulations fail to account for the magnetic field geometry, unlike those that are expressed in terms of the open flux, i.e. the magnetic flux along which stellar winds flow. In this work, we model the angular momentum evolution of main sequence solar-mass stars using a torque law formulated in terms of the open flux. This is done using a potential field source surface model in conjunction with the Zeeman-Doppler magnetograms of a sample of roughly solar-mass stars. We explore how the open flux of these stars varies with stellar rotation and choice of source surface radii. We also explore the effect of field geometry by using two methods of determining the open flux. The first method only accounts for the dipole component while the second accounts for the full set of spherical harmonics available in the Zeeman-Doppler magnetogram. We find only a small difference between the two methods, demonstrating that the open flux, and indeed the spin-down, of main sequence solar-mass stars is likely dominated by the dipolar component of the magnetic field.
12 pages, 7 figures, accepted to MNRAS
References in corpus (25)
- New evolutionary models for pre-main sequence and main sequence low-mass stars down to the hydrogen-burning limit
- Improved Age Estimation for Solar-Type Dwarfs Using Activity-Rotation Diagnostics
- The surprising magnetic topology of tauSco: fossil remnant or dynamo output?
- Large-scale magnetic topologies of late M dwarfs
- Stellar magnetism: empirical trends with age and rotation
- The Mass-Dependence of Angular Momentum Evolution in Sun-Like Stars
- A spin-down clock for cool stars from observations of a 2.5-billion-year-old cluster
- Toroidal versus poloidal magnetic fields in Sun-like stars: a rotation threshold
- The Extreme Ultraviolet and X-Ray Sun in Time: High-Energy Evolutionary Tracks of a Solar-Like Star
- The habitability of Proxima Centauri b. I. Irradiation, rotation and volatile inventory from formation to the present
- The effect of magnetic topology on thermally-driven winds: towards a general formulation of the braking law
- Stellar Winds on the Main-Sequence II: the Evolution of Rotation and Winds
- Improved angular momentum evolution model for solar-like stars II. Exploring the mass dependence
- The effects of stellar winds on the magnetospheres and potential habitability of exoplanets
- The connection between stellar activity cycles and magnetic field topology
- Deep MMT Transit Survey of the Open Cluster M37 III: Stellar Rotation at 550 Myr
- The Monitor project: Rotation periods of low-mass stars in M50
- The Metastable Dynamo Model of Stellar Rotational Evolution
- Variable magnetic field geometry of the young sun HN Peg (HD 206860)
- Age dependence of wind properties for solar type stars: a 3d study
- Impacts of stellar evolution and dynamics on the habitable zone: The role of rotation and magnetic activity
- Magnetic braking of Sun-like and low-mass stars: Dependence on coronal temperature
- Rotationally Modulated X-ray Emission from T Tauri Stars
- Estimating stellar wind parameters from low-resolution magnetograms
- Coronal Structure of Low-Mass Stars
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- The evolution of the solar wind
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- Alfvén-wave driven magnetic rotator winds from low-mass stars I: rotation dependences of magnetic braking and mass-loss rate
- Torus-Stable Zone Above Starspots
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- Direct Detection of Solar Angular Momentum Loss with the Wind Spacecraft
- The winds of young Solar-type stars in the Hyades
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- Effect of Differential Rotation on Magnetic Braking of Low-Mass and Solar-Like Stars: A Proof-of-Concept Study
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