Rates and mechanisms of turbulent dissipation and mixing in the Southern Ocean : results from the Diapycnal and Isopycnal Mixing Experiment in the Southern Ocean (DIMES)

dc.contributor.author Sheen, Katy L.
dc.contributor.author Brearley, J. Alexander
dc.contributor.author Naveira Garabato, Alberto C.
dc.contributor.author Smeed, David A.
dc.contributor.author Waterman, Stephanie N.
dc.contributor.author Ledwell, James R.
dc.contributor.author Meredith, Michael P.
dc.contributor.author St. Laurent, Louis C.
dc.contributor.author Thurnherr, Andreas M.
dc.contributor.author Toole, John M.
dc.contributor.author Watson, Andrew J.
dc.date.accessioned 2013-11-14T20:03:17Z
dc.date.available 2014-10-22T08:57:21Z
dc.date.issued 2013-06-04
dc.description Author Posting. © American Geophysical Union, 2013. This article is posted here by permission of American Geophysical Union for personal use, not for redistribution. The definitive version was published in Journal of Geophysical Research: Oceans 118 (2013): 2774–2792, doi:10.1002/jgrc.20217. en_US
dc.description.abstract The spatial distribution of turbulent dissipation rates and internal wavefield characteristics is analyzed across two contrasting regimes of the Antarctic Circumpolar Current (ACC), using microstructure and finestructure data collected as part of the Diapycnal and Isopycnal Mixing Experiment in the Southern Ocean (DIMES). Mid-depth turbulent dissipation rates are found to increase from inline image in the Southeast Pacific to inline image in the Scotia Sea, typically reaching inline image within a kilometer of the seabed. Enhanced levels of turbulent mixing are associated with strong near-bottom flows, rough topography, and regions where the internal wavefield is found to have enhanced energy, a less-inertial frequency content and a dominance of upward propagating energy. These results strongly suggest that bottom-generated internal waves play a major role in determining the spatial distribution of turbulent dissipation in the ACC. The energy flux associated with the bottom internal wave generation process is calculated using wave radiation theory, and found to vary between 0.8 mW m−2 in the Southeast Pacific and 14 mW m−2 in the Scotia Sea. Typically, 10%–30% of this energy is found to dissipate within 1 km of the seabed. Comparison between turbulent dissipation rates inferred from finestructure parameterizations and microstructure-derived estimates suggests a significant departure from wave-wave interaction physics in the near-field of wave generation sites. en_US
dc.description.embargo 2013-12-04 en_US
dc.description.sponsorship The DIMES experiment is supported by the Natural Environment Research Council (NERC) of the U.K. and U.S. National Science Foundation. K.L.S. and J.A.B. are supported by NERC. en_US
dc.format.mimetype application/pdf
dc.identifier.citation Journal of Geophysical Research: Oceans 118 (2013): 2774–2792 en_US
dc.identifier.doi 10.1002/jgrc.20217
dc.identifier.uri https://hdl.handle.net/1912/6303
dc.language.iso en_US en_US
dc.publisher John Wiley & Sons en_US
dc.relation.uri https://doi.org/10.1002/jgrc.20217
dc.subject Turbulent dissipation en_US
dc.subject Internal wave en_US
dc.subject Antarctic Circumpolar Current en_US
dc.subject Mixing en_US
dc.title Rates and mechanisms of turbulent dissipation and mixing in the Southern Ocean : results from the Diapycnal and Isopycnal Mixing Experiment in the Southern Ocean (DIMES) en_US
dc.type Article en_US
dspace.entity.type Publication
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