Global circulation models (GCMs) play an important role in contemporary investigations of exoplanet atmospheres. Different GCMs evolve various sets of dynamical equations which can result in obtaining different atmospheric properties between models. In this study, we investigate the effect of different dynamical equation sets on the atmospheres of hot Jupiter exoplanets. We compare GCM simulations using the quasi-primitive dynamical equations (QHD) and the deep Navier-Stokes equations (NHD) in the GCM THOR. We utilise a two-stream non-grey ”picket-fence” scheme to increase the realism of the radiative transfer calculations. We perform GCM simulations covering a wide parameter range grid of system parameters in the population of exoplanets. Our results show significant differences between simulations with the NHD and QHD equation sets at lower gravity, higher rotation rates or at higher irradiation temperatures. The chosen parameter range shows the relevance of choosing dynamical equation sets dependent on system and planetary properties. Our results show the climate states of hot Jupiters seem to be very diverse, where exceptions to prograde superrotation can often occur. Overall, our study shows the evolution of different climate states which arise just due to different selections of Navier-Stokes equations and approximations. We show the divergent behaviour of approximations used in GCMs for Earth, but applied for non Earth-like planets.
[1]
M. Vogel.
Geophysical fluid dynamics: understanding (almost) everything with rotating shallow water models
,
2018,
Contemporary Physics.
[2]
Tsevi Mazeh,et al.
The Transiting Planets
,
2005
.
[3]
A. E. Gill.
Atmosphere-Ocean Dynamics
,
1982
.
[4]
Juan Antonio Belmonte,et al.
Handbook of Exoplanets
,
2018
.
[5]
J. Norbury,et al.
LARGE-SCALE ATMOSPHERE – OCEAN DYNAMICS Volume II Geometric Methods and Models
,
2013
.
[6]
J. Norbury.
LARGE-SCALE ATMOSPHERE – OCEAN DYNAMICS Volume I Analytical Methods and Numerical Models
,
2011
.
[7]
Eric Jones,et al.
SciPy: Open Source Scientific Tools for Python
,
2001
.
[8]
John A. Dutton,et al.
The Ceaseless Wind: An Introduction to the Theory of Atmospheric Motion
,
1976
.
[9]
C. Eckart,et al.
Hydrodynamics of oceans and atmospheres
,
1960
.