Magnetic and tidal migration of close-in planets: Influence of secular evolution on their population

被引:25
作者
Ahuir, J. [1 ]
Strugarek, A. [1 ]
Brun, A. -S. [1 ]
Mathis, S. [1 ]
机构
[1] Univ Paris, Dept Astrophys AIM, CEA DRF IRFU, CNRS INSU,Univ Paris Saclay, F-91191 Gif Sur Yvette, France
基金
欧洲研究理事会;
关键词
planet-star interactions; stars: evolution; stars: solar-type; stars: rotation; LOW-MASS STARS; ANGULAR-MOMENTUM EVOLUTION; INTERNAL WAVE BREAKING; SOLAR-TYPE STARS; ROTATIONAL EVOLUTION; ORBITAL EVOLUTION; STELLAR EVOLUTION; EQUILIBRIUM TIDE; DYNAMICAL TIDE; ENERGY FLUXES;
D O I
10.1051/0004-6361/202040173
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Context. Over the last two decades, a large population of close-in planets has been detected around a wide variety of host stars. Such exoplanets are likely to undergo planetary migration through magnetic and tidal interactions.Aims. We aim to follow the orbital evolution of a planet along the structural and rotational evolution of its host star, simultaneously taking into account tidal and magnetic torques, in order to explain some properties of the distribution of observed close-in planets.Methods. We rely on a numerical model of a coplanar circular star-planet system called ESPEM, which takes into account stellar structural changes, wind braking, and star-planet interactions. We browse the parameter space of the star-planet system configurations and assess the relative influence of magnetic and tidal torques on its secular evolution. We then synthesize star-planet populations and compare their distribution in orbital and stellar rotation periods to Kepler satellite data.Results. Magnetic and tidal interactions act together on planetary migration and stellar rotation. Furthermore, both interactions can dominate secular evolution depending on the initial configuration of the system and the evolutionary phase considered. Indeed, tidal effects tend to dominate for high stellar and planetary masses as well as low semi-major axis; they also govern the evolution of planets orbiting fast rotators while slower rotators evolve essentially through magnetic interactions. Moreover, three populations of star-planet systems emerge from the combined action of both kinds of interactions. First, systems undergoing negligible migration define an area of influence of star-planet interactions. For sufficiently large planetary magnetic fields, the magnetic torque determines the extension of this region. Next, planets close to fast rotators migrate efficiently during the pre-main sequence, which engenders a depleted region at low rotation and orbital periods. Then, the migration of planets close to slower rotators, which happens during the main sequence, may lead to a break in gyrochronology for high stellar and planetary masses. This also creates a region at high rotation periods and low orbital periods not populated by star-planet systems. We also find that star-planet interactions significantly impact the global distribution in orbital periods by depleting more planets for higher planetary masses and planetary magnetic fields. However, the global distribution in stellar rotation periods is marginally affected, as around 0.5% of G-type stars and 0.1% of K-type stars may spin up because of planetary engulfment. More precisely, star-planet magnetic interactions significantly affect the distribution of super-Earths around stars with a rotation period higher than around 5 days, which improves the agreement between synthetic populations and observations at orbital periods of less than 1 day. Tidal effects for their part shape the distribution of giant planets.
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页数:27
相关论文
共 134 条
  • [91] Tidal Dissipation in Stars and Giant Planets
    Ogilvie, Gordon I.
    [J]. ANNUAL REVIEW OF ASTRONOMY AND ASTROPHYSICS, VOL 52, 2014, 52 : 171 - 210
  • [92] Tides in rotating barotropic fluid bodies: the contribution of inertial waves and the role of internal structure
    Ogilvie, Gordon I.
    [J]. MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2013, 429 (01) : 613 - 632
  • [93] Rotational mixing in low-mass stars - II. Self-consistent models of Pop II RGB stars
    Palacios, A.
    Charbonnel, C.
    Talon, S.
    Siess, L.
    [J]. ASTRONOMY & ASTROPHYSICS, 2006, 453 (01) : 261 - 278
  • [94] DYNAMICS OF THE INTERPLANETARY GAS AND MAGNETIC FIELDS
    PARKER, EN
    [J]. ASTROPHYSICAL JOURNAL, 1958, 128 (03) : 664 - 676
  • [95] Pont F, 2009, MNRAS, V396, P3
  • [96] Stellar wind regimes of close-in extrasolar planets
    Preusse, S
    Kopp, A
    Büchner, J
    Motschmann, U
    [J]. ASTRONOMY & ASTROPHYSICS, 2005, 434 (03): : 1191 - 1200
  • [97] Star-planet interactions II. Is planet engulfment the origin of fast rotating red giants?
    Privitera, Giovanni
    Meynet, Georges
    Eggenherger, Patrick
    Vidotto, Aline A.
    Villaver, Eva
    Bianda, Michele
    [J]. ASTRONOMY & ASTROPHYSICS, 2016, 593
  • [98] Star-planet interactions I. Stellar rotation and planetary orbits
    Privitera, Giovanni
    Meynet, Georges
    Eggenberger, Patrick
    Vidotto, Aline A.
    Villaver, Eva
    Bianda, Michele
    [J]. ASTRONOMY & ASTROPHYSICS, 2016, 591
  • [99] Star-planet interactions V. Dynamical and equilibrium tides in convective zones
    Rao, Suvrat
    Meynet, Georges
    Eggenberger, Patrick
    Haemmerle, Lionel
    Privitera, Giovanni
    Georgy, Cyril
    Ekstrom, Sylvia
    Mordasini, Christoph
    [J]. ASTRONOMY & ASTROPHYSICS, 2018, 618
  • [100] RADIUS-DEPENDENT ANGULAR MOMENTUM EVOLUTION IN LOW-MASS STARS. I
    Reiners, Ansgar
    Mohanty, Subhanjoy
    [J]. ASTROPHYSICAL JOURNAL, 2012, 746 (01)