English

Main-Sequence Effective Temperatures from a Revised Mass-Luminosity Relation Based on Accurate Properties

Solar and Stellar Astrophysics 2015-06-23 v1

Abstract

The mass-luminosity (M-L), mass-radius (M-R) and mass-effective temperature (MTeffM-T_{eff}) diagrams for a subset of galactic nearby main-sequence stars with masses and radii accurate to 3%\leq 3\% and luminosities accurate to 30%\leq 30\% (268 stars) has led to a putative discovery. Four distinct mass domains have been identified, which we have tentatively associated with low, intermediate, high, and very high mass main-sequence stars, but which nevertheless are clearly separated by three distinct break points at 1.05, 2.4, and 7MM_{\odot} within the mass range studied of 0.3832M0.38-32M_{\odot}. Further, a revised mass-luminosity relation (MLR) is found based on linear fits for each of the mass domains identified. The revised, mass-domain based MLRs, which are classical (LMαL \propto M^{\alpha}), are shown to be preferable to a single linear, quadratic or cubic equation representing as an alternative MLR. Stellar radius evolution within the main-sequence for stars with M>1MM>1M_{\odot} is clearly evident on the M-R diagram, but it is not the clear on the MTeffM-T_{eff} diagram based on published temperatures. Effective temperatures can be calculated directly using the well-known Stephan-Boltzmann law by employing the accurately known values of M and R with the newly defined MLRs. With the calculated temperatures, stellar temperature evolution within the main-sequence for stars with M>1MM>1M_{\odot} is clearly visible on the MTeffM-T_{eff} diagram. Our study asserts that it is now possible to compute the effective temperature of a main-sequence star with an accuracy of 6%\sim 6\%, as long as its observed radius error is adequately small (<1%) and its observed mass error is reasonably small (<6%).

Keywords

Cite

@article{arxiv.1501.06585,
  title  = {Main-Sequence Effective Temperatures from a Revised Mass-Luminosity Relation Based on Accurate Properties},
  author = {Z. Eker and F. Soydugan and E. Soydugan and S. Bilir and E. Yaz Gokce and I. Steer and M. Tuysuz and T. Senyuz and O. Demircan},
  journal= {arXiv preprint arXiv:1501.06585},
  year   = {2015}
}

Comments

57 pages, including 12 figures and 7 tables, accepted for publication in Astronomical Journal

R2 v1 2026-06-22T08:13:28.369Z