Tidal Wave Breaking in the Eccentric Lead-In to Mass Transfer and Common Envelope Phases
arXiv:2203.01947 · doi:10.3847/1538-4357/ac8aff
Abstract
The evolution of many close binary and multiple star systems is defined by phases of mass exchange and interaction. As these systems evolve into contact, tidal dissipation is not always sufficient to bring them into circular, synchronous orbits. In these cases, encounters of increasing strength occur while the orbit remains eccentric. This paper focuses on the outcomes of close tidal passages in eccentric orbits. Close eccentric passages excite dynamical oscillations about the stars' equilibrium configurations. These tidal oscillations arise from the transfer of orbital energy into oscillation mode energy. When these oscillations reach sufficient amplitude, they break near the stellar surface. The surface wave-breaking layer forms a shock-heated atmosphere that surrounds the object. The continuing oscillations in the star's interior launch shocks that dissipate into the this atmosphere, damping the tidal oscillations. We show that the rapid, nonlinear dissipation associated with the wave breaking of fundamental oscillation modes therefore comes with coupled mass loss to the wave breaking atmosphere. The mass ratio is an important characteristic that defines the relative importance of mass loss and energy dissipation and therefore determines the fate of systems evolving under the influence of nonlinear dissipation. The outcome can be rapid tidal circularization () or runaway mass exchange ().
Published in AAS journals. Animated figure available in the online journal or in the arxiv files
References in corpus (14)
- The NumPy array: a structure for efficient numerical computation
- Binary interaction dominates the evolution of massive stars
- The Athena++ Adaptive Mesh Refinement Framework: Design and Magnetohydrodynamic Solvers
- Tidal dissipation in stars and giant planets
- Mergers and Obliquities in Stellar Triples
- Impact of Massive Binary Star and Cosmic Evolution on Gravitational Wave Observations I: Black Hole-Neutron Star Mergers
- Mass Transfer from Giant Donors
- Chaotic Tides in Migrating Gas Giants: Forming Hot and Transient Warm Jupiters via High-Eccentricity Migration
- Common envelope evolution of eccentric binaries
- Simulating highly-eccentric common envelope jets supernova (CEJSN) impostors
- The Loudest Stellar Heartbeat: Characterizing the most extreme amplitude heartbeat star system
- Tidal Dissipation Impact on the Eccentric Onset of Common Envelope Phases in Massive Binary Star Systems
- Unseen companions of V Hya inferred from periodic ejections
- Polygram Stars: Resonant Tidal Excitation of Fundamental Oscillation Modes in Asynchronous Stellar Coalescence
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