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Stefano Salon

Researcher at National Institute of Oceanography, India

Publications -  63
Citations -  1344

Stefano Salon is an academic researcher from National Institute of Oceanography, India. The author has contributed to research in topics: Mediterranean sea & Turbulence. The author has an hindex of 17, co-authored 56 publications receiving 1015 citations. Previous affiliations of Stefano Salon include University of Trieste.

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Seasonal and inter-annual variability of plankton chlorophyll and primary production in the Mediterranean Sea: a modelling approach

TL;DR: In this paper, a 3D-biogeochemical model of chlorophyll and primary production in the pelagic Mediterranean Sea was developed to explore specific system characteristics and quantify dynamics of key biogeochemical variables over a 6-year period from 1999 to 2004.
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Current state, scales of variability, and trends of biogeochemical properties in the northern Adriatic Sea

TL;DR: In this article, a statistical analysis performed on a data set obtained by integrating experimental observations collected during many oceanographic research projects on the northern Adriatic Sea (NAS) is presented.
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Copernicus Marine Service Ocean State Report

Karina von Schuckmann, +121 more
TL;DR: Sandrine Mulet, Bruno Buongiorno Nardelli, Simon Good, Andrea Pisano, Eric Greiner, Maeva Monier, Emmanuel... as discussed by the authors The Essential Variables of Ocean Temperature and Salinity
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Spatial variability of phosphate and nitrate in the Mediterranean Sea: A modeling approach

TL;DR: In this article, the spatial distributions and seasonal dynamics of phosphate and nitrate in the Mediterranean Sea were analyzed under present conditions and relying on statistical analysis of the output of a state-of-the-art corroborated numerical model.
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A numerical investigation of the Stokes boundary layer in the turbulent regime

TL;DR: In this paper, the Stokes boundary layer in the turbulent regime is investigated by using large-eddy simulations (LES), and the Reynolds number is set equal to Reδ = 1790, which corresponds to test 8 of the experimental study of Jensen et al.