Strong constraints on magnetized white dwarfs surpassing the Chandrasekhar mass limit
arXiv:1306.1625 · doi:10.1103/PhysRevD.89.103017
Abstract
We show that recently proposed white dwarf models with masses well in excess of the Chandrasekhar limit, based on modifying the equation of state by a super-strong magnetic field in the centre, are very far from equilibrium because of the neglect of Lorentz forces. An upper bound on the central magnetic fields, from a spherically averaged hydrostatic equation, is much smaller than the values assumed. Robust estimates of the Lorentz forces are also made without assuming spherical averaging. These again bear out the results obtained from a spherically averaged model. In our assessment, these estimates rule out the possibility that magnetic tension could change the situation in favor of larger magnetic fields. We conclude that such super-Chandrasekhar models are unphysical and exploration of their astrophysical consequences is premature. Erratum : We correct certain numerical estimates made in our paper. This correction however does not alter the conclusion that when Lorentz forces are taken into account the super-massive white dwarf models, obtained simply by modifying the equation of state in presence of a super-strong magnetic field in the centre, fail to be in equilibrium.
5 pages, 4 figures, uses REVTeX, final version, accepted in PRD; ERRATUM added
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- Small Anisotropy in Stellar Objects in Modified Theories of Gravity
- Relativistic Feynman-Metropolis-Teller Equation of State for White Dwarfs in presence of Magnetic Field
- The Enigma of GLEAM-X~J162759.5-523504.3
- Comments on "Strongly magnetized cold degenerate electron gas: Mass-radius relation of the magnetized white dwarf"
- Electron Captures and Stability of White Dwarfs
- Gravitational waves from r-mode instability of massive young sub- and super-Chandrasekhar white dwarfs