A Turbulence Survey in the Gulf of Naples, Mediterranean Sea, during the Seasonal Destratification

Author:

Kokoszka Florian1,Conversano Fabio1,Iudicone Daniele2,Ferron Bruno3ORCID,Bouruet-Aubertot Pascale4

Affiliation:

1. Department of Research Infrastructures for Marine Biological Resources (RIMAR), Stazione Zoologica Anton Dohrn, 80121 Naples, Italy

2. Department of Integrative Marine Ecology (EMI), Stazione Zoologica Anton Dohrn, 80121 Naples, Italy

3. Université de Brest, Centre National de la Recherche Scientifique (CNRS), Institut Français pour Recherche et l’Exploitation de la Mer (IFREMER), Institut de Recherche pour le Développement (IRD), Laboratoire d’Océanographie Physique et Spatiale (LOPS)—Institut Universitaire Européen de la Mer (IUEM), 29280 Plouzané, France

4. Sorbonne Université, Centre National de la Recherche Scientifique (CNRS), Institut de Recherche pour le Développement (IRD), Muséum National d’Histoire Naturelle (MNHN), Laboratoire d’Océanographie et du Climat: Expérimentation et Approches Numérique (LOCEAN), 75005 Paris, France

Abstract

The seasonality of the vertical mixing at coastal sites is not well characterized yet. Here, a time series of the dissipation rate of turbulent kinetic energy (ε) was obtained from weekly morning microstructure observations covering the destratification period (July 2015, February 2016) at a coastal site in the western Mediterranean Sea, influenced by freshwater runoffs. Estimated with bulk parameters from the public re-analyzed dataset ERA5, the Ekman layer, and the convective penetration depth scale with the mixed layer depth (MLD) with a good agreement. Below the MLD, peaks of ε are observed in the baroclinic layers that progressively overlap with the bottom layer, where repeated near-bottom turbidity peaks provide evidence of sediment resuspension, suggesting energetic processes within the bottom boundary layer. In the subsurface, moderate values (10−9 to 10−8 W kg−1) are observed, following a Burr type XII distribution. Significant correlation with ε at MLD is obtained with a model combining the effects of wind, wind–wave, and convection, highlighting a calm sea bias in our data, plus a sunrise bias when morning buoyancy fluxes are stabilizing. Another correlation, obtained from a pure-wind estimation 18 h before, suggests the role of wind in generating internal waves in the stratified layers, thus, impacting mixing intensity.

Funder

Stazione Zoologica Anton Dohrn

Publisher

MDPI AG

Subject

Ocean Engineering,Water Science and Technology,Civil and Structural Engineering

Reference101 articles.

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3. The Fate and Impact of Internal Waves in Nearshore Ecosystems;Woodson;Annu. Rev. Mar. Sci.,2018

4. Rising Mediterranean Sea Surface Temperatures Amplify Extreme Summer Precipitation in Central Europe;Volosciuk;Sci. Rep.,2016

5. Modelling a Tropical-like Cyclone in the Mediterranean Sea under Present and Warmer Climate;Koseki;Nat. Hazards Earth Syst. Sci.,2020

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