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Tidal to decadal scale hydrodynamics at two contrasting cold-water coral sites in the Northeast Atlantic

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Tidal to decadal scale hydrodynamics at two contrasting cold-water coral sites in the Northeast Atlantic

DOI: 10.1016/j.pocean.2023.103031

Type: Publication

Year: 2023

Citations: 11

AZORES DEEP-SEA RESEARCH
Publication Open access April 2023

Tidal to decadal scale hydrodynamics at two contrasting cold-water coral sites in the Northeast Atlantic

Total authors
17
Involved team members
3
Citations
11
References
117

Citations by year

3 years
2026
3
2025
3
2024
5

Related to this work

Abstract

Cold-water corals (CWCs) thrive in areas with complex and rough topography favoring the development of highly diverse benthic communities. Several biotic and abiotic factors including organic matter supply, temperature, bottom roughness and currents are important drivers of ecosystem structure and functioning in deep-sea environments at different spatial and temporal scales. Little is known, however, how basin-scale changes in the ocean climate affect these drivers at local scales. Here, we use high-resolution implementations of the hydrodynamic model ROMS-AGRIF for estimating characteristic spatial and temporal scales of local hydrodynamics in response to variations of basin-scale currents imposed by distinct changes of the Atlantic Meridional Overturning Circulation (AMOC) in the past century. We focus on two CWC communities on the SE Rockall Bank slope and at Condor Seamount. We considered two contrasting AMOC states that were identified from the 1958–2009 hindcast of the 1/20° resolution VIKING20 North Atlantic basin-scale ocean circulation model and used as boundary conditions for the high-resolution local area models. At SE Rockall Bank, variability of near-bottom currents in both regions was largely dominated by tidal dynamics, but strongly modified by AMOC induced basin-scale variations of water mass properties and bottom currents. During strong AMOC years, waters in the main CWC depth corridor (600–1200 m) were cooler and less saline but were dominated by stronger bottom currents when compared with conditions during weak AMOC years. At Condor Seamount, bottom currents were largely unaffected by AMOC related changes close to the summit at water depths < 400 m. Kinetic energy dissipation rates derived from the 3D near-bottom velocity field appeared to positively relate with the in-situ CWC distribution. Kinetic energy dissipation is therefore proposed as a mechanistic descriptor of CWC presence as it provides a more mechanistic view of hydrodynamics driving organic matter supply to filter and suspension-feeding communities.

Authors

3 involved team members
J
Jørgen L.s. Hansen

Department of Ecoscience, Aarhus University, Roskilde, Denmark

S
Stuart A. Cunningham
0000-0001-9439-5442

Scottish Association for Marine Science, Oban, United Kingdom

E
Evert De Froe
0000-0002-1850-4384

Department of Ocean Systems, Royal Netherlands Institute for Sea Research (NIOZ), Den Burg, Netherlands

R
Ronnie N. Glud

HADAL & Nordcee, Department of Biology, University of Southern Denmark, 5230 Odense M, Denmark

+2 more

L
Lorenzo Rovelli
0000-0003-4011-7484

iES – Institute for Environmental Sciences, University of Koblenz-Landau, 76829 Landau, Germany

K
Kirstin Schulz
0000-0001-8404-944X

Oden Institute for Computational Engineering and Sciences, The University of Texas at Austin, Austin, TX, USA

K
Karline Soetaert
0000-0003-4603-7100

Department of Estuarine & Delta Systems, Royal Netherlands Institute for Sea Research (NIOZ), Yerseke, Netherlands

A
Anna Van Der Kaaden
0000-0002-8814-1822

Department of Estuarine & Delta Systems, Royal Netherlands Institute for Sea Research (NIOZ), Yerseke, Netherlands

D
Dick Van Oevelen
0000-0002-1740-5317

Department of Estuarine & Delta Systems, Royal Netherlands Institute for Sea Research (NIOZ), Yerseke, Netherlands

Record details

Type
article
Language
EN
Volume
214
Pages
103031–103031
ISSN
0079-6611

Keywords

Oceanography Geology Boundary current Seamount Water mass Benthic zone Ocean current Structural basin Hindcast Environmental science Climatology Geomorphology

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Institute of Marine Sciences — Okeanos, University of the Azores

Departamento de Oceanografia e Pescas — Universidade dos Açores

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9901-862 Horta, Portugal

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