The impact of Coulomb diffusion of ions on the pulsational properties of DA white dwarfs
arXiv:2010.11131 · doi:10.1051/0004-6361/202039557
Abstract
Element diffusion is a key physical process that substantially impacts the superficial abundances, internal structure, pulsation properties, and evolution of white dwarfs. We study the effect of Coulomb separation of ions in the cooling times of evolving white dwarfs, their chemical profiles, the Brunt-Väisälä (buoyancy) frequency, and the pulsational periods at the ZZ Ceti instability strip. We follow the full evolution of white-dwarf models derived from their progenitor history on the basis of a time-dependent element diffusion scheme that incorporates the effect of gravitational settling of ions due to Coulomb interactions at high densities. We find that Coulomb sedimentation profoundly alters the chemical profiles of ultra-massive () white dwarfs along their evolution, preventing helium from diffusing inward toward the core, and thus leading to much narrower chemical transition zones. As a result, significant changes in the -mode pulsation periods as high as are expected for ultra-massive ZZ Ceti stars. This should be taken into account in detailed asteroseismological analyses of such stars. For less-massive white dwarfs, the impact of Coulomb separation is much less noticeable, inflicting period changes in ZZ Ceti stars that are below the period changes that result from uncertainties in progenitor evolution, albeit larger than typical uncertainties of observed periods.
6 pages, 4 figures. Accepted for publication in Astronomy and Astrophysics
References in corpus (11)
- Pulsating White Dwarf Stars and Precision Asteroseismology
- Asteroseismic inferences on GW Vir variable stars in the frame of new PG 1159 evolutionary models
- White dwarf evolutionary sequences for low-metallicity progenitors: The impact of third dredge-up
- New white dwarf envelope models and diffusion. Application to DQ white dwarfs
- The Aarhus Red Giants Challenge I: Stellar structures in the red giant branch phase
- Asteroseismology of ZZ Ceti stars with fully evolutionary white dwarf models: I. The impact of the uncertainties from prior evolution on the period spectrum
- The Aarhus red giants challenge II. Stellar oscillations in the red giant branch phase
- Detections and Constraints on White Dwarf Variability from Time-Series GALEX Observations
- The diffusion-induced nova scenario. CK Vul and PB 8 as possible observational counterparts
- Asteroseismological analysis of the ultra-massive ZZ Ceti stars BPM~37093, GD~518, and SDSS~J0840+5222
- On the existence of warm H-rich pulsating white dwarfs
Cited by in corpus (5)
- On the Spectral Evolution of Hot White Dwarf Stars. III. The PG 1159DODBDQ Evolutionary Channel Revisited
- WD J004917.14252556.81, the Most Massive Pulsating White Dwarf
- New DA white dwarf models for asteroseismology of ZZ Ceti stars
- The pulsational properties of ultra-massive DB white dwarfs with carbon-oxygen cores coming from single-star evolution
- A Red Giants' Toy Story II: Understanding the Red-Giant Branch Bump