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We investigate whether the elliptical instability is important for tidal dissipation in gaseous planets and stars. In a companion paper, we found that the conventional elliptical instability results in insufficient dissipation because it…

地球与行星天体物理 · 物理学 2015-06-17 Adrian J. Barker , Yoram Lithwick

I present results from the first global hydrodynamical simulations of the elliptical instability in a tidally deformed gaseous planet (or star) with a free surface. The elliptical instability is potentially important for tidal evolution of…

地球与行星天体物理 · 物理学 2016-04-20 Adrian J. Barker

A new element is proposed to play a role in the evolution of extrasolar planetary systems: the tidal (or elliptical) instability. It comes from a parametric resonance and takes place in any rotating fluid whose streamlines are (even…

太阳与恒星天体物理 · 物理学 2011-01-25 David Cébron , Claire Moutou , Michael Le Bars , Patrice Le Gal , R. Fares

I discuss two related nonlinear mechanisms of tidal dissipation that require finite tidal deformations for their operation: the elliptical instability and the precessional instability. Both are likely to be important for the tidal evolution…

地球与行星天体物理 · 物理学 2017-03-24 Adrian J. Barker

We revisit the global modes and instabilities of homogeneous rotating ellipsoidal fluid masses, which are the simplest global models of rotationally and tidally deformed gaseous planets or stars. The tidal flow in a short-period planet may…

地球与行星天体物理 · 物理学 2016-04-20 Adrian J. Barker , Harry J. Braviner , Gordon I. Ogilvie

Several studies have already considered the influence of tides on the evolution of systems composed of a star and a close-in companion to tentatively explain different observations such as the spin-up of some stars with hot Jupiters, the…

太阳与恒星天体物理 · 物理学 2015-06-17 David Cébron , Michael Le Bars , Patrice Le Gal , Claire Moutou , J. Leconte , Alban Sauret

Elliptical instability is due to a parametric resonance of two inertial modes in a fluid velocity field with elliptical streamlines. This flow is a simple model of the motion in a tidally deformed, rotating body. Elliptical instability…

地球与行星天体物理 · 物理学 2015-06-18 N. Clausen , A. Tilgner

The full non-linear evolution of the tidal instability is studied numerically in an ellipsoidal fluid domain relevant for planetary cores applications. Our numerical model, based on a finite element method, is first validated by reproducing…

经典物理 · 物理学 2010-10-01 David Cébron , Michael Le Bars , Justin Leontini , Pierre Maubert , Patrice Le Gal

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

We perform one of the first studies into the nonlinear evolution of tidally excited inertial waves in a uniformly rotating fluid body, exploring a simplified model of the fluid envelope of a planet (or the convective envelope of a…

地球与行星天体物理 · 物理学 2014-03-05 B. Favier , A. J. Barker , C. Baruteau , G. I. Ogilvie

Astrophysical fluid bodies that orbit close to one another induce tidal distortions and flows that are subject to dissipative processes. The spin and orbital motions undergo a coupled evolution over astronomical timescales, which is…

太阳与恒星天体物理 · 物理学 2015-06-19 Gordon I. Ogilvie

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

The presence of celestial companions means that any planet may be subject to three kinds of harmonic mechanical forcing: tides, precession/nutation, and libration. These forcings can generate flows in internal fluid layers, such as fluid…

地球与行星天体物理 · 物理学 2012-03-12 David Cébron , Michael Le Bars , Claire Moutou , Patrice Le Gal

We consider the dynamics of rotationally supported thin galactic disc composed of stars and gas under the influence of external tidal field and derive the coupled differential equations governing the evolution of instabilities. Further…

星系天体物理 · 物理学 2019-05-28 K. Aditya

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

The spin axis of a rotationally deformed planet is forced to precess about its orbital angular momentum vector, due to the tidal gravity of its host star, if these directions are misaligned. This induces internal fluid motions inside the…

地球与行星天体物理 · 物理学 2016-07-27 Adrian J. Barker

The elliptical instability is a generic instability which takes place in any rotating flow whose streamlines are elliptically deformed. Up to now, it has been widely studied in the case of a constant, non-zero differential rotation between…

流体动力学 · 物理学 2012-06-19 David Cébron , Michael Le Bars , J. Noir , J. M. Aurnou

Since 1995, more than 500 extrasolar planets have been discovered orbiting very close to their parent star, where they experience strong tidal interactions. Their orbital evolution depends on the physical mechanisms that cause tidal…

太阳与恒星天体物理 · 物理学 2015-06-05 F. Remus , S. Mathis , J. -P. Zahn

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

Earth-like planets have viscoelastic mantles, whereas giant planets may have viscoelastic cores. The tidal dissipation of such solid regions, gravitationally perturbed by a companion body, highly depends on their rheology and on the tidal…

地球与行星天体物理 · 物理学 2015-06-04 F. Remus , S. Mathis , J. -P. Zahn , V. Lainey
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