The LatMix Summer Campaign: Submesoscale Stirring in the Upper Ocean

Author:

Shcherbina Andrey Y.1,Sundermeyer Miles A.2,Kunze Eric3,D’Asaro Eric1,Badin Gualtiero4,Birch Daniel2,Brunner-Suzuki Anne-Marie E. G.2,Callies Jörn5,Kuebel Cervantes Brandy T.6,Claret Mariona7,Concannon Brian8,Early Jeffrey9,Ferrari Raffaele10,Goodman Louis2,Harcourt Ramsey R.1,Klymak Jody M.11,Lee Craig M.1,Lelong M.-Pascale9,Levine Murray D.6,Lien Ren-Chieh1,Mahadevan Amala7,McWilliams James C.12,Molemaker M. Jeroen12,Mukherjee Sonaljit2,Nash Jonathan D.6,Özgökmen Tamay13,Pierce Stephen D.6,Ramachandran Sanjiv2,Samelson Roger M.6,Sanford Thomas B.1,Shearman R. Kipp6,Skyllingstad Eric D.6,Smith K. Shafer14,Tandon Amit2,Taylor John R.15,Terray Eugene A.7,Thomas Leif N.16,Ledwell James R.7

Affiliation:

1. University of Washington, Seattle, Washington

2. University of Massachusetts Dartmouth, North Dartmouth, Massachusetts

3. Seattle, Washington

4. University of Hamburg, Hamburg, Germany

5. Massachusetts Institute of Technology/Woods Hole Oceanographic Institution Joint Program in Oceanography, Cambridge, Massachusetts

6. Oregon State University, Corvallis, Oregon

7. Woods Hole Oceanographic Institution, Woods Hole, Massachusetts

8. Naval Air Systems Command, Patuxent River, Maryland

9. NorthWest Research Associates, Redmond, Washington

10. Massachusetts Institute of Technology, Cambridge, Massachusetts

11. University of Victoria, Victoria, British Columbia, Canada

12. University of California, Los Angeles, Los Angeles, California

13. University of Miami, Miami, Florida

14. New York University, New York, New York

15. University of Cambridge, Cambridge, United Kingdom

16. Stanford University, Stanford, California

Abstract

Abstract Lateral stirring is a basic oceanographic phenomenon affecting the distribution of physical, chemical, and biological fields. Eddy stirring at scales on the order of 100 km (the mesoscale) is fairly well understood and explicitly represented in modern eddy-resolving numerical models of global ocean circulation. The same cannot be said for smaller-scale stirring processes. Here, the authors describe a major oceanographic field experiment aimed at observing and understanding the processes responsible for stirring at scales of 0.1–10 km. Stirring processes of varying intensity were studied in the Sargasso Sea eddy field approximately 250 km southeast of Cape Hatteras. Lateral variability of water-mass properties, the distribution of microscale turbulence, and the evolution of several patches of inert dye were studied with an array of shipboard, autonomous, and airborne instruments. Observations were made at two sites, characterized by weak and moderate background mesoscale straining, to contrast different regimes of lateral stirring. Analyses to date suggest that, in both cases, the lateral dispersion of natural and deliberately released tracers was O(1) m2 s–1 as found elsewhere, which is faster than might be expected from traditional shear dispersion by persistent mesoscale flow and linear internal waves. These findings point to the possible importance of kilometer-scale stirring by submesoscale eddies and nonlinear internal-wave processes or the need to modify the traditional shear-dispersion paradigm to include higher-order effects. A unique aspect of the Scalable Lateral Mixing and Coherent Turbulence (LatMix) field experiment is the combination of direct measurements of dye dispersion with the concurrent multiscale hydrographic and turbulence observations, enabling evaluation of the underlying mechanisms responsible for the observed dispersion at a new level.

Publisher

American Meteorological Society

Subject

Atmospheric Science

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