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- Isentropic Slopes, Downgradient Eddy Fluxes, and the Extratropical Atmospheric Circulation Response to Tropical Tropospheric HeatingIsentropic Slopes, Downgradient Eddy Fluxes, and the Extratropical Atmospheric Circulation Response to Tropical Tropospheric Heating
Isentropic Slopes, Downgradient Eddy Fluxes, and the Extratropical Atmospheric Circulation Response to Tropical Tropospheric Heating
By
Butler, AH (Butler, Amy H.) ; Thompson, DWJ (Thompson, David W. J.) ; Birner, T (Birner, Thomas) Author | Web of Science ResearcherID | ORCID Number |
---|---|---|
Butler, Amy | K-6190-2012 | https://orcid.org/0000-0002-3632-0925 |
Thompson, David WJ | F-9627-2012 | https://orcid.org/0000-0002-5413-4376 |
Birner, Thomas | A-2108-2008 | https://orcid.org/0000-0002-2966-3428 |
Source
JOURNAL OF THE ATMOSPHERIC SCIENCES
Publisher name
AMER METEOROLOGICAL SOCJCR Category | Category Rank | Category Quartile |
---|---|---|
METEOROLOGY & ATMOSPHERIC SCIENCES in SCIE edition | 48/110 | Q2 |
JCI Category | Category Rank | Category Quartile |
---|---|---|
METEOROLOGY & ATMOSPHERIC SCIENCES in SCIE edition | 55/110 | Q2 |
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Volume
68Issue
10Page
2292-2305DOI
10.1175/JAS-D-10-05025.1Published
OCT 2011Indexed
2011-11-09Document Type
ArticleAbstract
Climate change experiments run on Intergovernmental Panel on Climate Change (IPCC)-class numerical models consistently suggest that increasing concentrations of greenhouse gases will lead to a poleward shift of the midlatitude jets and their associated eddy fluxes of heat and potential vorticity (PV). Experiments run on idealized models suggest that the poleward contraction of the jets can be traced to the effects of increased latent heating and thus locally enhanced warming in the tropical troposphere. Here the authors provide new insights into the dynamics of the circulation response to tropical tropospheric heating using transient experiments in an idealized general circulation model.
It is argued that the response of the midlatitude jets to tropical heating is driven fundamentally by 1) the projection of the heating onto the meridional slope of the lower tropospheric isentropic surfaces, and 2) a diffusive model of the eddy fluxes of heat and PV. In the lower and middle troposphere, regions where the meridional slope of the isentropes (i.e., the baroclinicity) is increased are marked by anomalously poleward eddy fluxes of heat, and vice versa. Near the tropopause, regions where the meridional gradients in PV are increased are characterized by anomalously equatorward eddy fluxes of PV, and vice versa. The barotropic component of the response is shown to be closely approximated by the changes in the lower-level heat fluxes. As such, the changes in the eddy fluxes of momentum near the tropopause appear to be driven primarily by the changes in wave generation in the lower troposphere.
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ROR ID
https://ror.org/02z5nhe81Affiliation
ROR ID
https://ror.org/021h2hc85Categories/ Classification
Research Areas
Meteorology & Atmospheric SciencesCitation Topics
8 Earth SciencesSustainable Development Goals
13 Climate ActionWeb of Science Categories
Meteorology & Atmospheric SciencesLanguage
EnglishAccession Number
WOS:000296034700008ISSN
0022-4928eISSN
1520-0469IDS Number
835KGCitation Network
In Web of Science Core Collection
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