The Influence of Atmospheric Scattering and Absorption on Ohmic Dissipation in Hot Jupiters
arXiv:1202.3345 · doi:10.1088/2041-8205/748/1/L17
Abstract
Using semi-analytical, one-dimensional models, we elucidate the influence of scattering and absorption on the degree of Ohmic dissipation in hot Jovian atmospheres. With the assumption of Saha equilibrium, the variation in temperature is the main driver of the variations in the electrical conductivity, induced current and Ohmic power dissipated. Atmospheres possessing temperature inversions tend to dissipate most of the Ohmic power superficially, at high altitudes, whereas those without temperature inversions are capable of greater dissipation deeper down. Scattering in the optical range of wavelengths tends to cool the lower atmosphere, thus reducing the degree of dissipation at depth. Purely absorbing cloud decks (in the infrared), of a finite extent in height, allow for localized reductions in dissipation and may reverse a temperature inversion if they are dense and thick enough, thus greatly enhancing the dissipation at depth. If Ohmic dissipation is the mechanism for inflating hot Jupiters, then variations in the atmospheric opacity (which may be interpreted as arising from variations in metallicity and cloud/haze properties) and magnetic field strength naturally produce a scatter in the measured radii at a given strength of irradiation. Future work will determine if these effects are dominant over evolutionary effects, which also contribute a scatter to the measured radii.
Accepted by ApJ Letters. 5 pages, 5 figures
References in corpus (7)
- On the radiative equilibrium of irradiated planetary atmospheres
- Detection of atmospheric haze on an extrasolar planet: The 0.55 - 1.05 micron transmission spectrum of HD189733b with the Hubble Space Telescope
- Inflating Hot Jupiters With Ohmic Dissipation
- Theoretical Spectral Models of the Planet HD 209458b with a Thermal Inversion and Water Emission Bands
- On the Absorption and Redistribution of Energy in Irradiated Planets
- Magnetic Scaling Laws for the Atmospheres of Hot Giant Exoplanets
- Day and night side core cooling of a strongly irradiated giant planet
Cited by in corpus (16)
- Atmospheric Dynamics of Hot Exoplanets
- Three-Dimensional Atmospheric Circulation Models of HD 189733b and HD 209458b with Consistent Magnetic Drag and Ohmic Dissipation
- Understanding Trends Associated with Clouds in Irradiated Exoplanets
- Variability in the super-Earth 55 Cnc e
- The Effects of Irradiation on Hot Jovian Atmospheres: Heat Redistribution and Energy Dissipation
- Towards consistent mapping of distant worlds: secondary-eclipse scanning of the exoplanet HD189733b
- Atmospheric Retrieval Analysis of the Directly Imaged Exoplanet HR 8799b
- Magnetically Controlled Circulation on Hot Extrasolar Planets
- Evidence of Three Mechanisms Explaining the Radius Anomaly of Hot Jupiters
- Investigating hot-Jupiter inflated radii with hierarchical Bayesian modelling
- On the Stability of Super-Earth Atmospheres
- Structure and Evolution of Internally Heated Hot Jupiters
- Optical phase curves as diagnostics for aerosol composition in exoplanetary atmospheres
- The first planet detected in the WTS: an inflated hot-Jupiter in a 3.35 day orbit around a late F-star
- Non-Axisymmetric Flows on Hot Jupiters with Oblique Magnetic Fields
- Magnetic field strengths of hot giant exoplanets consistent with Solar System values