[en] A three-dimensional, unsteady, nonlinear, high-resolution model is used to investigate the impact of the Calvi Canyon (NW Corsica) steep topography on the shelf-slope exchanges as well as on the circulation in the Calvi Bay in homogeneous winter and early spring conditions. A double σ coordinate system is considered in order to represent adequately the high depth gradients within the canyon. The studied region is under the influence of the West Corsica Current flowing northeastward along the NW Corsican coast (right-bounded flow). Model results show that the circulation in the Calvi Bay is determined by flow modifications in the canyon area. The mean horizontal flow is deviated southwestward upstream of the canyon to form an anticyclonic gyre in the western part of the Calvi Bay. Within the canyon the circulation is cyclonic leading to an offshore flow downstream of the canyon. Around the canyon rim, the cross-shelf currents become important, indicating that this region acts as a transition zone of high exchange between nearshore and offshore areas. Furthermore, the canyon topography generates high downwelling (upwelling) and downsloping (upsloping) velocities responsible for an intense vertical transport of material in the area. Numerical runs are performed for typical prevailing wind conditions. The wind is responsible for a drastic increase of cross-shore transports between the bay and the canyon area (3–4 times larger than in the no-wind case). SW winds induce a further enhancement of cross-shelf exchanges, whereas the effect of N-NE winds is to reduce exchange at the shelf break apart from the canyon head where an intense offshore flow occurs. Within the canyon, high vertical velocities are shown to be associated with high cyclonic vorticity which is enhanced (reduced) by the N-NE (SW) wind event. A comparison between model results and measured distributions of nitrate and chlorophyll a concentrations in the area shows the role played by this specific hydrodynamics as a strong constraint on the coastal pelagic ecosystem.
Research Center/Unit :
MARE - Centre Interfacultaire de Recherches en Océanologie - ULiège
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Bibliography
Allen, S.E., Topographically generated, subinertial flows within a finite length canyon, J. Phys. Oceanogr., 26, 1608-1632, 1996.
Alvarez, A., J. Tintoré, and A. Sabatés, Flow modification and shelf-slope exchange induced by a submarine canyon off the northeast Spanish coast J. Geophys. Res., 101, 12,043-12,055, 1996.
Ardhuin, F., J.M. Pinot, and J. Tintoré, Numerical study of the circulation in a steep canyon off the Catalan coast (western Mediterranean), J. Geophys. Res., 104, 11,115-11,135, 1999.
Astraldi, M., and G.P. Gasparini, The seasonal characteristics of the circulation in the north Mediterranean basin and their relationship with the atmospheric-climatic conditions, J. Geophys. Res., 97, 9531-9540, 1992.
Beckers, J.M., Application of the GHER 3D general circulation model to the Western Mediterranean, J. Mar. Syst., 1, 315-332, 1991.
Blumberg, A.F., and G.L. Mellor, A description of a three-dimensional coastal ocean circulation model, in Three-Dimensional Coastal Ocean Models, Coastal Estuarine Sci., vol. 4, edited by N.S. Heaps, pp. 1-16, AGU, Washington, D.C., 1987.
Crank, J., and P. Nicolson, A practical method for numerical evolution of solution of differential equations of the heat conduction type, Math. Proc. Cambridge Philos. Soc., 50, 50-67, 1947.
Deleersnijder, E., Upwelling and upsloping in three-dimensional marine models, Appl. Math. Modell., 13, 462-467, 1989.
Deleersnijder, E., and J.M. Beckers, On the use of the σ coordinate system in regions of large bathymetric variation, J. Mar. Syst., 3, 381-390, 1992.
Djenidi, S., Observations au large de Calvi en régime d'été, Bull. Soc. R. Sci. Liège, 54, 287-300, 1985.
Djenidi, S., J.C.J. Nihoul, F. Clément, and D. Salas de Leon, The Modem contribution to Medalpex, Ann. Geophys., 5, 3-12, 1987.
Durrieu de Madron, X., Hydrology and nepheloid structure in the Gran-Rhône canyon, Cont. Shelf Res., 14, 457-477, 1994.
Freeland, H.J., and K.L. Denman, A topographically induced upwelling center off southern Vancouver Island, J. Mar. Res., 40, 1069-1093, 1982.
Freeman, N.G., A.M. Hale, and M.B. Danard, A modified sigma equations' approach to the numerical modeling of Great Lakes hydrodynamics conditions, J. Geophys. Res., 77, 1050-1060, 1972.
Geyer, W.R., and R. Signell, Measurements of tidal flow around a headland with a shipboard acoustic Doppler current profiler, J. Geophys. Res., 95, 3189-3197, 1990.
Goffart, A., J.H. Hecq, and L. Prieur, Control of the phytoplankton of the Ligurian basin by the Liguro-Provençal front (Corsican sector), Oceanol. Acta, 18, 329-342, 1995.
Granata, T.C., B. Vidondo, C.M. Duarte, M.P. Satta, and M. Garcia, Hydrodynamics and particle transport associated with a submarine canyon off Blanes (Spain, NW Mediterranean Sea), Cont. Shelf Res., 19, 1249-1263, 1999.
Hickey, B.M., The response of a steep-sided, narrow canyon to time-variable wind forcing, J. Phys. Oceanogr., 27, 697-726, 1997.
Hickey, B.M., E. Baker, and N. Kachel, Suspended particle movement in and around Quinault Submarine Canyon, Mar. Geol., 71, 35-83, 1986.
Hunkins, K., Mean and tidal currents in Baltimore Canyon, J. Geophys. Res., 93, 6917-6929, 1988.
James, I.D., Advection schemes for shelf sea models, J. Mar. Syst., 8, 237-254, 1996.
Klinck, J.M., The influence of a narrow transverse canyon on initially geostrophic flow, J. Geophys. Res., 93, 509-515, 1988.
Klinck, J.M., Geostrophic adjustment over submarine canyons, J. Geophys. Res., 94, 6133-6144, 1989.
Klinck, J.M., Circulation near submarine canyons: A modeling study. J. Geophys. Res., 101, 1211-1223, 1996.
La Violette, P.E., J. Tintoré, and J. Font, The surface circulation of the Balearic Sea. J. Geophys. Res., 95, 1559-1568, 1990.
Maso, M., and J. Tintoré, Variability of the shelf water off the northeast Spanish coast, J. Mar. Syst., 1, 441-450, 1991.
Millot, C., Mesoscale and seasonal variabilities of the circulation in the Western Mediterranean, Dyn. Atmos. Oceans, 15, 179-214, 1991.
Monaco, A., X. Durrieu de Madron, O. Rodacovitch, S. Huessner, and J. Carbone, Origin and variability of downward biogeochemical fluxes on the Rhône continental margin (NW Mediterranean), Deep Sea Res., 46, 1483-1511, 1999.
Nihoul, J.C.J., A three-dimensional general marine circulation model in a remote sensing perspective, Ann. Geophys., 2, 433-442, 1984.
Nihoul, J.C.J., and S. Djenidi, Perspective in three-dimensional modeling of the marine system, in Three-Dimensional Models of Marine and Estuarine Dynamics, edited by J.C.J. Nihoul and B. Jamart, pp. 1-34, Elsevier Sci., New York, 1987.
Nihoul, J.C.J., E. Deleersnijder, and S. Djenidi, Modelling the general circulation of shelf seas by 3D k-ε models, Earth Sci. Rev., 26, 163-189, 1989.
Noble, M., and B. Butman, The structure of subtidal currents within and around Lydonia Canyon: Evidence for enhanced cross-shelf fluctuations over the mouth of the canyon, J. Geophys. Res., 94, 8091-8110, 1989.
Norro, A., Etude pluridisciplinaire d'un milieu côtier: Approches experimentale et de modélisation de la baie de Calvi (Corse), Ph.D. thesis, Univ. Liège, Liège, Belgium, 1995.
Peyret, R., and T.D. Taylor, Computational Methods for Fluid Flows, 388 pp, Springier-Verlag, New York, 1983.
Robinson, I.S., Tidal vorticity and residual circulation, Deep Sea Res., 28, 195-212, 1981.
Robinson, I.S., Tidally induced residual flows, in Physical Oceanography of Coastal and Shelf Seas, edited by B. Johns, pp. 321-356, Elsevier Sci., New York, 1983.
Roed, L.P., and C.K. Cooper, A study of various open boundary conditions for wind-forced barotropic numerical ocean models, in Three-dimensional Models of Marine and Estuarine Dynamics, edited by J.C.J. Nihoul and B. Jamart, pp. 305-336, Elsevier Sci., New York, 1987.
Rojas, P., et al., On the structure of the mean flow in the Blanes canyon area (NW Mediterranean) during summer, Oceanol. Acta, 18, 443-458, 1995.
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