Structure and evolution of ultra-massive white dwarfs in general relativity
arXiv:2208.14144 · doi:10.1051/0004-6361/202244604
Abstract
We present the first set of constant rest-mass ultra-massive oxygen/neon white dwarf cooling tracks with masses larger than 1.29 Msun which fully take into account the effects of general relativity on their structural and evolutionary properties. We have computed the full evolution sequences of 1.29, 1.31, 1.33, 1.35, and 1.369 Msun white dwarfs with the La Plata stellar evolution code, LPCODE. For this work, the standard equations of stellar structure and evolution have been modified to include the full effects of general relativity. For comparison purposes, the same sequences have been computed but for the Newtonian case. According to our calculations, the evolutionary properties of the most massive white dwarfs are strongly modified by general relativity effects. In particular, the resulting stellar radius is markedly smaller in the general relativistic case, being up to 25% smaller than predicted by the Newtonian treatment for the more massive ones. We find that oxygen/neon white dwarfs more massive than 1.369 Msun become gravitationally unstable with respect to general relativity effects. When core chemical distribution due to phase separation on crystallization is considered, such instability occurs at somewhat lower stellar masses, greater than 1.36 Msun. In addition, cooling times for the most massive white dwarf sequences result in about a factor of two smaller than in the Newtonian case at advanced stages of evolution. Finally, a sample of white dwarfs has been identified as ideal candidates to test these general relativistic effects. We conclude that the general relativity effects should be taken into account for an accurate assessment of the structural and evolutionary properties of the most massive white dwarfs.
12 pages, accepted for publication in Astronomy and Astrophysics
References in corpus (23)
- The Transiting Exoplanet Survey Satellite
- The K2 Mission: Characterization and Early results
- Pulsating White Dwarf Stars and Precision Asteroseismology
- A catalogue of white dwarfs in Gaia EDR3
- The 100 pc White Dwarf Sample in the SDSS Footprint
- A highly magnetised and rapidly rotating white dwarf as small as the Moon
- White dwarf evolutionary sequences for low-metallicity progenitors: The impact of third dredge-up
- Evolutionary Models for the Remnant of the Merger of Two Carbon-Oxygen Core White Dwarfs
- An ultra-massive white dwarf with a mixed hydrogen-carbon atmosphere as a likely merger remnant
- The white dwarf luminosity function
- The formation of ultra-massive carbon-oxygen core white dwarfs and their evolutionary and pulsational properties
- The Most Massive White Dwarfs in the Solar Neighborhood
- Discovery of a hot ultramassive rapidly rotating DBA White Dwarf
- Additional Ultracool White Dwarfs Found in the Sloan Digital Sky Survey
- Detections and Constraints on White Dwarf Variability from Time-Series GALEX Observations
- White dwarfs as Physics laboratories: lights and shadows
- A population synthesis fitting of the resolved white dwarf binary population within 100 pc
- Formation of ultra-massive carbon-oxygen white dwarfs from the merger of carbon-oxygen and helium white dwarf pairs
- The evolution of ultra-massive carbon oxygen white dwarfs
- A double white dwarf with a paradoxical origin?
- Asteroseismological analysis of the ultra-massive ZZ Ceti stars BPM~37093, GD~518, and SDSS~J0840+5222
- Phase Separation in Ultramassive White Dwarfs
- Cooling Models for the Most Massive White Dwarfs