Transition from multipolar to dipolar dynamos in stratified systems
arXiv:2209.11652 · doi:10.1093/mnras/stac2769
Abstract
Observations of surface magnetic fields of cool stars reveal a large diversity of configurations. Although there is now a consensus that these fields are generated through dynamo processes occurring within the convective zone, the physical mechanism driving such a variety of field topologies is still debated. This paper discusses the possible origins of dipole and multipole-dominated morphologies using three-dimensional numerical simulations of stratified systems where the magnetic feedback on the fluid motion is significant. Our main result is that dipolar solutions are found at Rossby numbers up to 0.4 in strongly stratified simulations, where previous works suggested that only multipolar fields should exist. We argue that these simulations are reminiscent of the outlier stars observed at Rossby numbers larger than 0.1, whose large-scale magnetic field is dominated by their axisymmetric poloidal component. As suggested in previous Boussinesq calculations, the relative importance of inertial over Lorentz forces is again controlling the dipolar to multipolar transition. Alternatively, we find that the ratio of kinetic to magnetic energies can equally well capture the transition in the field morphology. We test the ability of this new proxy to predict the magnetic morphology of a few M-dwarf stars whose internal structure matches that of our simulations and for which homogeneous magnetic field characterization is available. Finally, the magnitude of the differential rotation obtained in our simulations is compared to actual measurements reported in the literature for M-dwarfs. In our simulations, we find a clear relationship between anti-solar differential rotation and the emergence of dipolar fields.
15 pages, 15 figures, accepted for publication in MNRAS
References in corpus (20)
- 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
- Simulations of dynamo action in fully convective stars
- Large-scale magnetic topologies of early M dwarfs
- Toroidal versus poloidal magnetic fields in Sun-like stars: a rotation threshold
- Magnetic field generation in fully convective rotating spheres
- The large-scale axisymmetric magnetic topology of avery-low-mass fully-convective star
- Mean-field concept and direct numerical simulations of rotating magnetoconvection and the geodynamo
- Magnetic Cycles in a Convective Dynamo Simulation of a Young Solar-type Star
- The evolution of surface magnetic fields in young solar-type stars II: The early main sequence (250-650 Myr)
- Approaching a realistic force balance in geodynamo simulations
- Estimating magnetic filling factors from Zeeman-Doppler magnetograms
- Force balance in numerical geodynamo simulations: a systematic study
- Transition between viscous dipolar and inertial multipolar dynamos
- Origin and evolution of magnetic fields in PMS stars : influence of rotation and structural changes
- Relating force balances and flow length scales in geodynamo simulations
- Non-gray rotating stellar models and the evolutionary history of the Orion Nebular Cluster
- Magnetic effects on fields morphologies and reversals in geodynamo simulations
- Magnetic field generation in PMS stars with and without radiative core