Exploring the sensitivity of Northern Hemisphere atmospheric circulation to different surface temperature forcing using a statistical–dynamical atmospheric model

<p>Climate and weather conditions in the mid-latitudes are strongly driven by the large-scale atmosphere circulation. Observational data indicate that important components of the large-scale circulation have changed in recent decades, including the strength and the width of the Hadley cell, je...

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Main Authors: S. Totz, S. Petri, J. Lehmann, E. Peukert, D. Coumou
Format: Article
Language:English
Published: Copernicus Publications 2019-02-01
Series:Nonlinear Processes in Geophysics
Online Access:https://www.nonlin-processes-geophys.net/26/1/2019/npg-26-1-2019.pdf
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spelling doaj-cc85d815d6f145559f0e45dfc534258c2020-11-24T21:33:24ZengCopernicus PublicationsNonlinear Processes in Geophysics1023-58091607-79462019-02-012611210.5194/npg-26-1-2019Exploring the sensitivity of Northern Hemisphere atmospheric circulation to different surface temperature forcing using a statistical–dynamical atmospheric modelS. Totz0S. Totz1S. Petri2J. Lehmann3E. Peukert4E. Peukert5D. Coumou6D. Coumou7Potsdam Institute for Climate Impact Research (PIK), Leibniz Association, Potsdam, GermanyDepartment of Physics, University of Potsdam, Potsdam, GermanyPotsdam Institute for Climate Impact Research (PIK), Leibniz Association, Potsdam, GermanyPotsdam Institute for Climate Impact Research (PIK), Leibniz Association, Potsdam, GermanyPotsdam Institute for Climate Impact Research (PIK), Leibniz Association, Potsdam, GermanyDepartment of Physics, University of Potsdam, Potsdam, GermanyPotsdam Institute for Climate Impact Research (PIK), Leibniz Association, Potsdam, GermanyInstitute for Environmental Studies (IVM), Vrije University Amsterdam, Amsterdam, the Netherlands<p>Climate and weather conditions in the mid-latitudes are strongly driven by the large-scale atmosphere circulation. Observational data indicate that important components of the large-scale circulation have changed in recent decades, including the strength and the width of the Hadley cell, jets, storm tracks and planetary waves.</p> <p>Here, we use a new statistical–dynamical atmosphere model (SDAM) to test the individual sensitivities of the large-scale atmospheric circulation to changes in the zonal temperature gradient, meridional temperature gradient and global-mean temperature. We analyze the Northern Hemisphere Hadley circulation, jet streams, storm tracks and planetary waves by systematically altering the zonal temperature asymmetry, the meridional temperature gradient and the global-mean temperature. Our results show that the strength of the Hadley cell, storm tracks and jet streams depend, in terms of relative changes, almost linearly on both the global-mean temperature and the meridional temperature gradient, whereas the zonal temperature asymmetry has little or no influence. The magnitude of planetary waves is affected by all three temperature components, as expected from theoretical dynamical considerations. The width of the Hadley cell behaves nonlinearly with respect to all three temperature components in the SDAM. Moreover, some of these observed large-scale atmospheric changes are expected from dynamical equations and are therefore an important part of model validation.</p>https://www.nonlin-processes-geophys.net/26/1/2019/npg-26-1-2019.pdf
collection DOAJ
language English
format Article
sources DOAJ
author S. Totz
S. Totz
S. Petri
J. Lehmann
E. Peukert
E. Peukert
D. Coumou
D. Coumou
spellingShingle S. Totz
S. Totz
S. Petri
J. Lehmann
E. Peukert
E. Peukert
D. Coumou
D. Coumou
Exploring the sensitivity of Northern Hemisphere atmospheric circulation to different surface temperature forcing using a statistical–dynamical atmospheric model
Nonlinear Processes in Geophysics
author_facet S. Totz
S. Totz
S. Petri
J. Lehmann
E. Peukert
E. Peukert
D. Coumou
D. Coumou
author_sort S. Totz
title Exploring the sensitivity of Northern Hemisphere atmospheric circulation to different surface temperature forcing using a statistical–dynamical atmospheric model
title_short Exploring the sensitivity of Northern Hemisphere atmospheric circulation to different surface temperature forcing using a statistical–dynamical atmospheric model
title_full Exploring the sensitivity of Northern Hemisphere atmospheric circulation to different surface temperature forcing using a statistical–dynamical atmospheric model
title_fullStr Exploring the sensitivity of Northern Hemisphere atmospheric circulation to different surface temperature forcing using a statistical–dynamical atmospheric model
title_full_unstemmed Exploring the sensitivity of Northern Hemisphere atmospheric circulation to different surface temperature forcing using a statistical–dynamical atmospheric model
title_sort exploring the sensitivity of northern hemisphere atmospheric circulation to different surface temperature forcing using a statistical–dynamical atmospheric model
publisher Copernicus Publications
series Nonlinear Processes in Geophysics
issn 1023-5809
1607-7946
publishDate 2019-02-01
description <p>Climate and weather conditions in the mid-latitudes are strongly driven by the large-scale atmosphere circulation. Observational data indicate that important components of the large-scale circulation have changed in recent decades, including the strength and the width of the Hadley cell, jets, storm tracks and planetary waves.</p> <p>Here, we use a new statistical–dynamical atmosphere model (SDAM) to test the individual sensitivities of the large-scale atmospheric circulation to changes in the zonal temperature gradient, meridional temperature gradient and global-mean temperature. We analyze the Northern Hemisphere Hadley circulation, jet streams, storm tracks and planetary waves by systematically altering the zonal temperature asymmetry, the meridional temperature gradient and the global-mean temperature. Our results show that the strength of the Hadley cell, storm tracks and jet streams depend, in terms of relative changes, almost linearly on both the global-mean temperature and the meridional temperature gradient, whereas the zonal temperature asymmetry has little or no influence. The magnitude of planetary waves is affected by all three temperature components, as expected from theoretical dynamical considerations. The width of the Hadley cell behaves nonlinearly with respect to all three temperature components in the SDAM. Moreover, some of these observed large-scale atmospheric changes are expected from dynamical equations and are therefore an important part of model validation.</p>
url https://www.nonlin-processes-geophys.net/26/1/2019/npg-26-1-2019.pdf
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