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Tidal interactions in close star-planet or binary star systems may excite inertial waves (their restoring force is the Coriolis force) in the convective region of the stars. The dissipation of these waves plays a prominent role in the…

太阳与恒星天体物理 · 物理学 2016-12-16 Mathieu Guenel , Stéphane Mathis , Clément Baruteau , Michel Rieutord

We study how stably stratified or semi-convective layers alter tidal dissipation rates associated with the generation of inertial, gravito-inertial, interfacial and surface gravity waves in rotating giant planets. We explore scenarios in…

地球与行星天体物理 · 物理学 2023-11-07 Christina M. Pontin , Adrian J. Barker , Rainer Hollerbach

Turbulent friction in convective regions in stars and planets is one of the key physical mechanisms that drive the dissipation of the kinetic energy of tidal flows in their interiors and the evolution of their systems. This friction acts…

太阳与恒星天体物理 · 物理学 2016-07-20 Stéphane Mathis , Pierre Auclair-Desrotour , Mathieu Guenel , Florian Gallet , Christophe Le Poncin-Lafitte

Quantifying tidal interactions in close-in two-body systems is of prime interest since they have a crucial impact on the architecture and on the rotational history of the bodies. Various studies have shown that the dissipation of tides in…

太阳与恒星天体物理 · 物理学 2021-03-24 A. Astoul , J. Park , S. Mathis , C. Baruteau , F. Gallet

Star-planet tidal interactions may result in the excitation of inertial waves in the convective region of stars. Their dissipation plays a prominent role in the long-term orbital evolution of short-period planets. If the star is assumed to…

太阳与恒星天体物理 · 物理学 2014-10-14 M. Guenel , C. Baruteau , S. Mathis , M. Rieutord

In close exoplanetary systems, tidal interactions drive orbital and spin evolution of planets and stars over long timescales. Tidally-forced inertial waves (restored by the Coriolis acceleration) in the convective envelopes of low-mass…

太阳与恒星天体物理 · 物理学 2022-08-17 A. Astoul , A. J. Barker

Tidal dissipation in star-planet systems can occur through various mechanisms, among which is the elliptical instability. This acts on elliptically deformed equilibrium tidal flows in rotating fluid planets and stars, and excites inertial…

地球与行星天体物理 · 物理学 2023-07-12 Nils B. de Vries , Adrian J. Barker , Rainer Hollerbach

Star-planet tidal interactions play a significant role in the dynamical evolution of close-in planetary systems. We investigate the propagation and dissipation of tidal inertial waves in a stellar/planetary convective region. We take into…

太阳与恒星天体物理 · 物理学 2017-10-25 A. Astoul , S. Mathis , C. Baruteau , Q. André

Tidal interactions are important in driving spin and orbital evolution in planetary and stellar binary systems, but the fluid dynamical mechanisms responsible remain incompletely understood. One key mechanism is the interaction between…

太阳与恒星天体物理 · 物理学 2019-12-10 Craig D. Duguid , Adrian J. Barker , Chris A. Jones

We perform direct numerical simulations of the tidal encounter of a rotating planet on a highly eccentric or parabolic orbit about a central star formulated as an initial value problem. This approach enables us to extend previous work of…

太阳与恒星天体物理 · 物理学 2015-05-19 J. C. B. Papaloizou , P. B. Ivanov

Tidal interactions influence the orbital motions of binary star systems and extrasolar planets alike. Tides also affect stellar and planetary rotation rates. We demonstrate that in addition to altering spin synchronization and…

太阳与恒星天体物理 · 物理学 2026-01-13 Janosz W. Dewberry

In close two-body astrophysical systems, such as binary stars or Hot Jupiter systems, tidal interactions often drive dynamical evolution on secular timescales. Many host stars and presumably giant gaseous planets feature a convective…

太阳与恒星天体物理 · 物理学 2021-09-20 A. Astoul , A. J. Barker

In this chapter, we explore how gravitational interactions drive turbulent flows inside planetary cores and provide an interesting alternative to convection to explain dynamo action and magnetic fields around terrestrial bodies. In the…

地球物理 · 物理学 2019-07-04 Thomas Le Reun , Michael Le Bars

Stars and planets in close systems are magnetised but the influence of magnetic fields on their tidal responses (and vice versa) and dissipation rates has not been well explored. We present exploratory nonlinear magnetohydrodynamical (MHD)…

太阳与恒星天体物理 · 物理学 2025-07-18 Aurélie Astoul , Adrian J. Barker

We study tidal dissipation in stars with masses in the range $0.1-1.6 M_\odot$ throughout their evolution, including turbulent effective viscosity acting on equilibrium tides and inertial waves in convection zones, and internal gravity…

地球与行星天体物理 · 物理学 2020-09-09 Adrian J. Barker

We simulate the nonlinear hydrodynamical evolution of tidally-excited inertial waves in convective envelopes of rotating stars and giant planets modelled as spherical shells containing incompressible, viscous and adiabatically-stratified…

太阳与恒星天体物理 · 物理学 2023-09-07 Aurélie Astoul , Adrian J. Barker

Tidal dissipation may be important for the internal evolution as well as the orbits of short-period massive planets--hot Jupiters. We revisit a mechanism proposed by Ogilvie and Lin for tidal forcing of inertial waves, which are…

天体物理学 · 物理学 2011-02-11 Jeremy Goodman , Claire Lackner

Turbulent convection is thought to act as an effective viscosity ($\nu_E$) in damping tidal flows in stars and giant planets. However, the efficiency of this mechanism has long been debated, particularly in the regime of fast tides, when…

地球与行星天体物理 · 物理学 2020-07-27 Craig D. Duguid , Adrian J. Barker , Chris A. Jones

The interaction between equilibrium tides and convection in stellar envelopes is often considered important for tidal evolution in close binary and extrasolar planetary systems. Its efficiency for fast tides has however long been…

太阳与恒星天体物理 · 物理学 2021-07-21 Adrian J. Barker , Aurélie A. V. Astoul

Gravitational tidal interactions drive long-term rotational and orbital evolution in planetary systems, in multiple (particularly close binary) star systems and in planetary moon systems. Dissipation of tidal flows in Earth's oceans is…

地球与行星天体物理 · 物理学 2025-04-16 Adrian J. Barker
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