Structure and evolution of a tidally heated star
arXiv:2301.07878 · doi:10.1051/0004-6361/202244971
Abstract
The shearing motion of tidal flows that are excited in non-equilibrium binary stars transform kinetic energy into heat via a process referred to as tidal heating. In this paper we aim to explore the way tidal heating affects the stellar structure. We used the TIDES code, which solves the equations of motion of the three-dimensional (3D) grid of volume elements that conform multiple layers of a rotating binary star to obtain an instantaneous value for the angular velocity, , as a function of position in the presence of gravitational, centrifugal, Coriolis, gas pressure, and viscous forces. The released energy, was computed using a prescription for turbulent viscosity that depends on the instantaneous velocity gradients. The values for each radius were injected into a MESA stellar structure calculation. The method is illustrated for a 1.0+0.8 M binary system, with an orbital period of =1.44d and departures from synchronous rotation of 5% and 10%. We find that heated models have a larger radius and surface luminosity, a smaller surface convection zone, and lower nuclear reaction rates than the equivalent standard stellar models, and their evolutionary tracks extend to higher temperatures. The magnitude of these effects depends on the amount of injected energy, which, for a fixed set of stellar, rotation and orbital parameters, depends on the perturbed star's density structure and turbulent viscosity. Tidal heating offers a possible alternative for describing phenomena such as bloated or overluminous binary components, age discrepancies, and aspherical mass ejection, as well as the extended main sequence turnoff in clusters. However, establishing its actual role requires 3D stellar structure models commensurate with the nonspherically symmetric properties of tidal perturbations.
16 pages, 7 figures, appendix with 9 figures, A&A in Press
References in corpus (17)
- Modules for Experiments in Stellar Astrophysics (MESA)
- Modules for Experiments in Stellar Astrophysics (MESA): Pulsating Variable Stars, Rotation, Convective Boundaries, and Energy Conservation
- Tidal dissipation in stars and giant planets
- Evolution of low-mass star and brown dwarf eclipsing binaries
- Age Determination of Six Intermediate-age SMC Star Clusters with HST/ACS
- A double main sequence turn-off in the rich star cluster NGC 1846 in the Large Magellanic Cloud
- Multiple stellar populations in three rich Large Magellanic Cloud star clusters
- The effect of activity on stellar temperatures and radii
- Extended Main Sequence Turnoffs in Intermediate-Age Star Clusters: A Correlation Between Turnoff Width and Early Escape Velocity
- Discovery of Carbon/Oxygen depleted Blue Straggler Stars in 47 Tucanae: the chemical signature of a mass-transfer formation process
- Convective turbulent viscosity acting on equilibrium tidal flows: new frequency scaling of the effective viscosity
- Tides in asynchronous binary systems
- On a new formulation for energy transfer between convection and fast tides with application to giant planets and solar type stars
- Rings and Halos in the Mid-Infrared: The Planetary Nebulae NGC 7354 and NGC 3242
- The magnitude of viscous dissipation in strongly stratified two-dimensional convection
- Induced differential rotation and mixing in asynchronous binary stars
- Constraining Tidal Quality Factor using Spin Period in Eclipsing Binaries