A wind-driven model of the ocean surface layer with wave radiation physics

Surface windstress transfers energy to the surface mixed layer of the ocean, and this energy partly radiates as internal gravity waves with near-inertial frequencies into the stratified ocean below the mixed layer where it is available for mixing. Numerical and analytical models provide estimates of...

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Published in:Ocean Dynamics
Main Authors: Olbers, Dirk, Jurgenowski, Philipp, Eden, Carsten
Format: Article in Journal/Newspaper
Language:unknown
Published: SPRINGER HEIDELBERG 2020
Subjects:
Online Access:https://epic.awi.de/id/eprint/53024/
https://doi.org/10.1007/s10236-020-01376-2
https://hdl.handle.net/10013/epic.8444df30-2ae6-43e8-a888-93f8ba4f6b6b
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author Olbers, Dirk
Jurgenowski, Philipp
Eden, Carsten
author_facet Olbers, Dirk
Jurgenowski, Philipp
Eden, Carsten
author_sort Olbers, Dirk
collection Alfred Wegener Institute for Polar- and Marine Research (AWI): ePIC (electronic Publication Information Center)
container_issue 8
container_start_page 1067
container_title Ocean Dynamics
container_volume 70
description Surface windstress transfers energy to the surface mixed layer of the ocean, and this energy partly radiates as internal gravity waves with near-inertial frequencies into the stratified ocean below the mixed layer where it is available for mixing. Numerical and analytical models provide estimates of the energy transfer into the mixed layer and the fraction radiated into the interior, but with large uncertainties, which we aim to reduce in the present study. An analytical slab model of the mixed layer used before in several studies is extended by consistent physics of wave radiation into the interior. Rayleigh damping, controlling the physics of the original slab model, is absent in the extended model and the wave-induced pressure gradient is resolved. The extended model predicts the energy transfer rates, both in physical and wavenumber-frequency space, associated with the wind forcing, dissipation in the mixed layer, and wave radiation at the base as function of a few parameters: mixed layer depth, Coriolis frequency and Brunt-Väisälä frequency below the mixed layer, and parameters of the applied windstress spectrum. The results of the model are satisfactorily validated with a realistic numerical model of the North Atlantic Ocean.
format Article in Journal/Newspaper
genre North Atlantic
genre_facet North Atlantic
id ftawi:oai:epic.awi.de:53024
institution Open Polar
language unknown
op_collection_id ftawi
op_container_end_page 1088
op_doi https://doi.org/10.1007/s10236-020-01376-2
op_relation Olbers, D. orcid:0000-0002-2565-6175 , Jurgenowski, P. and Eden, C. (2020) A wind-driven model of the ocean surface layer with wave radiation physics , Ocean Dynamics, 70 (8), pp. 1067-1088 . doi:10.1007/s10236-020-01376-2 <https://doi.org/10.1007/s10236-020-01376-2> , hdl:10013/epic.8444df30-2ae6-43e8-a888-93f8ba4f6b6b
op_source EPIC3Ocean Dynamics, SPRINGER HEIDELBERG, 70(8), pp. 1067-1088, ISSN: 1616-7341
publishDate 2020
publisher SPRINGER HEIDELBERG
record_format openpolar
spelling ftawi:oai:epic.awi.de:53024 2025-06-08T14:05:10+00:00 A wind-driven model of the ocean surface layer with wave radiation physics Olbers, Dirk Jurgenowski, Philipp Eden, Carsten 2020 https://epic.awi.de/id/eprint/53024/ https://doi.org/10.1007/s10236-020-01376-2 https://hdl.handle.net/10013/epic.8444df30-2ae6-43e8-a888-93f8ba4f6b6b unknown SPRINGER HEIDELBERG Olbers, D. orcid:0000-0002-2565-6175 , Jurgenowski, P. and Eden, C. (2020) A wind-driven model of the ocean surface layer with wave radiation physics , Ocean Dynamics, 70 (8), pp. 1067-1088 . doi:10.1007/s10236-020-01376-2 <https://doi.org/10.1007/s10236-020-01376-2> , hdl:10013/epic.8444df30-2ae6-43e8-a888-93f8ba4f6b6b EPIC3Ocean Dynamics, SPRINGER HEIDELBERG, 70(8), pp. 1067-1088, ISSN: 1616-7341 Article isiRev 2020 ftawi https://doi.org/10.1007/s10236-020-01376-2 2025-05-12T03:46:38Z Surface windstress transfers energy to the surface mixed layer of the ocean, and this energy partly radiates as internal gravity waves with near-inertial frequencies into the stratified ocean below the mixed layer where it is available for mixing. Numerical and analytical models provide estimates of the energy transfer into the mixed layer and the fraction radiated into the interior, but with large uncertainties, which we aim to reduce in the present study. An analytical slab model of the mixed layer used before in several studies is extended by consistent physics of wave radiation into the interior. Rayleigh damping, controlling the physics of the original slab model, is absent in the extended model and the wave-induced pressure gradient is resolved. The extended model predicts the energy transfer rates, both in physical and wavenumber-frequency space, associated with the wind forcing, dissipation in the mixed layer, and wave radiation at the base as function of a few parameters: mixed layer depth, Coriolis frequency and Brunt-Väisälä frequency below the mixed layer, and parameters of the applied windstress spectrum. The results of the model are satisfactorily validated with a realistic numerical model of the North Atlantic Ocean. Article in Journal/Newspaper North Atlantic Alfred Wegener Institute for Polar- and Marine Research (AWI): ePIC (electronic Publication Information Center) Ocean Dynamics 70 8 1067 1088
spellingShingle Olbers, Dirk
Jurgenowski, Philipp
Eden, Carsten
A wind-driven model of the ocean surface layer with wave radiation physics
title A wind-driven model of the ocean surface layer with wave radiation physics
title_full A wind-driven model of the ocean surface layer with wave radiation physics
title_fullStr A wind-driven model of the ocean surface layer with wave radiation physics
title_full_unstemmed A wind-driven model of the ocean surface layer with wave radiation physics
title_short A wind-driven model of the ocean surface layer with wave radiation physics
title_sort wind-driven model of the ocean surface layer with wave radiation physics
url https://epic.awi.de/id/eprint/53024/
https://doi.org/10.1007/s10236-020-01376-2
https://hdl.handle.net/10013/epic.8444df30-2ae6-43e8-a888-93f8ba4f6b6b