Magnetically Confined Mountains on Accreting White Dwarfs
astro-ph.SR, astro-ph.HE
Submitted: 2026-09-05
Updated: 2026-09-05
Comments: 16 pages, 8 figures
License: http://creativecommons.org/licenses/by/4.0/
The gist: The hydromagnetic structure of magnetically confined mountains on accreting white dwarfs is computed, alongside the effects of accretion on the reduction of the star's magnetic field.
Abstract
The hydromagnetic structure of magnetically confined mountains on accreting white dwarfs is computed, alongside the effects of accretion on the reduction of the star's magnetic field. The equilibrium structure of the mountain is obtained by numerically solving the Grad-Shafranov equation with a self-consistent scheme that enforces magnetic flux freezing. For characteristic system parameters, it is shown that magnetic field lines are significantly deformed and dragged equatorwards by mountains with masses about10-3M that have a characteristic height of about10 5, cm. A mathematical relation is obtained for the maximum mass that a white dwarf can confine magnetically given the star's magnetic field and temperature. It is found that the accretion buries the star's magnetic field by reducing it by up to 10% of its pre-accretion value. The star's magnetic field remains dominantly dipolar, but with added multipolar components.
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