Published December 8, 2023 | Version Published
Journal Article Open

Repeated Cyclogenesis on Hot-Exoplanet Atmospheres with Deep Heating

Abstract

Most current models of hot-exoplanet atmospheres assume shallow heating, a strong day-night differential heating near the top of the atmosphere. Here we investigate the effects of energy deposition at differing depths in a model tidally locked gas-giant exoplanet. We perform high-resolution atmospheric flow simulations of hot-exoplanet atmospheres forced with idealized thermal heating representative of shallow and deep heating (i.e., stellar irradiation strongly deposited at ∼10³  Pa and ∼10⁵  Pa pressure levels, respectively). Unlike with shallow heating, the flow with deep heating exhibits a new dynamic equilibrium state, characterized by repeated generation of giant cyclonic storms that move away westward once formed. The formation is accompanied by a burst of heightened turbulence, leading to the production of small-scale flow structures and large-scale mixing of temperature on a timescale of ∼3 planetary rotations. Significantly, while effects that could be important (e.g., coupled radiative flux and convectively excited gravity waves) are not included, over a timescale of several hundred days the simulations robustly show that the emergent thermal flux depends strongly on the heating type and is distinguishable by current observations.

Copyright and License

Published by the American Physical Society under the terms of the Creative Commons Attribution 4.0 International license. Further distribution of this work must maintain attribution to the author(s) and the published article's title, journal citation, and DOI.

Acknowledgement

The authors thank Quentin Changeat for helpful discussions. J. W. S. thanks the Jet Propulsion Laboratory, California Institute of Technology, where some of this work was completed under a contract with the National Aeronautics and Space Administration (80NM0018D0004). J. N. is supported by a joint Columbia University and Flatiron Institute Research Fellowship. The Flatiron Institute is acknowledged for providing computational resources and support. This work resulted from an initial discussion at the Exoplanet Symposium 2022, organized at the Flatiron Institute.

Files

PhysRevLett.131.231201.pdf

Files (11.0 MB)

Name Size
md5:521f21782760c94308d56ca9f1800e2e
11.0 MB Preview Download

Additional details

Identifiers

ISSN
1079-7114

Funding

National Aeronautics and Space Administration
80NM0018D0004
Columbia University
Flatiron Institute