High frequency variability of the Atlantic meridional overturning circulation

We compare the variability of the Atlantic meridional overturning circulation (AMOC) as simulated by the coupled climate models of the RAPID project, which cover a wide range of resolution and complexity, and observed by the RAPID/MOCHA array at about 26° N. We analyse variability on a range of time...

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Published in:Ocean Science
Main Authors: Balan Sarojini, B., Gregory, J. M., Tailleux, R., Bigg, G. R., Blaker, A. T., Cameron, D. R., Edwards, N. R., Megann, A. P., Shaffrey, L. C., Sinha, B.
Format: Article in Journal/Newspaper
Language:unknown
Published: 2011
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Online Access:https://oro.open.ac.uk/29139/
https://oro.open.ac.uk/29139/1/balansarojini11os-amoc.pdf
http://www.ocean-sci.net/7/471/2011/
https://doi.org/10.5194/os-7-471-2011
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spelling ftopenunivgb:oai:oro.open.ac.uk:29139 2023-06-11T04:14:59+02:00 High frequency variability of the Atlantic meridional overturning circulation Balan Sarojini, B. Gregory, J. M. Tailleux, R. Bigg, G. R. Blaker, A. T. Cameron, D. R. Edwards, N. R. Megann, A. P. Shaffrey, L. C. Sinha, B. 2011-07-18 application/pdf https://oro.open.ac.uk/29139/ https://oro.open.ac.uk/29139/1/balansarojini11os-amoc.pdf http://www.ocean-sci.net/7/471/2011/ https://doi.org/10.5194/os-7-471-2011 unknown https://oro.open.ac.uk/29139/1/balansarojini11os-amoc.pdf Balan Sarojini, B.; Gregory, J. M.; Tailleux, R.; Bigg, G. R.; Blaker, A. T.; Cameron, D. R.; Edwards, N. R. <http://oro.open.ac.uk/view/person/nre29.html>; Megann, A. P.; Shaffrey, L. C. and Sinha, B. (2011). High frequency variability of the Atlantic meridional overturning circulation. Ocean Science, 7 pp. 471–486. Journal Item Public PeerReviewed 2011 ftopenunivgb https://doi.org/10.5194/os-7-471-2011 2023-05-28T05:46:47Z We compare the variability of the Atlantic meridional overturning circulation (AMOC) as simulated by the coupled climate models of the RAPID project, which cover a wide range of resolution and complexity, and observed by the RAPID/MOCHA array at about 26° N. We analyse variability on a range of timescales, from five-daily to interannual. In models of all resolutions there is substantial variability on timescales of a few days; in most AOGCMs the amplitude of the variability is of somewhat larger magnitude than that observed by the RAPID array, while the time-mean is within about 10 % of the observational estimate. The amplitude of the simulated annual cycle is similar to observations, but the shape of the annual cycle shows a spread among the models. A dynamical decomposition shows that in the models, as in observations, the AMOC is predominantly geostrophic (driven by pressure and sea-level gradients), with both geostrophic and Ekman contributions to variability, the latter being exaggerated and the former underrepresented in models. Other ageostrophic terms, neglected in the observational estimate, are small but not negligible. The time-mean of the western boundary current near the latitude of the RAPID/MOCHA array has a much wider model spread than the AMOC does, indicating large differences among models in the simulation of the wind-driven gyre circulation, and its variability is unrealistically small in the models. In many RAPID models and in models of the Coupled Model Intercomparison Project Phase 3 (CMIP3), interannual variability of the maximum of the AMOC wherever it lies, which is a commonly used model index, is similar to interannual variability in the AMOC at 26° N. Annual volume and heat transport timeseries at the same latitude are well-correlated within 15–45° N, indicating the climatic importance of the AMOC. In the RAPID and CMIP3 models, we show that the AMOC is correlated over considerable distances in latitude, but not the whole extent of the North Atlantic; consequently interannual ... Article in Journal/Newspaper North Atlantic The Open University: Open Research Online (ORO) Ocean Science 7 4 471 486
institution Open Polar
collection The Open University: Open Research Online (ORO)
op_collection_id ftopenunivgb
language unknown
description We compare the variability of the Atlantic meridional overturning circulation (AMOC) as simulated by the coupled climate models of the RAPID project, which cover a wide range of resolution and complexity, and observed by the RAPID/MOCHA array at about 26° N. We analyse variability on a range of timescales, from five-daily to interannual. In models of all resolutions there is substantial variability on timescales of a few days; in most AOGCMs the amplitude of the variability is of somewhat larger magnitude than that observed by the RAPID array, while the time-mean is within about 10 % of the observational estimate. The amplitude of the simulated annual cycle is similar to observations, but the shape of the annual cycle shows a spread among the models. A dynamical decomposition shows that in the models, as in observations, the AMOC is predominantly geostrophic (driven by pressure and sea-level gradients), with both geostrophic and Ekman contributions to variability, the latter being exaggerated and the former underrepresented in models. Other ageostrophic terms, neglected in the observational estimate, are small but not negligible. The time-mean of the western boundary current near the latitude of the RAPID/MOCHA array has a much wider model spread than the AMOC does, indicating large differences among models in the simulation of the wind-driven gyre circulation, and its variability is unrealistically small in the models. In many RAPID models and in models of the Coupled Model Intercomparison Project Phase 3 (CMIP3), interannual variability of the maximum of the AMOC wherever it lies, which is a commonly used model index, is similar to interannual variability in the AMOC at 26° N. Annual volume and heat transport timeseries at the same latitude are well-correlated within 15–45° N, indicating the climatic importance of the AMOC. In the RAPID and CMIP3 models, we show that the AMOC is correlated over considerable distances in latitude, but not the whole extent of the North Atlantic; consequently interannual ...
format Article in Journal/Newspaper
author Balan Sarojini, B.
Gregory, J. M.
Tailleux, R.
Bigg, G. R.
Blaker, A. T.
Cameron, D. R.
Edwards, N. R.
Megann, A. P.
Shaffrey, L. C.
Sinha, B.
spellingShingle Balan Sarojini, B.
Gregory, J. M.
Tailleux, R.
Bigg, G. R.
Blaker, A. T.
Cameron, D. R.
Edwards, N. R.
Megann, A. P.
Shaffrey, L. C.
Sinha, B.
High frequency variability of the Atlantic meridional overturning circulation
author_facet Balan Sarojini, B.
Gregory, J. M.
Tailleux, R.
Bigg, G. R.
Blaker, A. T.
Cameron, D. R.
Edwards, N. R.
Megann, A. P.
Shaffrey, L. C.
Sinha, B.
author_sort Balan Sarojini, B.
title High frequency variability of the Atlantic meridional overturning circulation
title_short High frequency variability of the Atlantic meridional overturning circulation
title_full High frequency variability of the Atlantic meridional overturning circulation
title_fullStr High frequency variability of the Atlantic meridional overturning circulation
title_full_unstemmed High frequency variability of the Atlantic meridional overturning circulation
title_sort high frequency variability of the atlantic meridional overturning circulation
publishDate 2011
url https://oro.open.ac.uk/29139/
https://oro.open.ac.uk/29139/1/balansarojini11os-amoc.pdf
http://www.ocean-sci.net/7/471/2011/
https://doi.org/10.5194/os-7-471-2011
genre North Atlantic
genre_facet North Atlantic
op_relation https://oro.open.ac.uk/29139/1/balansarojini11os-amoc.pdf
Balan Sarojini, B.; Gregory, J. M.; Tailleux, R.; Bigg, G. R.; Blaker, A. T.; Cameron, D. R.; Edwards, N. R. <http://oro.open.ac.uk/view/person/nre29.html>; Megann, A. P.; Shaffrey, L. C. and Sinha, B. (2011). High frequency variability of the Atlantic meridional overturning circulation. Ocean Science, 7 pp. 471–486.
op_doi https://doi.org/10.5194/os-7-471-2011
container_title Ocean Science
container_volume 7
container_issue 4
container_start_page 471
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