A Laboratory Study of the Zonal Structure of Western Boundary Currents

Stefano Pierini Dipartimento di Scienze per l’Ambiente, Università di Napoli Parthenope, Naples, Italy

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Vincenzo Malvestuto Istituto di Scienze dell’Atmosfera e del Clima, CNR, Rome, Italy

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Giuseppe Siena CONISMA, Milazzo, Italy

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Thomas A. McClimans SINTEF, Trondheim, Norway

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Stig M. Løvås SINTEF, Trondheim, Norway

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Abstract

The zonal structure of strongly nonlinear inertial western boundary currents (WBCs) is studied experimentally along a straight “meridional” coast in a 5-m-diameter rotating basin by analyzing the “zonal” profile of the meridional velocity field as a function of transport intensity and other dynamical parameters. The return flow that is generated by the surface wind stress curl in the oceanic interior is forced in the rotating basin by the motion of a piston, in the absence of any surface stress. The laboratory setup consists of two parallel rectangular channels separated by an island and linked by two curved connections: in the first channel, a piston is forced at a constant speed up ranging from 0.5 to 3 cm s−1 over a distance of 2.5 m, producing a virtually unsheared current at the entrance of the second channel. In the latter, a linear reduction of the water depth provides the topographic beta effect that is necessary for the development of the westward intensification. Nearly steady currents are obtained and measured photogrammetrically over a region of about 1 m2. In all of the experiments performed, an appropriate horizontal Reynolds number (Re = ε/E, where ε and E are dimensionless numbers measuring the importance of nonlinearity and lateral friction, respectively) is Re ≫ 1. The zonal profile of the meridional velocity is always found to have (away from the viscous boundary layer) a nearly exponential structure typical of inertial WBCs, whose width agrees well with the classical inertial boundary layer length scale δI. A control experiment (with up = 1 cm s−1) is analyzed in detail: it has the same ε as the Gulf Stream (GS) but a much smaller E. This implies that the laboratory flow is expected to be geometrically similar to the GS outside the viscous boundary layer, but to differ within it. To assess the effect of such a departure from dynamic similarity, a mathematical model is used that numerically simulates a flow that is fully dynamically similar to the GS. The comparison between the profile thus obtained numerically and the one obtained experimentally shows that they are, indeed, virtually coincident outside the viscous boundary layer, except for a small offset that tends to vanish as Re → ∞. Moreover, additional sensitivity experiments in which the piston speed, the rotation rate of the basin, the topographic beta effect, and the width of the main channel are varied provide further information on the zonal structure of WBCs.

Corresponding author address: Stefano Pierini, Dipartimento di Scienze per l’Ambiente, Università di Napoli “Parthenope,” Centro Direzionale, Isola C4, 80143 Napoli, Italy. Email: stefano.pierini@uniparthenope.it

Abstract

The zonal structure of strongly nonlinear inertial western boundary currents (WBCs) is studied experimentally along a straight “meridional” coast in a 5-m-diameter rotating basin by analyzing the “zonal” profile of the meridional velocity field as a function of transport intensity and other dynamical parameters. The return flow that is generated by the surface wind stress curl in the oceanic interior is forced in the rotating basin by the motion of a piston, in the absence of any surface stress. The laboratory setup consists of two parallel rectangular channels separated by an island and linked by two curved connections: in the first channel, a piston is forced at a constant speed up ranging from 0.5 to 3 cm s−1 over a distance of 2.5 m, producing a virtually unsheared current at the entrance of the second channel. In the latter, a linear reduction of the water depth provides the topographic beta effect that is necessary for the development of the westward intensification. Nearly steady currents are obtained and measured photogrammetrically over a region of about 1 m2. In all of the experiments performed, an appropriate horizontal Reynolds number (Re = ε/E, where ε and E are dimensionless numbers measuring the importance of nonlinearity and lateral friction, respectively) is Re ≫ 1. The zonal profile of the meridional velocity is always found to have (away from the viscous boundary layer) a nearly exponential structure typical of inertial WBCs, whose width agrees well with the classical inertial boundary layer length scale δI. A control experiment (with up = 1 cm s−1) is analyzed in detail: it has the same ε as the Gulf Stream (GS) but a much smaller E. This implies that the laboratory flow is expected to be geometrically similar to the GS outside the viscous boundary layer, but to differ within it. To assess the effect of such a departure from dynamic similarity, a mathematical model is used that numerically simulates a flow that is fully dynamically similar to the GS. The comparison between the profile thus obtained numerically and the one obtained experimentally shows that they are, indeed, virtually coincident outside the viscous boundary layer, except for a small offset that tends to vanish as Re → ∞. Moreover, additional sensitivity experiments in which the piston speed, the rotation rate of the basin, the topographic beta effect, and the width of the main channel are varied provide further information on the zonal structure of WBCs.

Corresponding author address: Stefano Pierini, Dipartimento di Scienze per l’Ambiente, Università di Napoli “Parthenope,” Centro Direzionale, Isola C4, 80143 Napoli, Italy. Email: stefano.pierini@uniparthenope.it

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  • Baines, P. G., and R. L. Hughes, 1996: Western boundary current separation: Inferences from a laboratory experiment. J. Phys. Oceanogr., 26 , 25762588.

    • Search Google Scholar
    • Export Citation
  • Beardsley, R. C., 1969: A laboratory model of the wind-driven ocean circulation. J. Fluid Mech., 38 , 255271.

  • Beardsley, R. C., and K. Robbins, 1975: The “sliced-cylinder” laboratory model of the wind-driven ocean circulation. Part 1. Steady forcing and topographic Rossby wave instability. J. Fluid Mech., 69 , 2740.

    • Search Google Scholar
    • Export Citation
  • Deese, H. E., L. J. Pratt, and K. R. Helfrich, 2002: A laboratory model of exchange and mixing between western boundary layers and subbasin recirculation gyres. J. Phys. Oceanogr., 32 , 18701889.

    • Search Google Scholar
    • Export Citation
  • Faller, A. J., 1981: The origin and development of laboratory models and analogues of the ocean circulation. Evolution of Physical Oceanography: Scientific Surveys in Honor of Henry Stommel, B. A. Warren and C. Wunsch, Eds., MIT Press, 462–479.

    • Search Google Scholar
    • Export Citation
  • Fofonoff, N. P., 1954: Steady flow in a frictionless homogeneous ocean. J. Mar. Res., 13 , 254262.

  • Gill, A. E., 1982: Atmosphere–Ocean Dynamics. Academic Press, 662 pp.

  • Greenspan, H. P., 1969: A note on the laboratory simulation of planetary flows. Stud. Appl. Math., 48 , 147152.

  • Griffiths, R. W., and G. Veronis, 1997: A laboratory study of the effects of a sloping side boundary on wind-driven circulation in a homogeneous ocean model. J. Mar. Res., 55 , 11031126.

    • Search Google Scholar
    • Export Citation
  • Griffiths, R. W., and G. Veronis, 1998: Linear theory of the effect of a sloping boundary on circulation in a homogeneous laboratory model. J. Mar. Res., 56 , 7586.

    • Search Google Scholar
    • Export Citation
  • Griffiths, R. W., and A. E. Kiss, 1999: Flow regimes in a wide “sliced-cylinder” model of homogeneous beta-plane circulation. J. Fluid Mech., 399 , 205236.

    • Search Google Scholar
    • Export Citation
  • Helfrich, K. R., J. Pedlosky, and E. Carter, 1999: The shadowed island. J. Phys. Oceanogr., 29 , 25592577.

  • Hendershott, M. C., 1987: Single layer models of the general circulation. General Circulation of the Ocean, H. D. I. Abarbanel and W. R. Young, Eds., Springer-Verlag, 202–267.

    • Search Google Scholar
    • Export Citation
  • Kiss, A. E., 2001: Dynamics of laboratory models of the wind-driven ocean circulation. Ph.D. thesis, Australian National University, 150 pp.

  • Løvås, S. M., 2003: HYDRIV Task 4: Modernization and improvement of 3D particle tracking using three synchronous cameras for near real-time analysis. SINTEF Rep. STF80 A038059, 10 pp.

  • Løvås, S. M., T. A. McClimans, and E. Manent, 2001: The use of photogrammetry for measuring vertical velocities in laboratory geophysical dynamics experiments. Proc. Third Int. Symp. on Environmental Hydraulics, Tempe, AZ, International Association for Hydraulic Research (IAHR), 6 pp.

  • Munk, W. H., 1950: On the wind-driven ocean circulation. J. Meteor., 7 , 8093.

  • Nilsen, J. H., and I. Hådem, 1994: Photogrammetric tracking of tracer particles in modelled ocean flows. J. Photogramm. Remote Sens., 49 , 920.

    • Search Google Scholar
    • Export Citation
  • Pedlosky, J., 1965: A note on the western intensification of the oceanic circulation. J. Mar. Res., 23 , 207209.

  • Pedlosky, J., 1987: Geophysical Fluid Dynamics. 2nd ed. Springer-Verlag, 710 pp.

  • Pedlosky, J., 1996: Ocean Circulation Theory. Springer, 453 pp.

  • Pedlosky, J., and H. P. Greenspan, 1967: A simple laboratory model for the oceanic circulation. J. Fluid Mech., 27 , 291304.

  • Pedlosky, J., L. J. Pratt, M. A. Spall, and K. R. Helfrich, 1997: Circulation around islands and ridges. J. Mar. Res., 55 , 11991251.

  • Pierini, S., 1996: Topographic Rossby modes in the Strait of Sicily. J. Geophys. Res., 101 , 64296440.

  • Pierini, S., 2006: A Kuroshio Extension system model study: Decadal chaotic self-sustained oscillations. J. Phys. Oceanogr., 36 , 16051625.

    • Search Google Scholar
    • Export Citation
  • Pierini, S., A. M. Fincham, D. Renouard, M. R. D’Ambrosio, and H. Didelle, 2002: Laboratory modeling of topographic Rossby normal modes. Dyn. Atmos. Oceans, 35 , 205225.

    • Search Google Scholar
    • Export Citation
  • Pierini, S., 2008: On the crucial role of basin geometry in double-gyre models of the Kuroshio Extension. J. Phys. Oceanogr., 38 .in press.

    • Search Google Scholar
    • Export Citation
  • Rahmstorf, S., 1997: Risk of sea-change in the Atlantic. Nature, 388 , 825826.

  • Rahmstorf, S., 1999: Shifting seas in the greenhouse? Nature, 399 , 523524.

  • Rossby, T., and H-M. Zhang, 2001: The near-surface velocity and potential vorticity structure of the Gulf Stream. J. Mar. Res., 59 , 949975.

    • Search Google Scholar
    • Export Citation
  • Stommel, H., 1948: The westward intensification of wind-driven ocean currents. Trans. Amer. Geophys. Union, 29 , 202206.

  • Sverdrup, H. U., 1947: Wind-driven currents in a baroclinic ocean, with application to the equatorial currents of the eastern Pacific. Proc. Natl. Acad. Sci. USA, 33 , 318326.

    • Search Google Scholar
    • Export Citation
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