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相关论文: Tidal dissipation in stars and giant planets

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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

Tidal dissipation is known as one of the main drivers of the secular evolution of planetary systems. It directly results from dissipative mechanisms that occur in planets and stars' interiors and strongly depends on the structure and…

地球与行星天体物理 · 物理学 2015-07-15 P. Auclair-Desrotour , S. Mathis , C. Le Poncin-Lafitte

Tidal dissipation in stars is one of the key physical mechanisms that drive the evolution of binary and multiple stars. As in the Earth oceans, it corresponds to the resonant excitation of their eigenmodes of oscillation and their damping.…

太阳与恒星天体物理 · 物理学 2015-06-23 P. Auclair-Desrotour , S. Mathis , C. Le Poncin-Lafitte

Tidal dissipation in planetary interiors is one of the key physical mechanisms that drive the evolution of star-planet and planet-moon systems. Tidal dissipation in planets is intrinsically related to their internal structure. In…

地球与行星天体物理 · 物理学 2015-10-21 M. Guenel , S. Mathis , F. Remus

Most transiting planets orbit very close to their parent star, causing strong tidal forces between the two bodies. Tidal interaction can modify the dynamics of the system through orbital alignment, circularisation, synchronisation, and…

天体物理学 · 物理学 2015-05-13 Frederic Pont

Tidal dissipation in planets and stars is one of the key physical mechanisms driving the evolution of star-planet and planet-moon systems. Several signatures of its action are observed in planetary systems thanks to their orbital…

地球与行星天体物理 · 物理学 2015-09-23 P. Auclair-Desrotour , S. Mathis , C. Le Poncin-Lafitte

Tidal dissipation in planetary interiors is one of the key physical mechanisms that drive the evolution of star-planet and planet-moon systems. New constraints are now obtained both in the Solar and exoplanetary systems. Tidal dissipation…

地球与行星天体物理 · 物理学 2014-07-02 Mathieu Guenel , Stéphane Mathis , Françoise Remus

Tidal dissipation in planetary interiors is one of the key physical mechanisms that drive the evolution of star-planet and planet-moon systems. New constraints are now obtained both in the Solar and exoplanetary systems. Tidal dissipation…

地球与行星天体物理 · 物理学 2014-10-21 M. Guenel , S. Mathis , F. Remus

The discovery of many giant planets in close-in orbits and the effect of planetary and stellar tides in their subsequent orbital decay have been extensively studied in the context of planetary formation and evolution theories. Planets…

地球与行星天体物理 · 物理学 2019-11-28 Jaime A. Alvarado-Montes , Carolina García-Carmona

Planetary systems evolve over secular time scales. One of the key mechanisms that drive this evolution is tidal dissipation. Submitted to tides, stellar and planetary fluid layers do not behave like rocky ones. Indeed, they are the place of…

地球与行星天体物理 · 物理学 2015-10-05 Pierre Auclair-Desrotour , Stéphane Mathis , Christophe Le Poncin-Lafitte

Tidal interactions between moons and planets can have major effects on the orbits, spins, and thermal evolution of the moons. In the Saturn system, tidal dissipation in the planet transfers angular momentum from Saturn to the moons, causing…

地球与行星天体物理 · 物理学 2024-02-09 Jim Fuller , Tristan Guillot , Stephane Mathis , Carl Murray

To first approximation, a binary system conserves its angular momentum while it evolves to its state of minimum kinetic energy: circular orbit, all spins aligned, and components rotating in synchronism with the orbital motion. The pace at…

天体物理学 · 物理学 2009-11-13 Jean-Paul Zahn

As the observed occurrence for planets or stellar companions orbiting low and intermediate-mass evolved stars is increasing, so does the importance of understanding and evaluating the strength of their interactions. One of the fundamental…

太阳与恒星天体物理 · 物理学 2024-10-23 M. Esseldeurs , S. Mathis , L. Decin

Recent discoveries of several transiting planets with clearly non-zero eccentricities and some large inclinations started changing the simple picture of close-in planets having circular and well-aligned orbits. Two major scenarios to form…

地球与行星天体物理 · 物理学 2015-05-19 Soko Matsumura , Stanton J. Peale , Frederic A. Rasio

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

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

It is debated whether close-in giant planets can form in-situ and if not, which mechanisms are responsible for their migration. One of the observable tests for migration theories is the current value of the angle between the stellar…

地球与行星天体物理 · 物理学 2018-10-17 Cilia Damiani , Stéphane Mathis

[Abridged] Tides may play an important role in determining the observed distributions of mass, orbital period, and eccentricity of the extrasolar planets. In addition, tidal interactions between giant planets in the solar system and their…

天体物理学 · 物理学 2009-11-10 G. I. Ogilvie , D. N. C. Lin

In close binary stars, the tidal excitation of pulsations typically dissipates energy, causing the system to evolve towards a circular orbit with aligned and synchronized stellar spins. However, for stars with self-excited pulsations, we…

太阳与恒星天体物理 · 物理学 2020-12-02 Jim Fuller

Gas giant planets are differentially rotating magnetic objects that have strong and complex interactions with their environment. In our Solar system, they interact with their numerous moons while exoplanets with very short orbital periods…

地球与行星天体物理 · 物理学 2023-10-03 Hachem Dhouib , Clément Baruteau , Stéphane Mathis , Florian Debras , Aurélie Astoul , Michel Rieutord
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