White Dwarf Asteroseismology and the ^12C(alpha,gamma)^16O Rate
arXiv:astro-ph/0303039 · doi:10.1086/375044
Abstract
Due to a new global analysis method, it is now possible to measure the internal composition of pulsating white dwarf stars, even with relatively simple theoretical models. The precise internal mixture of carbon and oxygen is the largest single source of uncertainty in ages derived from white dwarf cosmochronometry, and contains information about the rate of the astrophysically important, but experimentally uncertain, ^12C(alpha,gamma)^16O nuclear reaction. Recent determinations of the internal composition and structure of two helium-atmosphere variable (DBV) white dwarf stars, GD 358 and CBS 114, initially led to conflicting implied rates for the ^12C(alpha,gamma)^16O reaction. If both stars were formed through single-star evolution, then the initial analyses of their pulsation frequencies must have differed in some systematic way. I present improved fits to the two sets of pulsation data, resolving the tension between the initial results and leading to a value for the ^12C(alpha,gamma)^16O reaction rate that is consistent with recent laboratory measurements.
4 pages, 2 figures, 1 table, uses emulateapj5.sty; Accepted for publication in ApJ Letters
References in corpus (1)
Cited by in corpus (36)
- Revisiting the bound on axion-photon coupling from Globular Clusters
- The 12C(a,g)16O reaction and its implications for stellar helium burning
- Constraints from gravitational wave detections of binary black hole mergers on the rate
- Pulsating white dwarfs: new insights
- Testing White Dwarf Crystallization Theory with Asteroseismology of the Massive Pulsating DA Star BPM 37093
- A Stellar Model-fitting Pipeline for Asteroseismic Data from the Kepler Mission
- New chemical profiles for the asteroseismology of ZZ Ceti stars
- The core/envelope symmetry in pulsating stars
- Observing white dwarfs orbiting massive black holes in the gravitational wave and electro-magnetic window
- Probing Intermediate Mass Black Holes With Optical Emission Lines from Tidally Disrupted White Dwarfs
- Discovery of fourteen new ZZ Cetis with SOAR
- New evolutionary models for massive ZZ Ceti stars. II. The effects of crystallization on their pulsational properties
- The potential of asteroseismology for probing the core chemical stratification in white dwarf stars
- Carbon-Oxygen Phase Separation in MESA White Dwarf Models
- A robust statistical estimation of the basic parameters of single stellar populations. I. Method
- Evidence for Temperature Change and Oblique Pulsation from Light Curve Fits of the Pulsating White Dwarf GD 358
- White dwarf envelopes: further results of a non-local model of convection
- New Pulsating DB White Dwarf Stars from the Sloan Digital Sky Survey
- A deeper understanding of white dwarf interiors
- Whole Earth Telescope observations of the hot helium atmosphere pulsating white dwarf EC 20058-5234
- Analysis of IUE spectra of helium-rich white dwarf stars
- Probing the core and envelope structure of DBV white dwarfs
- Asteroseismic constraints on diffusion in WD envelopes
- GD358: three decades of observations for the in-depth asteroseismology of a DBV star
- Magnetic field breakout from white dwarf crystallization dynamos
- On Trapped Modes In Variable White Dwarfs As Probes Of The C()O Reaction Rate
- On The Impact Of 22Ne On The Pulsation Periods Of Carbon-Oxygen White Dwarfs With Helium Dominated Atmospheres
- Pulsating hydrogen-deficient white dwarfs and pre-white dwarfs observed with {\it TESS}: III. Asteroseismology of the DBV star GD 358
- Can pulsating PG1159 stars place constraints on the occurrence of core overshooting?
- An asteroseismic test of diffusion theory in white dwarfs
- Evolutionary and pulsational properties of low-mass white dwarf stars with oxygen cores resulting from close binary evolution
- Lessons for Asteroseismology from White Dwarf Stars
- Constraints from parallaxes and average period spacings in the asteroseismic study of 8 DAVs
- A comparison of best fits obtained in white dwarf asteroseismology using the WDEC and the LPCODE
- A systematic study of the connection between white dwarf period spectra and model structure
- Asteroseismic Constraints on the Models of Hot B Subdwarfs: Convective Helium-Burning Cores