Damping of Inertial Motions through the Radiation of Near-Inertial Waves in a Dipole Vortex in the Iceland Basin

Author:

Thomas Leif N.1,Skyllingstad Eric D.2,Rainville Luc3,Hormann Verena4,Centurioni Luca4,Moum James N.2,Asselin Olivier5,Lee Craig M.3

Affiliation:

1. a Department of Earth System Science, Stanford University, Stanford, California

2. b College of Earth, Ocean and Atmospheric Sciences, Oregon State University, Corvallis, Oregon

3. c Applied Physics Laboratory, University of Washington, Seattle, Washington

4. d Scripps Institution of Oceanography, University of California, San Diego, La Jolla, California

5. e Ouranos, Montreal, Quebec, Canada

Abstract

Abstract Along with boundary layer turbulence, downward radiation of near-inertial waves (NIWs) damps inertial oscillations (IOs) in the surface ocean; however, the latter can also energize abyssal mixing. Here we present observations made from a dipole vortex in the Iceland Basin where, after the period of direct wind forcing, IOs lost over half their kinetic energy (KE) in two inertial periods to radiation of NIWs with minimal turbulent dissipation of KE. The dipole’s vorticity gradient led to a rapid reduction in the NIW’s lateral wavelength via ζ refraction that was accompanied by isopycnal undulations below the surface mixed layer. Pressure anomalies associated with the undulations were correlated with the NIW’s velocity yielding an energy flux of 310 mW m−2 pointed antiparallel to the vorticity gradient and a downward flux of 1 mW m−2 capable of driving the observed drop in KE. The minimal role of turbulence in the energetics after the IOs had been generated by the winds was confirmed using a large-eddy simulation driven by the observed winds. Significance Statement We report direct observational estimates of the vector wave energy flux of a near-inertial wave. The energy flux points from high to low vorticity in the horizontal, consistent with the theory of ζ refraction. The downward energy flux dominates the observed damping of inertial motions over turbulent dissipation and mixing.

Funder

Office of Naval Research

National Oceanic and Atmospheric Administration

Publisher

American Meteorological Society

Subject

Oceanography

Reference38 articles.

1. Revisiting near-inertial wind work: Slab models, relative stress, and mixed layer deepening;Alford, M. H.,2020

2. Near-inertial mixing: Modulation of shear, strain and microstructure at low latitude;Alford, M. H.,2001

3. Annual cycle and depth penetration of wind-generated near-inertial internal waves at ocean station papa in the northeast Pacific;Alford, M. H.,2012

4. Refraction and straining of near-inertial waves by barotropic eddies;Asselin, O.,2020

5. Turbulence asymmetries in bottom boundary layer velocity pulses associated with onshore-propagating nonlinear internal waves;Becherer, J.,2020

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