Observed Eddy–Internal Wave Interactions in the Southern Ocean

Author:

Cusack Jesse M.1,Brearley J. Alexander2,Naveira Garabato Alberto C.3,Smeed David A.4,Polzin Kurt L.5,Velzeboer Nick6,Shakespeare Callum J.6

Affiliation:

1. a Scripps Institution of Oceanography, University of California, San Diego, La Jolla, California

2. b British Antarctic Survey, Cambridge, United Kingdom

3. c University of Southampton, National Oceanography Centre, Southampton, United Kingdom

4. d National Oceanography Centre, Southampton, United Kingdom

5. e Woods Hole Oceanographic Institute, Woods Hole, Massachusetts

6. f Research School of Earth Sciences and ARC Centre of Excellence in Climate Extremes, Australian National University, Canberra, Australian Capital Territory, Australia

Abstract

AbstractThe physical mechanisms that remove energy from the Southern Ocean’s vigorous mesoscale eddy field are not well understood. One proposed mechanism is direct energy transfer to the internal wave field in the ocean interior, via eddy-induced straining and shearing of preexisting internal waves. The magnitude, vertical structure, and temporal variability of the rate of energy transfer between eddies and internal waves is quantified from a 14-month deployment of a mooring cluster in the Scotia Sea. Velocity and buoyancy observations are decomposed into wave and eddy components, and the energy transfer is estimated using the Reynolds-averaged energy equation. We find that eddies gain energy from the internal wave field at a rate of −2.2 ± 0.6 mW m−2, integrated from the bottom to 566 m below the surface. This result can be decomposed into a positive (eddy to wave) component, equal to 0.2 ± 0.1 mW m−2, driven by horizontal straining of internal waves, and a negative (wave to eddy) component, equal to −2.5 ± 0.6 mW m−2, driven by vertical shearing of the wave spectrum. Temporal variability of the transfer rate is much greater than the mean value. Close to topography, large energy transfers are associated with low-frequency buoyancy fluxes, the underpinning physics of which do not conform to linear wave dynamics and are thereby in need of further research. Our work suggests that eddy–internal wave interactions may play a significant role in the energy balance of the Southern Ocean mesoscale eddy and internal wave fields.

Funder

Natural Environment Research Council

Australian Research Council (ARC) Discovery Early Career Researcher Award

Publisher

American Meteorological Society

Subject

Oceanography

Reference62 articles.

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5. Brown, E. D., and W. B.Owens, 1981: Observations of the horizontal interactions between the internal wave field and the mesoscale flow. J. Phys. Oceanogr., 11, 1474–1480, https://doi.org/10.1175/1520-0485(1981)011%3C1474:OOTHIB%3E2.0.CO;2.

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