The Role of Tropical, Midlatitude, and Polar Cloud-Radiative Changes for the Midlatitude Circulation Response to Global Warming

Author:

Albern Nicole1,Voigt Aiko2,Thompson David W. J.3,Pinto Joaquim G.1

Affiliation:

1. Institute of Meteorology and Climate Research–Department Troposphere Research, Karlsruhe Institute of Technology, Karlsruhe, Germany

2. Institute of Meteorology and Climate Research–Department Troposphere Research, Karlsruhe Institute of Technology, Karlsruhe, Germany, and Lamont-Doherty Earth Observatory, Columbia University, New York, New York

3. Department of Atmospheric Science, Colorado State University, Fort Collins, Colorado

Abstract

AbstractPrevious studies showed that global cloud-radiative changes contribute half or more to the midlatitude atmospheric circulation response to global warming. Here, we investigate the relative importance of tropical, midlatitude, and polar cloud-radiative changes for the annual-mean, wintertime, and summertime circulation response across regions in AMIP-like simulations. To this end, we study global warming simulations from the ICON model run with the cloud-locking method and prescribed sea surface temperatures, which isolate the impact of changes in atmospheric cloud-radiative heating. Tropical cloud changes dominate the global cloud impact on the 850 hPa zonal wind, jet strength, and storm track responses across most seasons and regions. For the jet shift, a more diverse picture is found. In the annual mean and DJF, tropical and midlatitude cloud changes contribute substantially to the poleward jet shift in all regions. The poleward jet shift is further supported by polar cloud changes across the Northern Hemisphere but not in the Southern Hemisphere. In JJA, the impact of regional cloud changes on the jet position is small, consistent with an overall small jet shift during this season. The jet shift can be largely understood via the anomalous atmospheric cloud-radiative heating in the tropical and midlatitude upper troposphere. The circulation changes are broadly consistent with the influence of cloud-radiative changes on upper-tropospheric baroclinicity and thus the mean potential energy available for conversion into eddy kinetic energy. Our results help to explain the jet response to global warming and highlight the importance of tropical and midlatitude cloud-radiative changes for this response.

Funder

Bundesministerium für Bildung und Forschung und FONA

Bundesministerium für Bildung und Forschung (DE) und FONA

National Science Foundation Climate and Large Scale Dynamics program

AXA Research Fund

Publisher

American Meteorological Society

Subject

Atmospheric Science

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