A small-scale oceanic eddy off the coast of West Africa studied by multi-sensor satellite and surface drifter data

被引:52
作者
Alpers, Werner [1 ]
Brandt, Peter [2 ]
Lazar, Alban [3 ]
Dagorne, Dominique [4 ]
Sow, Bamol [5 ,6 ]
Faye, Saliou [6 ,7 ]
Hansen, Morten W. [8 ]
Rubino, Angelo [9 ]
Poulain, Pierre-Marie [10 ]
Brehmer, Patrice [7 ,11 ]
机构
[1] Univ Hamburg, Ctr Earth Syst Res & Sustainabil, Inst Oceanog, D-20146 Hamburg, Germany
[2] GEOMAR Helmholtz Zentrum Ozeanforsch Kiel, D-24105 Kiel, Germany
[3] Univ Paris 06, UPMC, IRD, LOCEAN IPSL,CNRS,MNHN, F-75252 Paris 05, France
[4] US Imago, Inst Rech Dev, F-29280 Plouzane, France
[5] Univ Ziguinchor, Lab Oceanog Sci Environm & Climat, Ziguincho, Senegal
[6] ESP UCAD, Lab Phys Atmosphere & Ocean, Dakar, Senegal
[7] CRODT, Inst Senegalais Rech Agron, Dakar, Senegal
[8] Nansen Environm & Remote Sensing Ctr, N-5006 Bergen, Norway
[9] Univ Ca Foscari Venezia, Dipartimento Sci Ambientali, I-30123 Venice, Italy
[10] Ist Nazl Oceanog & Geofis Sperimentale OGS, I-34010 Trieste, Italy
[11] IFREMER, IRD, UMR LEMAR, CNRS,UBO, F-29280 Plouzane, France
关键词
Small-scale eddy; Trade winds; Coastal upwelling; SST; Chlorophyll-a; MODIS; SAR; Surface drifter; West Africa; Cap-Vert; MESOSCALE EDDIES; BIOLOGICAL PRODUCTION; REDUCED-GRAVITY; SPIRAL EDDIES; RADAR; PHYTOPLANKTON; WIND; SEA; SUBMESOSCALE; ASSEMBLAGES;
D O I
10.1016/j.rse.2012.10.032
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
A small-scale oceanic eddy, which was generated in autumn 2011 at the headland of Cap-Vert off the coast of Senegal, West Africa, and then propagated westward into the open North Atlantic Ocean, is studied by multi-sensor satellite and surface drifter data. The eddy was generated after a sudden increase of the trade winds causing an enhanced southward flow and upwelling at the coast of Senegal. After this wind burst event, an extremely nonlinear cyclonic eddy with a radius of about 10 to 20 km evolved downstream of Cap-Vert with Rossby number larger than one. Our analysis suggests that the eddy was generated by flow separation at the headland of Cap-Vert. The eddy was tracked on its way into the open North Atlantic Ocean from satellites over 31 days via its sea surface temperature and chlorophyll-a (CHL) signature and by a satellite-tracked surface drifter. The satellite images show that this small-scale eddy transported nutrients from the upwelling region westward into the oligotrophic North Atlantic thus giving rise to enhanced CHL concentration there. Maximum CHL concentration was encountered few days after vortex generation, which is consistent with a delayed plankton growth following nutrient supply into the euphotic zone within the eddy. Furthermore, the eddy was imaged by the synthetic aperture radar (SAR) onboard the Envisat satellite. It is shown that the radar signatures of cold eddies result from damping of short surface waves by biogenic surface films which arise from surface-active material secreted by the biota in the cold eddy as well as by the change of the stability of the air-sea interface. (C) 2012 Elsevier Inc. All rights reserved.
引用
收藏
页码:132 / 143
页数:12
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