Equilibrium Configurations of Rotating White Dwarfs at Finite Temperatures
arXiv:1807.00332 · doi:10.1134/S106377291812017X
Abstract
In this work, cold and hot, static and rotating white dwarf stars are investigated within the framework of classical physics, employing the Chandrasekhar equation of state. The main parameters of white dwarfs such as the central density, pressure, total mass and radius are calculated fulfilling the stability criteria for hot rotating stars. To construct rotating configurations the Hartle approach is involved. It is shown that the effects of finite temperatures become crucial in low-mass white dwarfs, whereas rotation is relevant in all mass range. The simultaneous accounting for temperature and rotation is critical in the calculation of the radii of white dwarfs. The results obtained in this work can be applied to explain a variety of observational data for white dwarfs from the Sloan Digital Sky Survey Data Releases.
7 pages, 4 figures
References in corpus (7)
- White Dwarf Mass Distribution in the SDSS
- New white dwarf stars in the Sloan Digital Sky Survey Data Release 10
- The initial-final mass relationship of white dwarfs revisited: effect on the luminosity function and mass distribution
- General Relativistic effects in the structure of massive white dwarfs
- General Relativistic White Dwarfs and Their Astrophysical Implications
- On the Maximum Mass of General Relativistic Uniformly Rotating White Dwarfs
- Nonvalidity of I-Love-Q Relations for Hot White Dwarf Stars