Atmospheric Dynamics of Short-period Extra Solar Gas Giant Planets I: Dependence of Night-Side Temperature on Opacity
arXiv:0704.3269 · doi:10.1086/523786
Abstract
More than two dozen short-period Jupiter-mass gas giant planets have been discovered around nearby solar-type stars in recent years, several of which undergo transits, making them ideal for the detection and characterization of their atmospheres. Here we adopt a three-dimensional radiative hydrodynamical numerical scheme to simulate atmospheric circulation on close-in gas giant planets. In contrast to the conventional GCM and shallow water algorithms, this method does not assume quasi hydrostatic equilibrium and it approximates radiation transfer from optically thin to thick regions with flux-limited diffusion. In the first paper of this series, we consider synchronously-spinning gas giants. We show that a full three-dimensional treatment, coupled with rotationally modified flows and an accurate treatment of radiation, yields a clear temperature transition at the terminator. Based on a series of numerical simulations with varying opacities, we show that the night-side temperature is a strong indicator of the opacity of the planetary atmosphere. Planetary atmospheres that maintain large, interstellar opacities will exhibit large day-night temperature differences, while planets with reduced atmospheric opacities due to extensive grain growth and sedimentation will exhibit much more uniform temperatures throughout their photosphere's. In addition to numerical results, we present a four-zone analytic approximation to explain this dependence.
35 Pages, 13 Figures
References in corpus (7)
- Detection of Thermal Emission from an Extrasolar Planet
- The phase-dependent Infrared brightness of the extrasolar planet upsilon Andromedae b
- A Spectrum of an Extrasolar Planet
- Spitzer Transit and Secondary Eclipse Photometry of GJ 436b
- Theory for the Secondary Eclipse Fluxes, Spectra, Atmospheres, and Light Curves of Transiting Extrasolar Giant Planets
- Hot Nights on Extrasolar Planets: Mid-IR Phase Variations of Hot Jupiters
- Dust in Brown Dwarfs IV. Dust formation and driven turbulence on mesoscopic scales
Cited by in corpus (16)
- Can TiO Explain Thermal Inversions in the Upper Atmospheres of Irradiated Giant Planets?
- Multi-Wavelength Constraints on the Day-Night Circulation Patterns of HD 189733b
- Atmospheric Circulation of Hot Jupiters: Three-dimensional circulation models of HD 209458b and HD 189733b with Simplified Forcing
- Atmospheric Circulation of Hot Jupiters: A Shallow Three-Dimensional Model
- On the Absorption and Redistribution of Energy in Irradiated Planets
- HD 17156b: A Transiting Planet with a 21.2 Day Period and an Eccentric Orbit
- Hydrodynamic Simulations of Unevenly Irradiated Jovian Planets
- Coupled Evolution with Tides of the Radius and Orbit of Transiting Giant Planets: General Results
- Interaction of Close-in Planets with the Magnetosphere of their Host Stars I: Diffusion, Ohmic Dissipation of Time Dependent Field, Planetary Inflation, and Mass Loss
- Optical Observations of SAX J1808.4-3658 During Quiescence
- Parameters and Predictions for the Long-Period Transiting Planet HD 17156b
- On Signatures of Atmospheric Features in Thermal Phase Curves of Hot Jupiters
- Diurnal Thermal Tides in a Non-synchronized Hot Jupiter
- A New Atmospheric Model for HD 189733 b
- Radiative Hydrodynamical Studies of Irradiated Atmospheres
- Cooling of young stars growing by disk accretion