Thermohaline mixing and the photospheric composition of low-mass giant stars
arXiv:1104.0832 · doi:10.1051/0004-6361/201117029
Abstract
We compute full evolutionary sequences of red giant branch stars close to the luminosity bump by including state of the art composition transport prescriptions for the thermohaline mixing regimes. In particular we adopt a self-consistent double-diffusive convection theory, that allows to handle the instabilities that arise when thermal and composition gradients compete against each other, and a very recent empirically motivated and parameter free asymptotic scaling law for thermohaline composition transport. In agreement with previous works, we find that during the red giant stage, a thermohaline instability sets in shortly after the hydrogen burning shell (HBS) encounters the chemical discontinuity left behind by the first dredge-up. We also find that the thermohaline unstable region, initially appearing at the exterior wing of the HBS, is unable to reach the outer convective envelope, with the consequence that no mixing of elements that produces a non-canonical modification of the stellar surface abundances occurs. Also in agreement with previous works, we find that by artificially increasing the mixing efficiency of thermohaline regions it is possible to connect both unstable regions, thus affecting the photospheric composition. However, we find that in order to reproduce the observed abundances of red giant branch stars close to the luminosity bump, thermohaline mixing efficiency has to be artificially increased by about 4 orders of magnitude from that predicted by recent 3D numerical simulations of thermohaline convection close to astrophysical environments. From this we conclude the chemical abundance anomalies of red giant stars cannot be explained on the basis of thermohaline mixing alone.
7 pages, 6 figures, accepted for publication in A&A
References in corpus (10)
- Thermohaline mixing: A physical mechanism governing the photospheric composition of low-mass giants
- Thermohaline instability and rotation-induced mixing. I - Low- and intermediate-mass solar metallicity stars up to the end of the AGB
- Deep Mixing of He-3: Reconciling Big Bang and Stellar Nucleosynthesis
- First stars IX -Mixing in extremely metal-poor giants. Variation of the 12C/13C, [Na/Mg] and [Al/Mg] ratios
- Numerically determined transport laws for fingering ("thermohaline") convection in astrophysics
- Numerical Simulations of Thermohaline Convection: Implications for Extra-Mixing in Low-Mass RGB Stars
- Thermohaline mixing in evolved low-mass stars
- Thermohaline Mixing: Does It Really Govern the Atmospheric Chemical Composition of Low-Mass Red Giants?
- 3He-Driven Mixing in Low-Mass Red Giants: Convective Instability in Radiative and Adiabatic Limits
- The extra-mixing efficiency in very low metallicity RGB stars
Cited by in corpus (37)
- Modules for Experiments in Stellar Astrophysics (MESA): Giant Planets, Oscillations, Rotation, and Massive Stars
- MESA Isochrones and Stellar Tracks (MIST). I: Solar-Scaled Models
- New evolutionary sequences for extremely low mass white dwarfs: Homogeneous mass and age determinations, and asteroseismic prospects
- White dwarf evolutionary sequences for low-metallicity progenitors: The impact of third dredge-up
- Lithium-Rich Giants in Globular Clusters
- On Carbon Burning in Super Asymptotic Giant Branch Stars
- The effect of Ne diffusion in the evolution and pulsational properties of white dwarfs with solar metallicity progenitors
- The thermohaline, Richardson, Rayleigh-Taylor, Solberg-Hoiland, and GSF criteria in rotating stars
- The Role of Thermohaline Mixing in Intermediate- and Low-Metallicity Globular Clusters
- The Gaia-ESO Survey: CNO abundances in the open clusters Trumpler 20, NGC 4815, and NGC 6705
- The age-metallicity dependence for white dwarfs
- Thermohaline instability and rotation-induced mixing II- Yields of 3He for low- and intermediate-mass stars
- Evolutionary sequences for hydrogen-deficient white dwarfs
- Asteroseismology of ZZ Ceti stars with fully evolutionary white dwarf models: I. The impact of the uncertainties from prior evolution on the period spectrum
- C, N, O abundances and carbon isotope ratios in evolved stars of the open clusters Collinder 261 and NGC 6253
- On the Production of He, C and N by Low and Intermediate Mass Stars: A Comparison of Observed and Model-Predicted Planetary Nebula Abundances
- Pulsation properties of ultra-massive DA white dwarf stars with ONe cores
- Fingering Convection in Red Giants Revisited
- Pulsational instabilities driven by the mechanism in hot pre-horizontal branch stars I. The Hot-Flasher Scenario
- The evolution of white dwarfs resulting from helium-enhanced, low-metallicity progenitor stars
- Red clump stars of the Milky Way - laboratories of extra-mixing
- Importance of fingering convection for accreting white dwarfs in the framework of full evolutionary calculations: the case of the hydrogen-rich white dwarfs GD133 and G29-38
- The extent of mixing in stellar interiors: the open clusters Collinder 261 and Melotte 66
- Asteroseismology of hybrid Scuti-- Doradus pulsating stars
- 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
- CNO abundances and carbon isotope ratios in evolved stars of the open clusters NGC 2324, NGC 2477, and NGC 3960
- Asteroseismology of ZZ Ceti stars with full evolutionary white dwarf models. II. The impact of AGB thermal pulses on the asteroseismic inferences of ZZ Ceti stars
- On a new parameter to estimate the helium content in old stellar systems
- Chemical composition of evolved stars in the young open clusters NGC 4609 and NGC 5316
- Pre-main sequence accretion and the formation of multiple populations in Globular Clusters
- Chemical composition of giant stars in the open cluster IC 4756
- Identifying Multiple Populations in M71 Using CN
- New simulations of accreting DA white dwarfs: inferring accretion rates from the surface contamination
- Carbon Isotope Ratios in M10 Giants
- Convective Mixing: The Formation Channel of Li-rich Giants
- Exploring the History of Stellar Mergers with Chemistry: Examining the Origins of Massive -Enriched Stars using Carbon Isotope Ratios