Origin and evolution of magnetic fields in PMS stars : influence of rotation and structural changes
arXiv:1709.04667 · doi:10.3847/1538-4357/aa7b33
Abstract
During stellar evolution, especially in the PMS, stellar structure and rotation evolve significantly causing major changes in the dynamics and global flows of the star. We wish to assess the consequences of these changes on stellar dynamo, internal magnetic field topology and activity level. To do so, we have performed a series of 3D HD and MHD simulations with the ASH code. We choose five different models characterized by the radius of their radiative zone following an evolutionary track computed by a 1D stellar evolution code. These models characterized stellar evolution from 1 Myr to 50 Myr. By introducing a seed magnetic field in the fully convective model and spreading its evolved state through all four remaining cases, we observe systematic variations in the dynamical properties and magnetic field amplitude and topology of the models. The five MHD simulations develop strong dynamo field that can reach equipartition state between the kinetic and magnetic energy and even super- equipartition levels in the faster rotating cases. We find that the magnetic field amplitude increases as it evolves toward the ZAMS. Moreover the magnetic field topology becomes more complex, with a decreasing axisymmetric component and a non-axisymmetric one becoming predominant. The dipolar components decrease as the rotation rate and the size of the radiative core increase. The magnetic fields possess a mixed poloidal-toroidal topology with no obvious dominant component. Moreover the relaxation of the vestige dynamo magnetic field within the radiative core is found to satisfy MHD stability criteria. Hence it does not experience a global reconfiguration but slowly relaxes by retaining its mixed stable poloidal-toroidal topology.
26 pages, 23 figures, 10 tables
References in corpus (26)
- The surprising magnetic topology of tauSco: fossil remnant or dynamo output?
- Global-Scale Turbulent Convection and Magnetic Dynamo Action in the Solar Envelope
- Large-scale magnetic topologies of late M dwarfs
- Simulations of dynamo action in fully convective stars
- Weak magnetic fields in Ap/Bp stars: Evidence for a dipole field lower limit and a tentative interpretation of the magnetic dichotomy
- The Mass-Dependence of Angular Momentum Evolution in Sun-Like Stars
- Toroidal versus poloidal magnetic fields in Sun-like stars: a rotation threshold
- Magnetic field generation in fully convective rotating spheres
- The effect of magnetic topology on thermally-driven winds: towards a general formulation of the braking law
- Improved angular momentum evolution model for solar-like stars II. Exploring the mass dependence
- Magnetic Cycles in a Convective Dynamo Simulation of a Young Solar-type Star
- Generalized investigation of the rotation-activity relation: Favouring rotation period instead of Rossby number
- Meridional Circulation in Solar and Stellar Convection Zones
- On differential rotation and overshooting in solar-like stars
- Rapidly Rotating Suns and Active Nests of Convection
- On non-axisymmetric magnetic equilibria in stars
- On the role of meridional flows in flux transport dynamo models
- The variability of Sun-like stars: reproducing observed photometric trends
- Reconciling solar and stellar magnetic cycles with nonlinear dynamo simulations
- The connection between stellar activity cycles and magnetic field topology
- The Metastable Dynamo Model of Stellar Rotational Evolution
- The stability of poloidal magnetic fields in rotating stars
- Theoretical seismology in 3D : nonlinear simulations of internal gravity waves in solar-like stars
- Simulations of turbulent convection in rotating young solar-like stars: Differential rotation and meridional circulation
- Age dependence of wind properties for solar type stars: a 3d study
- Chandra X-Ray Observations of Young Clusters. III. NGC 2264 and the Orion Flanking Fields
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- SPIRou: nIR velocimetry & spectropolarimetry at the CFHT
- Powering Stellar Magnetism: Energy Transfers in Cyclic Dynamos of Sun-like Stars
- Magnetic signatures on mixed-mode frequencies. I. An axisymmetric fossil field inside the core of red giants
- Magnetic and tidal migration of close-in planets. Influence of secular evolution on their population
- Asteroseismic Signatures of Core Magnetism and Rotation in Hundreds of Low-Luminosity Red Giants
- Asymmetries of frequency splittings of dipolar mixed modes: a window on the topology of deep magnetic fields
- A model of rotating convection in stellar and planetary interiors: II -- gravito-inertial wave generation
- Magnetic signatures on mixed-mode frequencies. II. Period spacings as a probe of the internal magnetism of red giants
- Detecting deep axisymmetric toroidal magnetic fields in stars. The traditional approximation of rotation for differentially rotating deep spherical shells with a general azimuthal magnetic field
- Transition from multipolar to dipolar dynamos in stratified systems
- Does magnetic field impact tidal dynamics inside the convective zone of low-mass stars along their evolution?
- Hunting for anti-solar differentially rotating stars using the Rossby number -- An application to the Kepler field
- The Surface Magnetic Activity of the Weak-Line T Tauri Stars TWA 7 and TWA 25
- On Earth's habitability over the Sun's main-sequence history: joint influence of space weather and Earth's magnetic field evolution
- Impact of anti-solar differential rotation in mean-field solar-type dynamos -- Exploring possible magnetic cycles in slowly rotating stars
- Mode Mixing and Rotational Splittings: I. Near-Degeneracy Effects Revisited
- The influence of metallicity on a combined stellar and disk evolution
- Oscillations of red giant stars with magnetic damping in the core. I. Dissipation of mode energy in dipole-like magnetic fields
- Nonlinear internal waves breaking in stellar radiation zones. Parametrisation for the transport of angular momentum: bridging geophysical to stellar fluid dynamics
- Shaping core dynamos in A-type stars: The role of dipolar fossil fields
- Exploring the probing power of gamma-Dor's inertial dip for core magnetism: case of a toroidal field