On the minimum mass ratio of W UMa binaries
arXiv:1303.0681 · doi:10.1111/j.1365-2966.2010.16615.x 10.1111/j.1365-2966.2010.16615.x
Abstract
Using Eggleton's stellar evolution code, we study the minimum mass ratio () of W Ursae Majoris (W UMa) binaries that have different primary masses. It is found that the minimum mass ratio of W UMa binaries decreases with increasing mass of the primary if the primary's mass is less than about 1.3, and above this mass the ratio is roughly constant. By comparing the theoretical minimum mass ratio with the observational data, it is found that the existence of low- systems can be explained by the different structure of the primaries with different masses. This suggests that the dimensionless gyration radius () and thus the structure of the primary is very important in determining the minimum mass ratio. In addition, we investigate the mass loss during the merging process of W UMa systems and calculate the rotation velocities of the single stars formed by the merger of W UMa binaries due to tidal instability. It is found that in the case of the conservation of mass and angular momentum, the merged single stars rotate with a equatorial velocity of about km s, which is much larger than their break-up velocities (). This suggests that the merged stars should extend to a very large radius (3.75.3 times the radii of the primaries) or W UMa systems would lose a large amount of mass (2133 per cent of the total mass) during the merging process. If the effect of magnetic braking is considered, the mass loss decreases to be 1218 per cent of their total masses. This implies that the significant angular momentum and mass might be lost from W UMa systems in the course of the merging process, and this kind of mass and angular momentum loss might be driven by the release of orbital energy of the secondaries, which is similar to common-envelope evolution.
16 pages, 3 figures, Accepted for publication in Monthly Notices
References in corpus (13)
- Contact Binaries with Additional Components.I. The Extant Data
- The dynamical stability of W Ursae Majoris-type systems
- Luminosity function of contact binaries based on the ASAS survey
- Masses and angular momenta of contact binary stars
- The evolutionary status of W Ursae Majoris-type systems
- Physical parameters and multiplicity of five southern close eclipsing binaries
- Structure and evolution of low-mass W UMa type systems -- II. with angular momentum loss
- The shortest period field contact binary
- On the minimum mass ratio of W UMa binaries
- Binary coalescence from case A evolution -- mergers and blue stragglers
- Radial Velocity Studies of Close Binary Stars. XIV
- Orbital Evolution of Algol Binaries with a Circumbinary Disk
- Physical parameters of close binary systems: VI
Cited by in corpus (15)
- Photometric study and absolute parameters estimation of six totally eclipsing contact binaries
- Extremely low mass ratio contact binaries -- I. the first photometric and spectroscopic investigations of ten systems
- ZZ Piscis Austrinus (ZZ PsA): A bright red nova progenitor and the instability mass ratio of contact binary stars
- Two contact binaries with mass ratios close to the minimum mass ratio
- On the minimum mass ratio of W UMa binaries
- New low mass ratio contact binaries in the Catalina Sky Survey
- The study of eleven contact binaries with mass ratios less than 0.1
- The First Photometric and Orbital Period Investigation of an Extremely Low Mass Ratio Contact Binary with a Sudden Period Change, TYC 4002-2628-1
- The first photometric and spectroscopic analysis of the extremely low mass ratio contact binary NSVS 5029961
- Marginally low mass ratio close binary system V1191 Cyg
- The binary merger channel for the progenitor of the fastest rotating O-type star VFTS102
- Case AD, AR, and AS binary evolution and their possible connections with W UMa binaries
- Detection of Contact Binary Candidates Observed By TESS Using Autoencoder Neural Network
- On the Nature of Rapidly Rotating Single Evolved Stars
- Detailed Investigation of a W UMa Contact Binary with an Ultralow Mass Ratio and a Third-Body as a Potential Merger Candidate