Rotation rate of the solar core as a key constraint to magnetic angular momentum transport in stellar interiors
arXiv:1911.06343 · doi:10.1051/0004-6361/201935509
Abstract
Context: The internal rotation of the Sun constitutes a fundamental constraint when modelling angular momentum transport in stellar interiors. In addition to the more external regions of the solar radiative zone probed by pressure modes, measurements of rotational splittings of gravity modes would offer an invaluable constraint on the rotation of the solar core. Aims: We study the constraints that a measurement of the core rotation rate of the Sun could bring on magnetic angular momentum transport in stellar radiative zones. Results: We first show that models computed with angular momentum transport by magnetic instabilities and a recent prescription for the braking of the stellar surface by magnetized winds can reproduce the observations of surface velocities of stars in open clusters. These solar models predict both a flat rotation profile in the external part of the solar radiative zone probed by pressure modes and an increase in the rotation rate in the solar core, where the stabilizing effect of chemical gradients plays a key role. A rapid rotation of the core of the Sun, as suggested by reported detections of gravity modes, is thus found to be compatible with angular momentum transport by magnetic instabilities. Moreover, we show that the efficiency of magnetic angular momentum transport in regions of strong chemical gradients can be calibrated by the solar core rotation rate independently from the unknown rotational history of the Sun. In particular, we find that a recent revised prescription for the transport of angular momentum by the Tayler instability can be easily distinguished from the original Tayler-Spruit dynamo, with a faster rotating solar core supporting the original prescription.
5 pages, 3 figures, published in A&A
References in corpus (12)
- Slowing the Spins of Stellar Cores
- The Mass-Dependence of Angular Momentum Evolution in Sun-Like Stars
- On magnetic instabilities and dynamo action in stellar radiation zones
- Improved angular momentum evolution model for solar-like stars II. Exploring the mass dependence
- Magnetic confinement of the solar tachocline
- Asymptotic g modes: Evidence for a rapid rotation of the solar core
- Magnetic confinement of the solar tachocline: II. Coupling to a convection zone
- Stochastic excitation of nonradial modes II. Are solar asymptotic gravity modes detectable?
- Constraining the efficiency of angular momentum transport with asteroseismology of red giants: the effect of stellar mass
- Can plume-induced internal gravity waves regulate the core rotation of subgiant stars?
- Asteroseismology of evolved stars to constrain the internal transport of angular momentum. I. Efficiency of transport during the subgiant phase
- Searching for g modes: Part II. Unconfirmed g-mode detection in the power spectrum of the time series of round-trip travel time
Cited by in corpus (37)
- Asteroseismology of evolved stars to constrain the internal transport of angular momentum II. Test of a revised prescription for transport by the Tayler instability
- Lithium depletion and angular momentum transport in solar-type stars
- Rotation in stellar interiors: General formulation and an asteroseismic-calibrated transport by the Tayler instability
- Asteroseismology of evolved stars to constrain the internal transport of angular momentum. III. Using the rotation rates of intermediate-mass stars to test the Fuller-formalism
- The influence of the environment on the spin evolution of low-mass stars. I. External photoevaporation of circumstellar disks
- Lithium depletion and angular momentum transport in F-type and G-type stars in Galactic open clusters
- The magneto-rotational instability in massive stars
- Magnetic signatures on mixed-mode frequencies. II. Period spacings as a probe of the internal magnetism of red giants
- Asteroseismology of evolved stars to constrain the internal transport of angular momentum. IV. Internal rotation of Kepler 56 from an MCMC analysis of the rotational splittings
- 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
- Numerical simulations of the Tayler-Spruit dynamo in proto-magnetars
- Asteroseismology of evolved stars to constrain the internal transport of angular momentum. V. Efficiency of the transport on the red giant branch and in the red clump
- Kepler-93: a testbed for detailed seismic modelling and orbital evolution of super-earths around solar-like stars
- Backtracing the internal rotation history of the Cep star HD 129929
- The spins of stripped B stars support magnetic internal angular momentum transport
- The key impact of the host star's rotational history on the evolution of TOI-849b
- A unified model for the evolution of cataclysmic variables
- Helioseismic inference of the solar radiative opacity
- Coralie radial-velocity search for companions around evolved stars (CASCADES) III. A new Jupiter host-star: in-depth analysis of HD 29399 using TESS data
- ATREIDES I. Embarking on a trek across the exo-Neptunian landscape with the TOI-421 system
- Sub-stellar engulfment by a main sequence star: where is the lithium?
- Is planetary inward migration responsible for GJ 504's fast rotation and bright X-ray luminosity? New constraints from eROSITA
- Differential Rotation in Convective Envelopes: Constraints from Eclipsing Binaries
- Towards a holistic magnetic braking model from the evolution of cataclysmic variables to stellar spin-down -- I: the spin-down of fully convective M-dwarfs
- Angular momentum and lithium transport from main sequence to sub-giant and red giant low-mass stars
- Coralie radial velocity search for companions around evolved stars (CASCADES) II. Seismic masses for three red giants orbited by long-period massive planets
- The stellar activity-rotation-age relationship under the lens of asteroseismology
- Solar Models and Astrophysical S-factors Constrained by Helioseismic Results and Updated Neutrino Fluxes
- Constraining differential rotation in gamma Doradus stars from inertial dips properties
- Angular momentum distributions for observed and modeled exoplanetary systems
- Exploring the probing power of gamma-Dor's inertial dip for core magnetism: case of a toroidal field
- Towards a holistic magnetic braking model -- II: explaining several long-term internal- and surface-spin properties of solar-like stars and the Sun
- Using Lithium and Beryllium to Study Structure and Evolution of Rotating Stars
- Core-envelope coupling of gravito-inertial waves in pre-main-sequence solar-type stars
- Impact of the Tayler magnetic instability on the surface abundance of boron in massive stars
- Confirmation of the hot super-Neptune TOI-672 b with NIRPS and HARPS and Insights into the Neptunian desert around M dwarfs
- Co-existence of Internal Gravity Waves and Tayler-Spruit Magnetic Fields in the Radiative Core of Low-mass Stars