Application of the Limit Cycle Model to Star Formation Histories in Spiral Galaxies: Variation among Morphological Types
arXiv:astro-ph/0005081 · doi:10.1086/301497
Abstract
We propose a limit-cycle scenario of star formation history for any morphological type of spiral galaxies. It is known observationally that the early-type spiral sample has a wider range of the present star formation rate (SFR) than the late-type sample. This tendency is understood in the framework of the limit-cycle model of the interstellar medium (ISM), in which the SFR cyclically changes in accordance with the temporal variation of the mass fraction of the three ISM components. When the limit-cycle model of the ISM is applied, the amplitude of variation of the SFR is expected to change with the supernova (SN) rate. Observational evidence indicates that the early-type spiral galaxies show smaller rates of present SN than late-type ones. Combining this evidence with the limit-cycle model of the ISM, we predict that the early-type spiral galaxies show larger amplitudes in their SFR variation than the late-types. Indeed, this prediction is consistent with the observed wider range of the SFR in the early-type sample than in the late-type sample. Thus, in the framework of the limit-cycle model of the ISM, we are able to interpret the difference in the amplitude of SFR variation among the morphological classes of spiral galaxies.
12 pages LaTeX, to appear in AJ
References in corpus (1)
Cited by in corpus (8)
- On the Stellar Populations of Galaxies at z=9-11: The Growth of Metals and Stellar Mass at Early Times
- Shattering and coagulation of dust grains in interstellar turbulence
- Small Scale Structure at High Redshift: II. Physical Properties of the CIV Absorbing Clouds
- Emission from Dust in Galaxies: Metallicity Dependence
- Stochastic Modelling of Star Formation Histories III. Constraints from Physically-Motivated Gaussian Processes
- Chemical Evolution of the Galaxy Based on the Oscillatory Star Formation History
- Episodic Model For Star Formation History and Chemical Abundances in Giant and Dwarf Galaxies
- Gas flows, star formation and galaxy evolution