The Acceleration of Superrotation in Simulated Hot Jupiter Atmospheres
arXiv:1911.03182 · doi:10.1051/0004-6361/201936110
Abstract
Context. Atmospheric superrotating flows at the equator are an almost ubiquitous result of simulations of hot Jupiters, and a theory explaining how this zonally coherent flow reaches an equilibrium has been developed in the literature. However, this understanding relies on the existence of either an initial superrotating or a sheared flow, coupled with a slow evolution such that a linear steady state can be reached. Aims. A consistent physical understanding of superrotation is needed for arbitrary drag and radiative timescales, and the relevance of considering linear steady states needs to be assessed. Methods. We obtain an analytical expression for the structure, frequency and decay rate of propagating waves in hot Jupiter atmospheres around a state at rest in the 2D shallow water beta plane limit. We solve this expression numerically and confirm the robustness of our results with a 3D linear wave algorithm. We then compare with 3D simulations of hot Jupiter atmospheres and study the non linear momentum fluxes. Results. We show that under strong day night heating the dynamics does not transit through a linear steady state when starting from an initial atmosphere in solid body rotation. We further show that non linear effects favour the initial spin up of superrotation and that the acceleration due to the vertical component of the eddy momentum flux is critical to the initial development of superrotation. Conclusions. Overall, we describe the initial phases of the acceleration of superrotation, including consideration of differing radiative and drag timescales, and conclude that eddy-momentum driven superrotating equatorial jets are robust, physical phenomena in simulations of hot Jupiter atmospheres.
28 pages, 20 pages of text - 8 of appendices, 9 figures in text - 6 in appendices
References in corpus (12)
- Ground-based detection of sodium in the transmission spectrum of exoplanet HD209458b
- Atmospheric Circulation of Hot Jupiters: Three-dimensional circulation models of HD 209458b and HD 189733b with Simplified Forcing
- The Effects of Consistent Chemical Kinetics Calculations on the Pressure-Temperature Profiles and Emission Spectra of Hot Jupiters
- The 4.5 m full-orbit phase curve of the hot Jupiter HD 209458b
- Determining atmospheric conditions at the terminator of the hot-Jupiter HD209458b
- Variability in the Atmosphere of the Hot Giant Planet HAT-P-7 b
- Direct Statistical Simulation of Out-of-Equilibrium Jets
- The UK Met Office GCM with a sophisticated radiation scheme applied to the hot Jupiter HD 209458b
- 3D Structures of equatorial waves and the resulting superrotation in the atmosphere of a tidally locked hot Jupiter
- Detection of a Westward Hotspot Offset in the Atmosphere of a Hot Gas Giant CoRoT-2b
- Shallow-water Magnetohydrodynamics for Westward Hotspots on Hot Jupiters
- S3T stability of the homogeneous state of barotropic beta-plane turbulence
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- Influences of internal forcing on atmospheric circulations of irradiated giant planets