A conceptual ENSO model under realistic noise forcing

We investigated the influence of atmospheric noise on the generation of interannual El Niño variability. Therefore, we perturbed a conceptual ENSO delay model with surrogate windstress data generated from tropical windspeed measurements. The effect of the additional stochastic forci...

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Main Authors: J. Saynisch, J. Kurths, D. Maraun
Format: Article
Language:English
Published: Copernicus Publications 2006-01-01
Series:Nonlinear Processes in Geophysics
Online Access:http://www.nonlin-processes-geophys.net/13/275/2006/npg-13-275-2006.pdf
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spelling doaj-5801a49504e545cea2ff7a3c9e82b06d2020-11-24T22:04:04ZengCopernicus PublicationsNonlinear Processes in Geophysics1023-58091607-79462006-01-01133275285A conceptual ENSO model under realistic noise forcingJ. SaynischJ. KurthsD. MaraunWe investigated the influence of atmospheric noise on the generation of interannual El Niño variability. Therefore, we perturbed a conceptual ENSO delay model with surrogate windstress data generated from tropical windspeed measurements. The effect of the additional stochastic forcing was studied for various parameter sets including periodic and chaotic regimes. The evaluation was based on a spectrum and amplitude-period relation comparison between model and measured sea surface temperature data. The additional forcing turned out to increase the variability of the model output in general. The noise-free model was unable to reproduce the observed spectral bandwidth for any choice of parameters. On the contrary, the stochastically forced model is capable of producing a realistic spectrum. The weakly nonlinear regimes of the model exhibit a proportional relation between amplitude and period matching the relation derived from measurement data. The chaotic regime, however, shows an inversely proportional relation. A stability analysis of the different regimes revealed that the spectra of the weakly nonlinear regimes are robust against slight parameter changes representing disregarded physical mechanisms, whereas the chaotic regime exhibits a very unstable realistic spectrum. We conclude that the model including stochastic forcing in a parameter range of moderate nonlinearity best matches the real conditions. This suggests that atmospheric noise plays an important role in the coupled tropical pacific ocean-atmosphere system.http://www.nonlin-processes-geophys.net/13/275/2006/npg-13-275-2006.pdf
collection DOAJ
language English
format Article
sources DOAJ
author J. Saynisch
J. Kurths
D. Maraun
spellingShingle J. Saynisch
J. Kurths
D. Maraun
A conceptual ENSO model under realistic noise forcing
Nonlinear Processes in Geophysics
author_facet J. Saynisch
J. Kurths
D. Maraun
author_sort J. Saynisch
title A conceptual ENSO model under realistic noise forcing
title_short A conceptual ENSO model under realistic noise forcing
title_full A conceptual ENSO model under realistic noise forcing
title_fullStr A conceptual ENSO model under realistic noise forcing
title_full_unstemmed A conceptual ENSO model under realistic noise forcing
title_sort conceptual enso model under realistic noise forcing
publisher Copernicus Publications
series Nonlinear Processes in Geophysics
issn 1023-5809
1607-7946
publishDate 2006-01-01
description We investigated the influence of atmospheric noise on the generation of interannual El Niño variability. Therefore, we perturbed a conceptual ENSO delay model with surrogate windstress data generated from tropical windspeed measurements. The effect of the additional stochastic forcing was studied for various parameter sets including periodic and chaotic regimes. The evaluation was based on a spectrum and amplitude-period relation comparison between model and measured sea surface temperature data. The additional forcing turned out to increase the variability of the model output in general. The noise-free model was unable to reproduce the observed spectral bandwidth for any choice of parameters. On the contrary, the stochastically forced model is capable of producing a realistic spectrum. The weakly nonlinear regimes of the model exhibit a proportional relation between amplitude and period matching the relation derived from measurement data. The chaotic regime, however, shows an inversely proportional relation. A stability analysis of the different regimes revealed that the spectra of the weakly nonlinear regimes are robust against slight parameter changes representing disregarded physical mechanisms, whereas the chaotic regime exhibits a very unstable realistic spectrum. We conclude that the model including stochastic forcing in a parameter range of moderate nonlinearity best matches the real conditions. This suggests that atmospheric noise plays an important role in the coupled tropical pacific ocean-atmosphere system.
url http://www.nonlin-processes-geophys.net/13/275/2006/npg-13-275-2006.pdf
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