Magnetic fields of Ap stars as a result of an instability
arXiv:1011.2684 · doi:10.1002/asna.201011480
Abstract
Ap star magnetism is often attributed to fossil magnetic fields which have not changed much since the pre-main-sequence epoch of the stars. Stable magnetic field configurations are known which could persist probably for the entire main-sequence life of the star, but they may not show the complexity and diversity exhibited by the Ap stars observed. We suggest that the Ap star magnetism is not a result of stable configurations, but is the result of an instability based on strong toroidal magnetic fields buried in the stars. The highly nonaxisymmetric remainders of the instability are reminiscent of the diversity of fields seen on Ap stars. The strengths of these remnant magnetic fields is actually between a few per cent up to considerable fractions of the internal toroidal field; this means field strengths of the order of kGauss being compatible with what is observed. The magnetic fields emerge at the surface rather quickly; rough estimates deliver time-scales of the order of a few years. Since rotation stabilizes the instability, normal A stars may still host considerable, invisible toroidal magnetic fields.
7 pages, 8 figures, submitted to Astron. Nachr., color figures at http://www.aip.de/People/rarlt/ap
References in corpus (7)
- Magnetic fields of non-degenerate stars
- On non-axisymmetric magnetic equilibria in stars
- On the Stability of Non Force-Free Magnetic Equilibria in Stars
- Searching for a link between the magnetic nature and other observed properties of Herbig Ae/Be stars and stars with debris disks
- Stability of Toroidal Magnetic Fields in Rotating Stellar Radiation Zones
- The kink-type instability of toroidal stellar magnetic fields with thermal diffusion
- Solar-like oscillations and magnetic activity of the slow rotator EK Eri
Cited by in corpus (4)
- 3D evolution of magnetic fields in a differentially rotating stellar radiative zone
- Magnetic fields driven by tidal mixing in radiative stars
- Longitudinal drift of Tayler instability eigenmodes as a possible explanation for super-slowly rotating Ap stars
- Gravity's role in taming the Tayler instability in red giant cores