Internal tide energy transfers induced by mesoscale circulation and topography across the North Atlantic

The interaction between the internal tide and the mesoscale circulation are studied from the internal tide energy budget perspective. To that end, the modal energy budget of the internal tide is diagnosed using a high resolution numerical simulation covering the North Atlantic. Compared to the topog...

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Main Authors: Bella, Adrien, Lahaye, Noé, Tissot, Gilles
Format: Other/Unknown Material
Language:unknown
Published: Authorea, Inc. 2024
Subjects:
Online Access:http://dx.doi.org/10.22541/essoar.170559484.41362032/v1
id crwinnower:10.22541/essoar.170559484.41362032/v1
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spelling crwinnower:10.22541/essoar.170559484.41362032/v1 2024-06-02T08:11:09+00:00 Internal tide energy transfers induced by mesoscale circulation and topography across the North Atlantic Bella, Adrien Lahaye, Noé Tissot, Gilles 2024 http://dx.doi.org/10.22541/essoar.170559484.41362032/v1 unknown Authorea, Inc. http://creativecommons.org/licenses/by-nc/4.0/ posted-content 2024 crwinnower https://doi.org/10.22541/essoar.170559484.41362032/v1 2024-05-07T14:19:24Z The interaction between the internal tide and the mesoscale circulation are studied from the internal tide energy budget perspective. To that end, the modal energy budget of the internal tide is diagnosed using a high resolution numerical simulation covering the North Atlantic. Compared to the topographic contribution, the advection of the internal tide by the background flow and the horizontal and vertical shear are found to be significant at global scale, while the buoyancy contribution is important locally. The advection of the internal tide by mesoscale currents is responsible for a net energy transfer from the large scale to smaller scale internal tide, without significant exchanges with the background flow. On the opposite, the shear of the mesoscale circulation and the buoyancy field are responsible for exchanges between the internal tide and the background flow. The importance of the shear increases in the northernmost part of the domain, and a partial compensation between the buoyancy and the shear contributions is found in some areas of the North Atlantic, such as in the Gulf Stream region.In addition, the temporal variability of the topographic, advection, mesoscale shear and buoyancy gradient induced energy transfers is investigated. The spring neap cycle is the dominant frequency for the topographic scattering, but other frequencies modulate this term in areas of strong mesoscale activity. Mesoscale induced energy fluxes are modulated by both the spring neap cycle and the variation in the mesoscale circulation patterns. Other/Unknown Material North Atlantic The Winnower
institution Open Polar
collection The Winnower
op_collection_id crwinnower
language unknown
description The interaction between the internal tide and the mesoscale circulation are studied from the internal tide energy budget perspective. To that end, the modal energy budget of the internal tide is diagnosed using a high resolution numerical simulation covering the North Atlantic. Compared to the topographic contribution, the advection of the internal tide by the background flow and the horizontal and vertical shear are found to be significant at global scale, while the buoyancy contribution is important locally. The advection of the internal tide by mesoscale currents is responsible for a net energy transfer from the large scale to smaller scale internal tide, without significant exchanges with the background flow. On the opposite, the shear of the mesoscale circulation and the buoyancy field are responsible for exchanges between the internal tide and the background flow. The importance of the shear increases in the northernmost part of the domain, and a partial compensation between the buoyancy and the shear contributions is found in some areas of the North Atlantic, such as in the Gulf Stream region.In addition, the temporal variability of the topographic, advection, mesoscale shear and buoyancy gradient induced energy transfers is investigated. The spring neap cycle is the dominant frequency for the topographic scattering, but other frequencies modulate this term in areas of strong mesoscale activity. Mesoscale induced energy fluxes are modulated by both the spring neap cycle and the variation in the mesoscale circulation patterns.
format Other/Unknown Material
author Bella, Adrien
Lahaye, Noé
Tissot, Gilles
spellingShingle Bella, Adrien
Lahaye, Noé
Tissot, Gilles
Internal tide energy transfers induced by mesoscale circulation and topography across the North Atlantic
author_facet Bella, Adrien
Lahaye, Noé
Tissot, Gilles
author_sort Bella, Adrien
title Internal tide energy transfers induced by mesoscale circulation and topography across the North Atlantic
title_short Internal tide energy transfers induced by mesoscale circulation and topography across the North Atlantic
title_full Internal tide energy transfers induced by mesoscale circulation and topography across the North Atlantic
title_fullStr Internal tide energy transfers induced by mesoscale circulation and topography across the North Atlantic
title_full_unstemmed Internal tide energy transfers induced by mesoscale circulation and topography across the North Atlantic
title_sort internal tide energy transfers induced by mesoscale circulation and topography across the north atlantic
publisher Authorea, Inc.
publishDate 2024
url http://dx.doi.org/10.22541/essoar.170559484.41362032/v1
genre North Atlantic
genre_facet North Atlantic
op_rights http://creativecommons.org/licenses/by-nc/4.0/
op_doi https://doi.org/10.22541/essoar.170559484.41362032/v1
_version_ 1800757192978071552