Combined physical and biogeochemical assessment of mesoscale eddy parameterisations in ocean models: Eddy-induced advection at eddy-permitting resolutions

Ocean general circulation models at the eddy-permitting regime are known to under-resolve the mesoscale eddy activity and associated eddy-mean interaction. Under-resolving the mesoscale eddy field has consequences for the resulting mean state, affecting the modelled ocean circulation and biogeochemi...

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Published in:Ocean Modelling
Main Authors: Ruan, X., Couespel, D., Lévy, M., Li, J., Mak, J., Wang, Y.
Format: Article in Journal/Newspaper
Language:English
Published: 2024
Subjects:
Online Access:http://nora.nerc.ac.uk/id/eprint/537646/
https://nora.nerc.ac.uk/id/eprint/537646/1/1-s2.0-S1463500324000830-main.pdf
https://doi.org/10.1016/j.ocemod.2024.102396
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spelling ftnerc:oai:nora.nerc.ac.uk:537646 2024-09-30T14:44:08+00:00 Combined physical and biogeochemical assessment of mesoscale eddy parameterisations in ocean models: Eddy-induced advection at eddy-permitting resolutions Ruan, X. Couespel, D. Lévy, M. Li, J. Mak, J. Wang, Y. 2024-06-08 text http://nora.nerc.ac.uk/id/eprint/537646/ https://nora.nerc.ac.uk/id/eprint/537646/1/1-s2.0-S1463500324000830-main.pdf https://doi.org/10.1016/j.ocemod.2024.102396 en eng https://nora.nerc.ac.uk/id/eprint/537646/1/1-s2.0-S1463500324000830-main.pdf Ruan, X.; Couespel, D.; Lévy, M.; Li, J.; Mak, J.; Wang, Y. 2024 Combined physical and biogeochemical assessment of mesoscale eddy parameterisations in ocean models: Eddy-induced advection at eddy-permitting resolutions. Ocean Modelling, 190, 102396. https://doi.org/10.1016/j.ocemod.2024.102396 <https://doi.org/10.1016/j.ocemod.2024.102396> cc_by_4 Publication - Article PeerReviewed 2024 ftnerc https://doi.org/10.1016/j.ocemod.2024.102396 2024-09-11T00:06:36Z Ocean general circulation models at the eddy-permitting regime are known to under-resolve the mesoscale eddy activity and associated eddy-mean interaction. Under-resolving the mesoscale eddy field has consequences for the resulting mean state, affecting the modelled ocean circulation and biogeochemical responses, and impacting the quality of climate projections. There is an ongoing debate on whether and how a parameterisation should be utilised in the eddy-permitting regime. Focusing on the Gent–McWilliams (GM) based parameterisations, it is known that, on the one hand, not utilising a parameterisation leads to insufficient eddy feedback and results in biases. On the other hand, utilising a parameterisation leads to double-counting of the eddy feedback, and introduces other biases. A recently proposed approach, known as splitting, modifies the way GM-based schemes are applied in eddy-permitting regimes, and has been demonstrated to be effective in an idealised Southern Ocean channel model. In this work, we evaluate whether the splitting approach can lead to improvements in the physical and biogeochemical responses in an idealised double gyre model. Compared with a high resolution mesoscale eddy resolving model truth, the use of the GM-based GEOMETRIC parameterisation together with splitting in the eddy-permitting regime leads to broad improvements in the control pre-industrial scenario and an idealised climate change scenario, over models with and models without the GM-based GEOMETRIC parameterisation active. While there are still some deficiencies, particularly in the subtropical region where the transport is too weak and may need momentum re-injection to reduce the biases, the present work provides further evidence in support of using the splitting procedure together with a GM-based parameterisation in ocean general circulation models at eddy-permitting resolutions. Article in Journal/Newspaper Southern Ocean Natural Environment Research Council: NERC Open Research Archive Southern Ocean Ocean Modelling 190 102396
institution Open Polar
collection Natural Environment Research Council: NERC Open Research Archive
op_collection_id ftnerc
language English
description Ocean general circulation models at the eddy-permitting regime are known to under-resolve the mesoscale eddy activity and associated eddy-mean interaction. Under-resolving the mesoscale eddy field has consequences for the resulting mean state, affecting the modelled ocean circulation and biogeochemical responses, and impacting the quality of climate projections. There is an ongoing debate on whether and how a parameterisation should be utilised in the eddy-permitting regime. Focusing on the Gent–McWilliams (GM) based parameterisations, it is known that, on the one hand, not utilising a parameterisation leads to insufficient eddy feedback and results in biases. On the other hand, utilising a parameterisation leads to double-counting of the eddy feedback, and introduces other biases. A recently proposed approach, known as splitting, modifies the way GM-based schemes are applied in eddy-permitting regimes, and has been demonstrated to be effective in an idealised Southern Ocean channel model. In this work, we evaluate whether the splitting approach can lead to improvements in the physical and biogeochemical responses in an idealised double gyre model. Compared with a high resolution mesoscale eddy resolving model truth, the use of the GM-based GEOMETRIC parameterisation together with splitting in the eddy-permitting regime leads to broad improvements in the control pre-industrial scenario and an idealised climate change scenario, over models with and models without the GM-based GEOMETRIC parameterisation active. While there are still some deficiencies, particularly in the subtropical region where the transport is too weak and may need momentum re-injection to reduce the biases, the present work provides further evidence in support of using the splitting procedure together with a GM-based parameterisation in ocean general circulation models at eddy-permitting resolutions.
format Article in Journal/Newspaper
author Ruan, X.
Couespel, D.
Lévy, M.
Li, J.
Mak, J.
Wang, Y.
spellingShingle Ruan, X.
Couespel, D.
Lévy, M.
Li, J.
Mak, J.
Wang, Y.
Combined physical and biogeochemical assessment of mesoscale eddy parameterisations in ocean models: Eddy-induced advection at eddy-permitting resolutions
author_facet Ruan, X.
Couespel, D.
Lévy, M.
Li, J.
Mak, J.
Wang, Y.
author_sort Ruan, X.
title Combined physical and biogeochemical assessment of mesoscale eddy parameterisations in ocean models: Eddy-induced advection at eddy-permitting resolutions
title_short Combined physical and biogeochemical assessment of mesoscale eddy parameterisations in ocean models: Eddy-induced advection at eddy-permitting resolutions
title_full Combined physical and biogeochemical assessment of mesoscale eddy parameterisations in ocean models: Eddy-induced advection at eddy-permitting resolutions
title_fullStr Combined physical and biogeochemical assessment of mesoscale eddy parameterisations in ocean models: Eddy-induced advection at eddy-permitting resolutions
title_full_unstemmed Combined physical and biogeochemical assessment of mesoscale eddy parameterisations in ocean models: Eddy-induced advection at eddy-permitting resolutions
title_sort combined physical and biogeochemical assessment of mesoscale eddy parameterisations in ocean models: eddy-induced advection at eddy-permitting resolutions
publishDate 2024
url http://nora.nerc.ac.uk/id/eprint/537646/
https://nora.nerc.ac.uk/id/eprint/537646/1/1-s2.0-S1463500324000830-main.pdf
https://doi.org/10.1016/j.ocemod.2024.102396
geographic Southern Ocean
geographic_facet Southern Ocean
genre Southern Ocean
genre_facet Southern Ocean
op_relation https://nora.nerc.ac.uk/id/eprint/537646/1/1-s2.0-S1463500324000830-main.pdf
Ruan, X.; Couespel, D.; Lévy, M.; Li, J.; Mak, J.; Wang, Y. 2024 Combined physical and biogeochemical assessment of mesoscale eddy parameterisations in ocean models: Eddy-induced advection at eddy-permitting resolutions. Ocean Modelling, 190, 102396. https://doi.org/10.1016/j.ocemod.2024.102396 <https://doi.org/10.1016/j.ocemod.2024.102396>
op_rights cc_by_4
op_doi https://doi.org/10.1016/j.ocemod.2024.102396
container_title Ocean Modelling
container_volume 190
container_start_page 102396
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