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A New Look at Stratospheric Sudden Warmings. Part I: Climatology and Modeling Benchmarks

Journal of Climate · 2007 · Vol. 20(3) · pp. 449–469
Andrew Charlton‐PerezLorenzo M. Polvani

Abstract

Abstract Stratospheric sudden warmings are the clearest and strongest manifestation of dynamical coupling in the stratosphere–troposphere system. While many sudden warmings have been individually documented in the literature, this study aims at constructing a comprehensive climatology: all major midwinter warming events are identified and classified, in both the NCEP–NCAR and 40-yr ECMWF Re-Analysis (ERA-40) datasets. To accomplish this a new, objective identification algorithm is developed. This algorithm identifies sudden warmings based on the zonal mean zonal wind at 60°N and 10 hPa, and classifies them into events that do and do not split the stratospheric polar vortex. Major midwinter stratospheric sudden warmings are found to occur with a frequency of approximately six events per decade, and 46% of warming events lead to a splitting of the stratospheric polar vortex. The dynamics of vortex splitting events is contrasted to that of events where the vortex is merely displaced off the pole. In the stratosphere, the two types of events are found to be dynamically distinct: vortex splitting events occur after a clear preconditioning of the polar vortex, and their influence on middle-stratospheric temperatures lasts for up to 20 days longer than vortex displacement events. In contrast, the influence of sudden warmings on the tropospheric state is found to be largely insensitive to the event type. Finally, a table of dynamical benchmarks for major stratospheric sudden warming events is compiled. These benchmarks are used in a companion study to evaluate current numerical model simulations of the stratosphere.

Atmospheric Ozone and ClimateClimate variability and modelsAtmospheric and Environmental Gas DynamicsStratosphereSudden stratospheric warmingPolar vortexTroposphereClimatologyAtmospheric sciencesVortexEnvironmental sciencePolarMeteorology

Funding

  • Lamont-Doherty Earth Observatory, Columbia University
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References
A Dynamical Model of the Stratospheric Sudden Warming
Journal of the Atmospheric Sciences · 1971 · 1,206 citations
The NCEP–NCAR 50–Year Reanalysis: Monthly Means CD–ROM and Documentation
Bulletin of the American Meteorological Society · 2001 · 4,335 citations
Statistical Methods in the Atmospheric Sciences
Technometrics · 1996 · 7,691 citations
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A New Look at Stratospheric Sudden Warmings. Part I: Climatology and Modeling Benchmarks · Scinovex