4.7 Article

NONLINEAR TIDES IN CLOSE BINARY SYSTEMS

Journal

ASTROPHYSICAL JOURNAL
Volume 751, Issue 2, Pages -

Publisher

IOP PUBLISHING LTD
DOI: 10.1088/0004-637X/751/2/136

Keywords

binaries: close; hydrodynamics; planetary systems; stars: interiors; stars: oscillations; waves

Funding

  1. NSF [AST-0908873]
  2. NASA [NNX09AF98G]
  3. University of Virginia
  4. Miller Institute for Basic Research in Science, University of California Berkeley
  5. David and Lucile Packard Foundation
  6. NASA [NNX09AF98G, 118642] Funding Source: Federal RePORTER

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We study the excitation and damping of tides in close binary systems, accounting for the leading-order nonlinear corrections to linear tidal theory. These nonlinear corrections include two distinct physical effects: three-mode nonlinear interactions, i.e., the redistribution of energy among stellar modes of oscillation, and nonlinear excitation of stellar normal modes by the time-varying gravitational potential of the companion. This paper, the first in a series, presents the formalism for studying nonlinear tides and studies the nonlinear stability of the linear tidal flow. Although the formalism we present is applicable to binaries containing stars, planets, and/or compact objects, we focus on non-rotating solar-type stars with stellar or planetary companions. Our primary results include the following: (1) The linear tidal solution almost universally used in studies of binary evolution is unstable over much of the parameter space in which it is employed. More specifically, resonantly excited internal gravity waves in solar-type stars are nonlinearly unstable to parametric resonance for companion masses M' greater than or similar to 10-100M(circle dot) at orbital periods P approximate to 1-10 days. The nearly static equilibrium tidal distortion is, however, stable to parametric resonance except for solar binaries with P less than or similar to 2-5 days. (2) For companion masses larger than a few Jupiter masses, the dynamical tide causes short length scale waves to grow so rapidly that they must be treated as traveling waves, rather than standing waves. (3) We show that the global three-wave treatment of parametric instability typically used in the astrophysics literature does not yield the fastest-growing daughter modes or instability threshold in many cases. We find a form of parametric instability in which a single parent wave excites a very large number of daughter waves (N approximate to 10(3)[P/10 days] for a solar-type star) and drives them as a single coherent unit with growth rates that are a factor of approximate to N faster than the standard three-wave parametric instability. These are local instabilities viewed through the lens of global analysis; the coherent global growth rate follows local rates in the regions where the shear is strongest. In solar-type stars, the dynamical tide is unstable to this collective version of the parametric instability for even sub-Jupiter companion masses with P less than or similar to a month. (4) Independent of the parametric instability, the dynamical and equilibrium tides excite a wide range of stellar p-modes and g-modes by nonlinear inhomogeneous forcing; this coupling appears particularly efficient at draining energy out of the dynamical tide and may be more important than either wave breaking or parametric resonance at determining the nonlinear dissipation of the dynamical tide.

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Hang Yu, Nevin N. Weinberg, Phil Arras

Summary: Research suggests that rapid circularization of hot Jupiters through the high-eccentricity migration channel can be triggered by nonlinear mode interactions, potentially increasing the formation rate of these planets. This mechanism could help mitigate the discrepancies between observed and predicted occurrence rates of close-in gas giants compared to those farther from their stars.

ASTROPHYSICAL JOURNAL (2021)

Article Astronomy & Astrophysics

Damping of Oscillations in Red Giants by Resonant Mode Coupling

Nevin N. Weinberg, Phil Arras, Debaditya Pramanik

Summary: The study examines the changes in oscillation modes of red giants under nonlinear effects, showing that nonlinear interactions can significantly lower the energy of gravity-dominated mixed modes while having a mild influence on pressure-dominated mixed modes. Additionally, the dipole-mode visibility of highly evolved red giants can be suppressed by 50%-80% compared to linear theory.

ASTROPHYSICAL JOURNAL (2021)

Article Astronomy & Astrophysics

Tidal Evolution and Diffusive Growth During High-eccentricity Planet Migration: Revisiting the Eccentricity Distribution of Hot Jupiters

Hang Yu, Nevin N. Weinberg, Phil Arras

Summary: This study extends the previous model by incorporating additional factors to better simulate the coupled evolution of planetary modes and orbits during high-eccentricity tidal migration. The study finds that the semi-major axis shrinks by nearly ten times over a period of approximately 10^4 years, while the diffusive growth of modes terminates at a high eccentricity.

ASTROPHYSICAL JOURNAL (2022)

Article Astronomy & Astrophysics

Beyond the linear tide: impact of the non-linear tidal response of neutron stars on gravitational waveforms from binary inspirals

Hang Yu, Nevin N. Weinberg, Phil Arras, James Kwon, Tejaswi Venumadhav

Summary: Tidal interactions in binary neutron stars lead to an additional phase shift in their gravitational wave signals, which can be accurately modeled by incorporating non-linear corrections due to hydrodynamic three-and four-mode interactions. This improves the accuracy and explanatory power of waveform models. Non-linear fluid effects can enhance the tidal phase shift by about 1 radian at a GW frequency of 1000 Hz, making them important in interpreting numerical relativity results and constructing waveform models for GW detectors.

MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY (2023)

Article Astronomy & Astrophysics

Nonlinear Mixed Modes in Red Giants

Nevin N. Weinberg, Phil Arras

ASTROPHYSICAL JOURNAL (2019)

Article Astronomy & Astrophysics

Tidal Dissipation in WASP-12

Nevin N. Weinberg, Meng Sun, Phil Arras, Reed Essick

ASTROPHYSICAL JOURNAL LETTERS (2017)

Article Astronomy & Astrophysics

Impact of the tidal p-g instability on the gravitational wave signal from coalescing binary neutron stars

Reed Essick, Salvatore Vitale, Nevin N. Weinberg

PHYSICAL REVIEW D (2016)

Article Astronomy & Astrophysics

The Full Kepler Phase Curve of the Eclipsing Hot White Dwarf Binary System KOI-964

Ian Wong, Avi Shporer, Juliette C. Becker, Benjamin J. Fulton, Travis A. Berger, Nevin N. Weinberg, Phil Arras, Andrew W. Howard, Bjorn Benneke

ASTRONOMICAL JOURNAL (2020)

Article Astronomy & Astrophysics

Super-Eddington Winds from Type I X-Ray Bursts

Hang Yu, Nevin N. Weinberg

ASTROPHYSICAL JOURNAL (2018)

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