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  4. Resolution Dependence of Tropical Poleward Energy Transport in Aquaplanet GCMs
 
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Resolution Dependence of Tropical Poleward Energy Transport in Aquaplanet GCMs

Journal
Journal of Advances in Modeling Earth Systems
Journal Volume
17
Journal Issue
12
ISSN
1942-2466
1942-2466
Date Issued
2025-11-28
Author(s)
CHIUNG-YIN CHANG  
Lin, Pu
Held, Isaac M.
Merlis, Timothy M.
Zurita‐Gotor, Pablo
DOI
10.1029/2025ms005103
URI
https://www.scopus.com/pages/publications/105023404946
https://scholars.lib.ntu.edu.tw/handle/123456789/739637
Abstract
The tropical atmosphere plays an important role in transporting energy poleward and driving the global circulation. However, understanding and simulating this fundamental aspect of our climate remains difficult due to its sensitivity to convective parameterizations and horizontal resolution. This study focuses on benchmarking the resolution dependence of tropical poleward energy transport in two aquaplanet atmospheric general circulation models with disabled convective parameterizations: a nonhydrostatic high-resolution (100–6 km) finite-volume cubed-sphere model with a full physics package and a lower-resolution (300–100 km) hydrostatic spectral model with idealized moist physics. Despite differences in their physics and numerics, both models demonstrate that column-integrated poleward moist static energy transport by the mean meridional circulation increases with resolution in the deep tropics, while transport by transient eddies decreases. These changes are associated with enhanced gross moist stability that switches from negative to positive due to an increasingly top-heavy mean circulation and reduced eddy activity diffusing water vapor along an unchanging mean moisture gradient. Further analysis rules out extratropical baroclinic eddies and radiation as the main drivers of these changes. Instead, the resolution dependence of both the mean meridional circulation and transient eddies appears to reflect the resolution dependence of tropical explicit (unparameterized) deep convection. We speculate the multiscale interactions of convection allow for a coupling between gross moist stability and eddy moisture flux, leading to their concurrent changes with resolution. We discuss the implications of this resolution dependence for developing theories and models of the tropical atmosphere.
Subjects
Atmospheric movements
Earth system models
Energy transfer
Fluxes
Moisture
Parameterization
Atmospheric general circulation models
Atmospheric general-circulation model
Convective parameterization
Energy
Global circulation
Horizontal resolution
Meridional circulation
Non-hydrostatic
Poleward energy transport
Tropical atmospheres
atmospheric convection
benchmarking
climate change
meridional circulation
water vapor
Tropics
Publisher
American Geophysical Union (AGU)
Type
journal article

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