Interplay of tidal evolution and stellar wind braking in the rotation of stars hosting massive close-in planets

S. Ferraz-Mello, M. Tadeu dos Santos, H. Folonier, Sz. Csizmadia, J.-D. do Nascimento Jr, M.Pätzold
(Submitted on 15 Mar 2015)
This paper deals with the application of the creep tide theory (Ferraz-Mello, Cel. Mech. Dyn. Astron. vol. 116, 109, 2013) to the study of the rotation of stars hosting massive close-in planets. The stars have nearly the same tidal relaxation factors as gaseous planets and the evolution of their rotation is similar to that of close-in hot Jupiters: they tidally evolve towards a stationary solution. However, stellar rotation may also be affected by stellar wind braking. Thus, while the rotation of a quiet host star evolves towards a stationary attractor with a frequency (1+6e2) times the orbital mean-motion of the companion, the continuous loss of angular momentum in an active star displaces the stationary solution towards slower values: Active host stars with big close-in companions tend to have rotational periods larger than the orbital periods of their companions. The study of some hypothetical examples shows that because of tidal evolution, the rules of gyrochronology cannot be used to estimate the age of one system with a large close-in companion, no matter if the star is quiet or active, if the current semi-major axis of the companion is smaller than 0.03–0.04 AU. Details on the evolution of the systems: CoRoT LRc06E21637, CoRoT-27, Kepler-75, CoRoT-2, CoRoT-18, CoRoT-14 and on hypothetical systems with 1–4 M_Jup planets in orbit around a star similar to the Sun are given.
Comments:22 pages, 8 figures Accepted for publication in ApJ
Subjects:Earth and Planetary Astrophysics (astro-ph.EP)
Cite as:arXiv:1503.04369 [astro-ph.EP]
(or arXiv:1503.04369v1 [astro-ph.EP] for this version)
Submission history
From: Sylvio Ferraz-Mello
[v1] Sun, 15 Mar 2015 01:01:27 GMT (1209kb)