Atmospheric Circulation of Brown Dwarfs: Jets, Vortices, and Time Variability
arXiv:1403.2143 · doi:10.1088/2041-8205/788/1/L6
Abstract
A variety of observational evidence demonstrates that brown dwarfs exhibit active atmospheric circulations. In this study we use a shallow-water model to investigate the global atmospheric dynamics in the stratified layer overlying the convective zone on these rapidly rotating objects. We show that the existence and properties of the atmospheric circulation crucially depend on key parameters including the energy injection rate and radiative timescale. Under conditions of strong internal heat flux and weak radiative dissipation, a banded flow pattern comprising east-west jet streams spontaneously emerges from the interaction of atmospheric turbulence with the planetary rotation. In contrast, when the internal heat flux is weak and/or radiative dissipation is strong, turbulence injected into the atmosphere damps before it can self-organize into jets, leading to a flow dominated by transient eddies and isotropic turbulence instead. The simulation results are not very sensitive to the form of the forcing. Based on the location of the transition between jet-dominated and eddy-dominated regimes, we suggest that many brown dwarfs may exhibit atmospheric circulations dominated by eddies and turbulence (rather than jets) due to the strong radiative damping on these worlds, but a jet structure is also possible under some realistic conditions. Our simulated light curves capture important features from observed infrared lightcurves of brown dwarfs, including amplitude variations of a few percent and shapes that fluctuate between single-peak and multi-peak structures. More broadly, our work shows that the shallow-water system provides a useful tool to illuminate fundamental aspects of the dynamics on these worlds.
References in corpus (3)
Cited by in corpus (25)
- Strong Brightness Variations Signal Cloudy-to-Clear Transition of Brown Dwarfs
- Ab initio equations of state for hydrogen (H-REOS.3) and helium (He-REOS.3) and their implications for the interior of Brown Dwarfs
- The Impact of Non-Uniform Thermal Structure on the Interpretation of Exoplanet Emission Spectra
- Atmospheric Regimes and Trends on Exoplanets and Brown Dwarfs
- Doppler Imaging of Exoplanets and Brown Dwarfs
- Effects of Bulk Composition on The Atmospheric Dynamics on Close-in Exoplanets
- Atmospheres of Brown Dwarfs
- An independent analysis of the brown dwarf atmosphere monitoring (BAM) data: large-amplitude variability is rare outside the L/T transition
- Atmospheric circulation of brown dwarfs and directly imaged exoplanets driven by cloud radiative feedback: global and equatorial dynamics
- HST Rotational Spectral Mapping of Two L-Type Brown Dwarfs: Variability In and Out of Water Bands Indicates High-Altitude Haze Layers
- The Dawes Review 3: The Atmospheres of Extrasolar Planets and Brown Dwarfs
- TESS Observations of the Luhman 16AB Brown Dwarf System: Rotational Periods, Lightcurve Evolution, and Zonal Circulation
- Roaring Storms in the Planetary-Mass Companion VHS 1256-1257 b: Hubble Space Telescope Multi-epoch Monitoring Reveals Vigorous Evolution in an Ultra-cool Atmosphere
- Effects of Latent Heating on Atmospheres of Brown Dwarfs and Directly Imaged Planets
- Lightning climatology of exoplanets and brown dwarfs guided by Solar System data
- Atmospheres on Nonsynchronized Eccentric-tilted Exoplanets I: Dynamical Regimes
- Rotational Light Curves of Jupiter from UV to Mid-Infrared and Implications for Brown Dwarfs and Exoplanets
- Jet Streams and Tracer Mixing in the Atmospheres of Brown Dwarfs and Isolated Young Giant Planets
- Atmospheres on Nonsynchronized Eccentric-tilted Exoplanets II: Thermal Light Curves
- The Brown-dwarf Atmosphere Monitoring (BAM) Project II: Multi-epoch monitoring of extremely cool brown dwarfs
- Cloud-convection feedback in brown dwarfs atmosphere
- Jupiter and Saturn as Spectral Analogs for Extrasolar Gas Giants and Brown Dwarfs
- Lightning in other planets
- Influences of internal forcing on atmospheric circulations of irradiated giant planets
- Obliquity Constraints on the Planetary-mass Companion HD 106906 b