Semidiurnal thermal tides in asynchronously rotating hot Jupiters
arXiv:1801.07519 · doi:10.1051/0004-6361/201731683
Abstract
Thermal tides can torque the atmosphere of hot Jupiters into asynchronous rotation, while these planets are usually assumed to be locked into spin-orbit synchronization with their host star. In this work, our goal is to characterize the tidal response of a rotating hot Jupiter to the tidal semidiurnal thermal forcing of its host star, by identifying the structure of tidal waves responsible for variation of mass distribution, their dependence on the tidal frequency and their ability to generate strong zonal flows. We develop an ab initio global modeling that generalizes the early approach of Arras & Socrates (2010) to rotating and non-adiabatic planets. We derive analytically the torque exerted on the body and the associated timescales of evolution, as well as the equilibrium tidal response of the atmosphere in the zero-frequency limit. Finally, we integrate numerically the equations of thermal tides for three cases including dissipation and rotation step by step. The resonances associated with tidally generated gravito-inertial waves amplify significantly the resulting tidal torque in the range 1-30 days. This torque can drive globally the atmosphere into asynchronous rotation, as its sign depends on the tidal frequency. The resonant behaviour of the tidal response is enhanced by rotation, which couples the forcing to several Hough modes in the general case, while the radiative cooling tends to regularize it and diminish its amplitude.
Accepted for publication in Astronomy & Astrophysics, 23 pages, 12 figures
References in corpus (7)
- Asynchronous rotation of Earth-mass planets in the habitable zone of lower-mass stars
- New constraints on Saturn's interior from Cassini astrometric data
- 3D Structures of equatorial waves and the resulting superrotation in the atmosphere of a tidally locked hot Jupiter
- The rotation of planets hosting atmospheric tides: from Venus to habitable super-earths
- Atmospheric tides in Earth-like planets
- Period spacing of gravity modes strongly affected by rotation. Going beyond the traditional approximation
- Diurnal Thermal Tides in a Non-synchronized Hot Jupiter
Cited by in corpus (10)
- A Significant Increase in Detection of High-Resolution Emission Spectra Using a Three-Dimensional Atmospheric Model of a Hot Jupiter
- Grid of Pseudo-2D Chemistry Models for Tidally-Locked Exoplanets. I. The Role of Vertical and Horizontal Mixing
- Measuring Tidal Dissipation in Giant Planets from Tidal Circularization
- A generic frequency dependence for the atmospheric tidal torque of terrestrial planets
- Overstable Convective Modes of Rotating Hot Jupiters
- Modeling the Thermal Bulge of A Hot Jupiter with the Two-Stream Approximation
- Tidal Oscillations of Rotating Hot Jupiters
- Thermal Tides in Rotating Hot Jupiters
- Thermally Driven Angular Momentum Transport in Hot Jupiters
- The Feasibility of Asynchronous Rotation via Thermal Tides for Diverse Atmospheric Compositions