It takes a village to raise a tide: nonlinear multiple-mode coupling and mode identification in KOI-54
arXiv:1308.0016 · doi:10.1093/mnras/stu335
Abstract
We explore the tidal excitation of stellar modes in binary systems using Kepler observations of the remarkable eccentric binary KOI-54 (HD 187091; KIC 8112039), which displays strong ellipsoidal variation as well as a variety of linear and nonlinear pulsations. We report the amplitude and phase of over 120 harmonic and anharmonic pulsations in the system. We use pulsation phases to determine that the two largest-amplitude pulsations, the 90th and 91st harmonics, most likely correspond to axisymmetric m=0 modes in both stars, and thus cannot be responsible for resonance locks as had been recently proposed. We find evidence that the amplitude of at least one of these two pulsations is decreasing with a characteristic timescale of ~100 yr. We also use the pulsations' phases to confirm the onset of the traveling wave regime for harmonic pulsations with frequencies <~50 Omega_orbit, in agreement with theoretical expectations. We present evidence that many pulsations that are not harmonics of the orbital frequency correspond to modes undergoing simultaneous nonlinear coupling to multiple linearly driven parent modes. Since coupling among multiple modes can lower the threshold for nonlinear interactions, nonlinear phenomena may be easier to observe in highly eccentric systems, where broader arrays of driving frequencies are available. This may help to explain why the observed amplitudes of the linear pulsations are much smaller than the theoretical threshold for decay via three-mode coupling.
Accepted for publication in MNRAS. Only minor corrections. 16 Pages; 8 Figures; 3 Tables
References in corpus (1)
Cited by in corpus (26)
- Tidal dissipation in stars and giant planets
- Heartbeat Stars, Tidally Excited Oscillations, and Resonance Locking
- Orbital decay of hot Jupiters due to nonlinear tidal dissipation within solar-type hosts
- Radial velocity monitoring of Kepler heartbeat stars
- The Most Massive Heartbeat: An In-depth Analysis of ι Orionis
- KIC 4142768: An Evolved Gamma Doradus/Delta Scuti Hybrid Pulsating Eclipsing Binary with Tidally Excited Oscillations
- KIC 3749404: A heartbeat Star with Rapid Apsidal Advance Indicative of a Tertiary Component
- Tidally Induced Pulsations in Kepler Eclipsing Binary KIC 3230227
- Tidally Excited Oscillations in Heartbeat Binary Stars: Pulsation Phases and Mode Identification
- HD 183648: a Kepler eclipsing binary with anomalous ellipsoidal variations and a pulsating component
- Accelerated Tidal Circularization Via Resonance Locking in KIC 8164262
- Know the Planet, Know the Star: Precise Stellar Densities from Kepler Transit Light Curves
- Planet-Induced Stellar Pulsations in HAT-P-2's Eccentric System
- Lupi: measuring the heartbeat of a doubly-magnetic massive binary with BRITE-Constellation
- A New Window to Tidal Asteroseismology: Non-linearly Excited Stellar Eigenmodes and the Period Spacing Pattern in KOI-54
- Tidal Asteroseismology: Possible Evidence of Non-linear Mode Coupling in an Equilibrium State in Kepler Eclipsing Binary KIC 3230227
- BRITE-Constellation reveals evidence for pulsations in the enigmatic binary Carinae
- Study of Chemically Peculiar Stars-I : High-resolution Spectroscopy and K2 Photometry of Am Stars in the Region of M44
- Dynamical Tides in Eccentric Binaries Containing Massive Main-Sequence Stars: Analytical Expressions
- Detection of Tidally Excited Oscillations in Kepler Heartbeat Stars
- The Measurement of Dynamic Tidal Contribution to Apsidal Motion in Heartbeat Star KIC 4544587
- Non-linear Three-mode Coupling of Gravity Modes in Rotating Slowly Pulsating B Stars: Stationary Solutions and Modeling Potential
- KIC 7914906: An Eclipsing Heartbeat Star with Tidally Excited Oscillations and Gamma Doradus/Delta Scuti Hybrid Pulsations
- Heartbeat Stars Recognition Based on Recurrent Neural Networks: Method and Validation
- Tidally excited oscillations in MACHO 80.7443.1718: Changing amplitudes and frequencies, high-frequency tidally excited mode, and a decrease in the orbital period
- Orbital and Pulsation Analysis of 42 Heartbeat Stars Discovered in TESS Data