The Earliest Phases of Galaxy Evolution
arXiv:astro-ph/9810422 · doi:10.1086/307006
Abstract
In this paper we study the very early phases of the evolution of our Galaxy by means of a chemical evolution model which reproduces most of the observational constraints in the solar vicinity and in the disk. We have restricted our analysis to the solar neighborhood and present the predicted abundances of several elements (C, N, O, Mg, Si, S, Ca, Fe) over an extended range of metallicities to compared to previous models. We adopted the most recent yield calculations for massive stars taken from different authors (Woosley & Weaver 1995 and Thielemann et al. 1996) and compared the results with a very large sample of data, one of the largest ever used to this purpose. These data have been analysed with a new and powerful statistical method which allows us to quantify the observational spread in measured elemental abundances and obtain a more meaningful comparison with the predictions from our chemical evolution model. Our analysis shows that the ``plateau'' observed for the [/Fe] ratios at low metallicities () is not perfectly constant but it shows a slope, especially for oxygen. This slope is very well reproduced by our model with both sets of yields. This is not surprising since realistic chemical evolution models, taking into account in detail stellar lifetimes, never predicted a completely flat plateau. This is due either to the fact that massive stars of different mass produce a slightly different O/Fe ratio or to the often forgotten fact that supernovae of type Ia, originating from white dwarfs, start appearing already at a galactic age of 30 million years and reach their maximum at 1 Gyr.
32 pages, 9 figures, to be published in ApJ
Cited by in corpus (48)
- Abundance Gradients and the Formation of the Milky Way
- Measurement of stellar age from uranium decay
- Chemical evolution with rotating massive star yields: I. The solar neighbourhood and the s-process elements
- On the typical timescale for the chemical enrichment from SNeIa in Galaxies
- Oxygen, Carbon and Nitrogen evolution in galaxies
- The evolution of the Milky Way from its earliest phases : constraints on stellar nucleosynthesis
- Oxygen trends in the Galactic thin and thick disks
- Sulphur and zinc abundances in Galactic halo stars revisited
- When the Milky Way turned off the lights: APOGEE provides evidence of star formation quenching in our Galaxy
- Sulphur and zinc abundances in Galactic stars and damped Lyman-alpha systems
- A grid of chemical evolution models as a tool to interpret spiral and irregular galaxies data
- Star formation and chemical evolution in SPH simulations: a statistical approach
- Galactic chemical abundance evolution in the solar neighborhood up to the Iron peak
- Light Element Evolution and Cosmic Ray Energetics
- Mg abundances in metal-poor halo stars as a tracer of early Galactic mixing
- A comprehensive set of elemental abundances in damped Ly-alpha systems: revealing the nature of these high-redshift galaxies
- The Revival of Galactic Cosmic Ray Nucleosynthesis?
- Stellar yields with rotation and their effect on chemical evolution models
- The age of the young bulge-like population in the stellar system Terzan5: linking the Galactic bulge to the high-z Universe
- Chemical Abundance Analysis of the Extremely Metal-Poor Star HE 1300+0157
- The origin of nitrogen: Implications of recent measurements of N/O in Galactic metal-poor stars
- High-Velocity Cloud Complex C: Galactic Fuel or galactic Waste?
- The Evolution of Carbon and Oxygen in the Bulge and Disk of the Milky Way
- The influence of binaries on galactic chemical evolution
- Oxygen Abundances in Metal-Poor Stars (-2.2 < [Fe/H] < -1.2) from Infrared OH lines
- Behavior of Sulfur Abundances in Metal-Poor Giants and Dwarfs
- The chemical evolution of a Milky Way-like galaxy: the importance of a cosmologically motivated infall law
- The disc origin of the Milky Way bulge
- Interstellar Gas-phase Element Depletions in the Small Magellanic Cloud: A Guide to Correcting for Dust in QSO Absorption Line Systems
- Constraining cosmic scatter in the Galactic halo through a differential analysis of metal-poor stars
- The Gaia-ESO Survey: Galactic evolution of sulphur and zinc
- Carbon-rich dust production in metal-poor galaxies in the Local Group
- A new comprehensive set of elemental abundances in DLAs III. Star formation histories
- On the metallicity distribution of classical Cepheids in the Galactic inner disk
- The Chemical Evolution of the Milky Way: the Three Infall Model
- High matter density peaks from UVES observations of QSO pairs: correlation properties and chemical abundances
- The Chemical Evolution of the Galaxy with Variable IMFs
- Revisiting the Globular Cluster System of the Merger Remnant Elliptical NGC 3610
- Galaxy Genesis -- unravelling the epoch of dissipation in the early disk
- Neutron star mergers as the astrophysical site of the r-process in the Milky Way and its satellite galaxies
- The effects of Population III stars and variable IMF on the chemical evolution of the Galaxy
- On the Two-Phase Structure of Protogalactic Clouds
- Chemical Properties of the Local Galactic Disk and Halo. I. Fundamental Properties of 1,544 Nearby, High Proper-Motion M dwarfs and subdwarfs
- Chemical Properties of the Local Disk and Halo. II. Abundances of 3745 M dwarfs and Subdwarfs from Improved Model Fitting of Low-Resolution Spectra
- Yields of Massive Stars and their Role in Galactic Chemical Evolution Studies
- Modelling the chemical evolution of molecular clouds as a function of metallicity
- Early Galactic Evolution of Carbon, Nitrogen and Oxygen
- Galactic Evolution of Beryllium and Oxygen