Testing tidal theory using Gaia binaries: the red giant branch
arXiv:2501.13929 · doi:10.3847/1538-4357/adc37e
Abstract
Tidal interaction is a major ingredient in the theory of binary evolution. Here, we study tidal circularization in binaries with red giant primaries. We compute the tidal evolution for binaries as their primary stars evolve along the red giant branch, under dissipation of dynamical tides in the convective envelope. We then compare this evolution with a sample of ~30,000 red giant binaries reported by Gaia DR3. These binaries clearly show the expected gradual advance of tidal circularization, as the primary expands. But some tension with theory remains. While our calculations always predict a critical separation for tidal circularization at about 3-4 times the stellar radii, binaries with less evolved giants are observed to be circularized out to about twice as far. They also exhibit an overly extended `cool island', a collection of circular orbits that reach a couple times beyond the circularization limit. These discrepancies are reminiscent of, but less severe than, the situation for main-sequence binaries. We also find that tides can spin giant stars up to rotation rates that should affect their mass-loss. Additionally, many binaries may begin mass transfer while still eccentric.
18 pages, 12 figures, published in ApJ
References in corpus (44)
- SciPy 1.0--Fundamental Algorithms for Scientific Computing in Python
- Array Programming with NumPy
- Modules for Experiments in Stellar Astrophysics (MESA)
- PARSEC: stellar tracks and isochrones with the PAdova and TRieste Stellar Evolution Code
- Modules for Experiments in Stellar Astrophysics (MESA): Giant Planets, Oscillations, Rotation, and Massive Stars
- Modules for Experiments in Stellar Astrophysics (MESA): Binaries, Pulsations, and Explosions
- Modules for Experiments in Stellar Astrophysics (MESA): Convective Boundaries, Element Diffusion, and Massive Star Explosions
- Evolution of binary stars and the effect of tides on binary populations
- Modules for Experiments in Stellar Astrophysics (MESA): Pulsating Variable Stars, Rotation, Convective Boundaries, and Energy Conservation
- Mind your Ps and Qs: the Interrelation between Period (P) and Mass-ratio (Q) Distributions of Binary Stars
- Modules for Experiments in Stellar Astrophysics (MESA): Time-Dependent Convection, Energy Conservation, Automatic Differentiation, and Infrastructure
- GYRE: An open-source stellar oscillation code based on a new Magnus Multiple Shooting Scheme
- Tidal dissipation in stars and giant planets
- Tidal dissipation in rotating solar-type stars
- Is tidal heating sufficient to explain bloated exoplanets? Consistent calculations accounting for finite initial eccentricity
- A Robust Measure of Tidal Circularization in Coeval Binary Populations: The solar-type spectroscopic Binary Population in The Open Cluster M35
- Gaia Data Release 3: Stellar multiplicity, a teaser for the hidden treasure
- Nonlinear mode coupling in rotating stars and the r-mode instability in neutron stars
- Tides in rotating barotropic fluid bodies: the contribution of inertial waves and the role of internal structure
- Heartbeat Stars, Tidally Excited Oscillations, and Resonance Locking
- Observational Evidence for Tidal Interaction in Close Binary Systems
- Binary Population Synthesis
- Gaia Data Release 3. The first Gaia catalogue of eclipsing binary candidates
- Resonant Tidal Excitation of Oscillation Modes in Merging Binary Neutron Stars: Inertial-Gravity Modes
- An Observational Study of Tidal Synchronization in Solar-Type Binary Stars in the Open Clusters M35 and M34
- Convective turbulent viscosity acting on equilibrium tidal flows: new frequency scaling of the effective viscosity
- Tidal Dissipation in WASP-12
- On the Eccentricity Excitation in Post-Main Sequence Binaries
- Tidal dissipation in rotating fluid bodies: the presence of a magnetic field
- On a new formulation for energy transfer between convection and fast tides with application to giant planets and solar type stars
- Tidal Circularization of Binaries by Resonance Locking I: The Importance of the Pre-Main-Sequence
- Tidal dissipation due to inertial waves can explain the circularization periods of solar-type binaries
- Binary companions of evolved stars in APOGEE DR14: Orbital circularization
- On the interaction between fast tides and convection
- Features of Gaia DR3 Spectroscopic Binaries I. Tidal circularization of Main-Sequence Stars
- Testing tidal theory for evolved stars by using red-giant binaries observed by Kepler
- Tidal interactions of a Maclaurin spheroid. II: Resonant excitation of modes by a close, misaligned orbit
- Tidal Dissipation Impact on the Eccentric Onset of Common Envelope Phases in Massive Binary Star Systems
- Tidal Evolution of Eccentric Binaries Driven by Convective Turbulent Viscosity
- Tidally excited gravity waves in the cores of solar-type stars: resonances and critical-layer formation
- An efficient tidal dissipation mechanism via stellar magnetic fields
- Tidal Dissipation in Evolved Low and Intermediate Mass Stars
- On the energetics of a tidally oscillating convective flow
- The coevolution of migrating planets and their pulsating stars through episodic resonance locking
Cited by in corpus (7)
- Rethinking mass transfer: a unified semianalytical framework for circular and eccentric binaries. II. Orbital evolution due to nonconservative mass transfer
- Evidence for the Keplerian orbit of a close companion around a giant star
- The first phase of mass transfer in low-mass binaries: neither stable nor a common envelope
- Tidally driven inertial waves enhance eccentricity damping and spin evolution in planets and stars
- Entering the Wind Roche Lobe Overflow realm in Symbiotic Systems
- The fate of Earth during the Sun's giant phases: New constraints from ab initio tidal modelling and AGB mass loss
- Evolving Low- and Intermediate-Mass Binaries: Departures from Classical Theory