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Published May 15, 2023 | public
Journal Article

Energetic Constraints on the Pattern of Changes to the Hydrological Cycle under Global Warming

Abstract

The response of zonal-mean precipitation minus evaporation (P − E) to global warming is investigated using a moist energy balance model (MEBM) with a simple Hadley cell parameterization. The MEBM accurately emulates zonal-mean P − E change simulated by a suite of global climate models (GCMs) under greenhouse gas forcing. The MEBM also accounts for most of the intermodel differences in GCM P − E change and better emulates GCM P − E change when compared to the "wet-gets-wetter, dry-gets-drier" thermodynamic mechanism. The intermodel spread in P − E change is attributed to intermodel differences in radiative feedbacks, which account for 60%–70% of the intermodel variance, with smaller contributions from radiative forcing and ocean heat uptake. Isolating the intermodel spread of feedbacks to specific regions shows that tropical feedbacks are the primary source of intermodel spread in zonal-mean P − E change. The ability of the MEBM to emulate GCM P − E change is further investigated using idealized feedback patterns. A less negative and narrowly peaked feedback pattern near the equator results in more atmospheric heating, which strengthens the Hadley cell circulation in the deep tropics through an enhanced poleward heat flux. This pattern also increases gross moist stability, which weakens the subtropical Hadley cell circulation. These two processes in unison increase P − E in the deep tropics, decrease P − E in the subtropics, and narrow the intertropical convergence zone. Additionally, a feedback pattern that produces polar-amplified warming partially reduces the poleward moisture flux by weakening the meridional temperature gradient. It is shown that changes to the Hadley cell circulation and the poleward moisture flux are crucial for understanding the pattern of GCM P − E change under warming.

Additional Information

© 2023 American Meteorological Society. The authors thank Polina Khapikova for helpful comments on an earlier draft of this paper. The authors also thank three reviewers and the editor for helpful and encouraging comments. Part of this research was supported by the University of Washington Mary Gates Endowment for Undergraduate Students. D.B.B was supported by an American Meteorological Society (AMS) Graduate Fellowship and the National Science Foundation (NSF) Graduate Research Fellowship Program (NSF Grant DGE1745301). N.S. was supported by NSF Grant AGS-1954663. G.H.R. was supported by NSF Grants AGS-2019647 and P2C2-2102829. K.C.A. was supported by NSF Grants AGS-1752796 and AGS-2019647, and an Alfred P. Sloan Research Fellowship (Grant FG-2020-13568). We thank the climate modeling groups for producing and making available their model output, which is accessible at the Earth System Grid Federation (ESGF) Portal (https://esgf-node.llnl.gov/search/cmip5/). Data availability statement. The code and data for this study are available at https://github.com/dbonan/energy-balance-models.

Additional details

Created:
August 22, 2023
Modified:
October 23, 2023