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Resonant Langmuir-circulation–internal-wave interaction. Part 1. Internal wave reflection

Published online by Cambridge University Press:  11 November 2003

G. P. CHINI
Affiliation:
Mechanical Engineering Department, University of New Hampshire, Durham, NH 03824, USA
S. LEIBOVICH
Affiliation:
Sibley School of Mechanical and Aerospace Engineering, Cornell University, Ithaca, NY 14853, USA

Abstract

Langmuir circulation is a convective motion commonly observed in the oceanic mixed layer. Internal waves are a prominent feature of stratified regions, particularly the thermocline bounding the mixed layer. Here, the potential for Langmuir-circulation–internal-wave coupling is investigated using a two-layer ocean model. The density jump across the sharp thermocline confines all rotational motions, including the wind-aligned Langmuir vortices, to the upper (‘mixed’) layer. Linear analysis indicates: (i) that thermocline compliance enhances the onset of Langmuir circulation, and (ii) that the ‘vortex force’ arising from the interaction of surface waves with the wind-driven shear modifies the dynamics of cross-wind propagating internal waves. Weakly nonlinear analysis reveals that resonant cross-wind propagating internal waves can be nonlinearly reflected from stationary Langmuir circulation, a dynamic reminiscent of the ‘Bragg reflection’ of surface waves propagating over sand bars. A key feature of the reflection mechanism is the modification of the linear internal-wave dynamics by the vortex force.

Type
Papers
Copyright
© 2003 Cambridge University Press

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