Does magnetic field impact tidal dynamics inside the convective zone of low-mass stars along their evolution?
arXiv:1909.10490 · doi:10.1051/0004-6361/201936477
Abstract
The dissipation of the kinetic energy of wave-like tidal flows within the convective envelope of low-mass stars is one of the key physical mechanisms that shapes the orbital and rotational dynamics of short-period exoplanetary systems. Although low-mass stars are magnetically active objects, the question of how the star's magnetic field impacts large-scale tidal flows and the excitation, propagation and dissipation of tidal waves still remains open. Our goal is to investigate the impact of stellar magnetism on the forcing of tidal waves, and their propagation and dissipation in the convective envelope of low-mass stars as they evolve. We have estimated the amplitude of the magnetic contribution to the forcing and dissipation of tidally induced magneto-inertial waves throughout the structural and rotational evolution of low-mass stars (from M to F-type). For this purpose, we have used detailed grids of rotating stellar models computed with the stellar evolution code STAREVOL. The amplitude of dynamo-generated magnetic fields is estimated via physical scaling laws at the base and the top of the convective envelope. We find that the large-scale magnetic field of the star has little influence on the excitation of tidal waves in the case of nearly-circular orbits and coplanar hot-Jupiter planetary systems, but that it has a major impact on the way waves are dissipated. Our results therefore indicate that a full magneto-hydrodynamical treatment of the propagation and dissipation of tidal waves is needed to properly assess the impact of star-planet tidal interactions throughout the evolutionary history of low-mass stars hosting short-period massive planets.
16 pages, 12 figures, accepted for publication in Astronomy & Astrophysics
References in corpus (23)
- Tidal dissipation in stars and giant planets
- Stellar magnetism: empirical trends with age and rotation
- The Mass-Dependence of Angular Momentum Evolution in Sun-Like Stars
- Improved angular momentum evolution model for solar-like stars II. Exploring the mass dependence
- Solar-type dynamo behaviour in fully convective stars without a tachocline
- Magnetic fields and accretion flows on the classical T Tauri star V2129 Oph
- Uniform Atmospheric Retrieval Analysis of Ultracool Dwarfs I: Characterizing Benchmarks, Gl570D and HD3651B
- Global Seismology of the Sun
- Formation of close in Super-Earths \& Mini-Neptunes: Required Disk Masses \& Their Implications
- Reconciling solar and stellar magnetic cycles with nonlinear dynamo simulations
- Estimating magnetic filling factors from Zeeman-Doppler magnetograms
- A comparison of gyrochronological and isochronal age estimates for transiting exoplanet host stars
- Tidal dissipation in rotating low-mass stars and implications for the orbital evolution of close-in planets I. From the PMS to the RGB at solar metallicity
- The Solar-Stellar Connection
- Transiting exoplanets from the CoRoT space mission XIV. CoRoT-11b: a transiting massive "hot-Jupiter" in a prograde orbit around a rapidly rotating F-type star
- Discrepancies between isochrone fitting and gyrochronology for exoplanet host stars?
- Tidal dissipation in rotating fluid bodies: the presence of a magnetic field
- A comprehensive examination of the Eps Eri system -- Verification of a 4 micron narrow-band high-contrast imaging approach for planet searches
- Tidal dissipation in rotating low-mass stars and implications for the orbital evolution of close-in massive planets. II. Effect of stellar metallicity
- TASTE IV. Refining ephemeris and orbital parameters for HAT-P-20b and WASP-1b
- Origin and evolution of magnetic fields in PMS stars : influence of rotation and structural changes
- Interplay of tidal evolution and stellar wind braking in the rotation of stars hosting massive close-in planets
- Coronal X-ray emission and planetary irradiation in HD 209458
Cited by in corpus (7)
- Tidal dissipation in evolving low-mass and solar-type stars with predictions for planetary orbital decay
- The effects of nonlinearities on tidal flows in the convective envelopes of rotating stars and planets in exoplanetary systems
- The complex interplay between tidal inertial waves and zonal flows in differentially rotating stellar and planetary convective regions I. Free waves
- How do tidal waves interact with convective vortices in rapidly-rotating planets and stars?
- Tidal excitation of autoresonant oscillations in stars with close-by planets
- Interplay between tidal flows and magnetic fields in nonlinear simulations of stellar and planetary convective envelopes
- Observational imprints of tidal internal gravity wave dissipation in star-planet systems