We investigate the luminosity and cooling of highly magnetized white dwarfs with electrondegenerate cores and non-degenerate surface layers where cooling occurs by diffusion of photons. We find the temperature and density profiles in the surface layers or envelope of white dwarfs by solving the magnetostatic equilibrium and photon diffusion equations in a Newtonian framework. We also obtain the properties of white dwarfs at the core-envelope interface, when the core is assumed to be practically isothermal.With the increase in magnetic field, the interface temperature increases whereas the interface radius decreases. For a given age of the white dwarf and for fixed interface radius or interface temperature, we find that the luminosity decreases significantly from about 10-6 to 10-9 L⊙ as the magnetic field strength increases from about 109 to 1012 G at the interface and hence the envelope. This is remarkable because it argues that magnetized white dwarfs are fainter and can be practically hidden in an observed Hertzsprung-Russell diagram. We also find the cooling rates corresponding to these luminosities. Interestingly, the decrease in temperature with time, for the fields under consideration, is not found to be appreciable.
CITATION STYLE
Bhattacharya, M., Mukhopadhyay, B., & Mukerjee, S. (2018). Luminosity and cooling of highly magnetized white dwarfs: Suppression of luminosity by strong magnetic fields. Monthly Notices of the Royal Astronomical Society, 477(2), 2705–2715. https://doi.org/10.1093/MNRAS/STY776
Mendeley helps you to discover research relevant for your work.