Analytic Models of Brown Dwarfs and The Substellar Mass Limit
arXiv:1607.04338 · doi:10.1155/2016/5743272
Abstract
We present the current status of the analytic theory of brown dwarf evolution and the lower mass limit of the hydrogen burning main sequence stars. In the spirit of a simplified analytic theory we also introduce some modifications to the existing models. We give an exact expression for the pressure of an ideal non-relativistic Fermi gas at a finite temperature, therefore allowing for non-zero values of the degeneracy parameter (, where is the Fermi energy). We review the derivation of surface luminosity using an entropy matching condition and the first-order phase transition between the molecular hydrogen in the outer envelope and the partially-ionized hydrogen in the inner region. We also discuss the results of modern simulations of the plasma phase transition, which illustrate the uncertainties in determining its critical temperature. Based on the existing models and with some simple modification we find the maximum mass for a brown dwarf to be in the range . An analytic formula for the luminosity evolution allows us to estimate the time period of the non-steady state (i.e., non-main sequence) nuclear burning for substellar objects. Standard models also predict that stars that are just above the substellar mass limit can reach an extremely low luminosity main sequence after at least a few million years of evolution, and sometimes much longer. We estimate that of stars take longer than yr to reach the main-sequence, and of stars take longer than yr.
34 pages, 5 figures, to appear in Advances in Astronomy
References in corpus (4)
- Modules for Experiments in Stellar Astrophysics (MESA)
- Ab initio equations of state for hydrogen (H-REOS.3) and helium (He-REOS.3) and their implications for the interior of Brown Dwarfs
- Unexpectedly high pressure for molecular dissociation in liquid hydrogen by a reliable electronic simulation
- The MLP Distribution: A Modified Lognormal Power-Law Model for the Stellar Initial Mass Function
Cited by in corpus (18)
- Exoplanets as Sub-GeV Dark Matter Detectors
- Cooling process of brown dwarfs in Palatini f(R) gravity
- Evaporation Barrier for Dark Matter in Celestial Bodies
- Habitable planet formation around low-mass stars: Rapid accretion, rapid debris removal and the essential contribution of external giants
- Jupiter and jovian (exo)-planets in Palatini gravity
- Fermi equation of state with finite temperature corrections in quantum space-times approach: Snyder model vs GUP case
- Gamma-ray flux limits from brown dwarfs: Implications for dark matter annihilating into long-lived mediators
- Constraining Snyder and GUP models with low-mass stars
- Cooling Process of White Dwarf Stars in Palatini Gravity
- Discovery of a resolved white dwarf-brown dwarf binary with a small projected separation: SDSS J222551.65+001637.7AB
- Cooling process of substellar objects in scalar-tensor gravity
- Stable Hydrogen burning limits in rapidly rotating very low mass objects
- Precision measurement of a brown dwarf mass in a binary system in the microlensing event OGLE-2019-BLG-0033/MOA-2019-BLG-035
- Effects of Bound Diprotons and Enhanced Nuclear Reaction Rates on Stellar Evolution
- Dark Dwarfs: Dark Matter-Powered Sub-Stellar Objects Awaiting Discovery at the Galactic Center
- Probing Superheavy Dark Matter with Exoplanets
- A numerical modeling of rotating substellar objects up to mass-shedding limits
- White dwarf cooling in gravity