Magnetic white dwarfs with debris discs
arXiv:1302.6468 · doi:10.1093/mnras/stt374
Abstract
It has long been accepted that a possible mechanism for explaining the existence of magnetic white dwarfs is the merger of a binary white dwarf system, as there are viable mechanisms for producing sustainable magnetic fields within the merger product. However, the lack of rapid rotators in the magnetic white dwarf population has been always considered a problematic issue of this scenario. Smoothed Particle Hydrodynamics simulations show that in mergers in which the two white dwarfs have different masses a disc around the central compact object is formed. If the central object is magnetized it can interact with the disc through its magnetosphere. The torque applied by the disc changes the spin of the star, whereas the transferred angular momentum from the star to the disc determines the properties of the disc. In this work we build a model for the disc evolution under the effect of magnetic accretion, and for the angular momentum evolution of the star, which can be compared with the observations. Our model predicts that the magnetospheric interaction of magnetic white dwarfs with their discs results in a significant spin down, and we show that for magnetic white dwarfs with relatively strong fields (larger than 10 MG) the observed rotation periods of the magnetic white dwarf population can be reproduced. We also investigate whether turbulence can be sustained during the late phases of the evolution of the system. When a critical temperature below which turbulence is not sustained is introduced into the model, the periods of the three fast rotating, strongly magnetic, massive white dwarfs in the solar neighborhood are recovered.
13 pages, 6 figures, 2 tables. Accepted for publication in MNRAS
References in corpus (16)
- White Dwarf Mass Distribution in the SDSS
- A Debris Disk Around An Isolated Young Neutron Star
- Binary Star Origin of High Field Magnetic White Dwarfs
- Accretion-Powered Stellar Winds II: Numerical Solutions for Stellar Wind Torques
- Spectropolarimetric Survey of Hydrogen-rich White Dwarf Stars
- White dwarf spins from low mass stellar evolution models
- SDSSJ104341.53+085558.2: A second white dwarf with a gaseous debris disc
- The Viscous Evolution of White Dwarf Merger Remnants
- Accretion to Stars with Non-dipole Magnetic Fields
- Three-dimensional Simulations of Accretion to Stars with Complex Magnetic Fields
- The fraction of DA white dwarfs with kilo-Gauss magnetic fields
- The Internal Shear of Type Ia Supernova Progenitors During Accretion and Simmering
- Turbulent Mixing in the Surface Layers of Accreting Neutron Stars
- Zeeman tomography of magnetic white dwarfs, I. Reconstruction of the field geometry from synthetic spectra
- On the empirical evidence for the existence of ultra-massive white dwarfs
- Evidence for a merger of binary white dwarfs: the case of GD 362
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- Can magnetic fields suppress convection in the atmosphere of cool white dwarfs? A case study on WD2105-820
- Magnetically powered outbursts from white dwarf mergers
- General Relativistic White Dwarfs and Their Astrophysical Implications
- The Spin Evolution of Fast-Rotating, Magnetized Super-Chandrasekhar White Dwarfs in the Aftermath of White Dwarf Mergers
- A magnetic white-dwarf accretion model for the anomalous X-ray pulsar 4U 0142+61
- Time evolution of rotating and magnetized white dwarf stars
- Magnetic White Dwarfs: Observations, Theory, and Future Prospects
- On the optical transients from double white-dwarf mergers
- Unifying neutron star sub-populations in the supernova fallback accretion model
- Comparing the Space Densities of Millisecond-Spin Magnetars and Fast X-Ray Transients