PO31C:
The Ocean's Energy Cascade: Measuring and Modeling of Instabilities, Internal Waves, and Turbulence at the Submesoscale and Smaller IV

Submit an Abstract to this Session

Session ID#: 11432

Session Description:
Large scale O(10^5 m) oceanic motions are linked to the turbulent scales O(<1 m) through a variety of mechanisms including internal wave radiation, interaction, and scattering, frontal instabilities, and boundary layer physics. Such mechanisms are essential for the vertical redistribution of energy generated along the ocean’s upper and bottom boundaries and thus are of critical importance in providing mechanical energy to processes in the stratified interior of the ocean. Regions of enhanced mixing are often found where a combination of currents, stratification, and topography act together to increase the potential for nonlinear interactions in the flow, for example through frontal instabilities and strong internal wave generation. Enhanced turbulence leads to mixing of water mass properties and changes to flow dynamics that can feedback on the larger-scale physics.  This session welcomes contributions from observational, theoretical, and numerical studies of the ocean's energy cascade at small scales (i.e. submesoscale and smaller).
Primary Chair:  Subhas Karan Venayagamoorthy, Colorado State University, Department of Civil and Environmental Engineering, Fort Collins, CO, United States
Chairs:  Louis St Laurent, Applied Physics Laboratory, University of Washington, Seattle, United States, Emily Shroyer, Oregon State Univ, Corvallis, United States and Harper L. Simmons, University of Washington, Seattle, United States
Moderators:  Harper L. Simmons, University of Washington, Seattle, United States and Emily Shroyer, Oregon State Univ, Corvallis, United States
Student Paper Review Liaison:  Subhas Karan Venayagamoorthy, Colorado State University, Department of Civil and Environmental Engineering, Fort Collins, CO, United States
Index Terms:
Co-Sponsor(s):
  • A - Air-sea Interactions and Upper Ocean Processes
  • EC - Estuarine and Coastal
  • OD - Ocean Observing and Data Management
  • TP - Turbulent Processes

Abstracts Submitted to this Session:

Observations of an internal tide beam in the Tasman Sea (90801)
Amy Frances Waterhouse1, Samuel Maurice Kelly2, Jennifer A MacKinnon3, Jonathan D Nash4, Shaun Johnston5, Zhongxiang Zhao6, Luc Rainville6, Harper L. Simmons7, Dmitry Brazhnikov8 and Daniel L Rudnick9, (1)Scripps Institution of Oceanography, La Jolla, United States, (2)University of Minnesota Duluth, Duluth, United States, (3)University of California San Diego, La Jolla, CA, United States, (4)Oregon State University, College of Earth, Ocean, and Atmospheric Sciences, Corvallis, United States, (5)University of California San Diego, Scripps Institution of Oceanography, La Jolla, CA, United States, (6)Applied Physics Laboratory University of Washington, Seattle, United States, (7)University of Washington, Seattle, United States, (8)University of Alaska Fairbanks, Anchorage, AK, United States, (9)Scripps Institution of Oceanography, La Jolla, CA, United States
Global Internal Tide Energy Flux and Dissipation from Satellite Altimetry (92949)
Zhongxiang Zhao, Applied Physics Laboratory University of Washington, Seattle, United States, Matthew H Alford, Scripps Institution of Oceanography, UC San Diego, La Jolla, United States, James B Girton, University of Washington, Applied Physics Laboratory, Seattle, United States, Luc Rainville, Applied Physics Laboratory University of Washington, Seattle, WA, United States, Harper L. Simmons, University of Washington, Seattle, United States, Amy Frances Waterhouse, Scripps Institution of Oceanography, University of California San Diego, San Diego, United States and Caitlin B Whalen, Scripps Institution of Oceanography, University of California San Diego, La Jolla, CA, United States
Tidally driven mixing and dissipation in the stratified boundary layer above steep submarine topography (88511)
Kraig B Winters, University of California San Diego, Scripps Institution of Oceanography, La Jolla, CA, United States
Evaluating the role of inertial and tidal internal wave dynamics on a narrow continental shelf: An assessment of the dominant physical dynamics influencing mixing and the energy budget (89304)
Tamara Lillian Schlosser1, Cynthia Bluteau2, Nicole L Jones2, Drew J. Lucas3, Jonathan D Nash4 and Gregory N Ivey2, (1)Scripps Institution of Oceanography, Marine Physical Laboratory, La Jolla, CA, United States, (2)University of Western Australia, Crawley, WA, Australia, (3)University of California San Diego, Scripps Institution of Oceanography, La Jolla, United States, (4)Oregon State University, College of Earth, Ocean, and Atmospheric Sciences, Corvallis, OR, United States
Nonlinear Internal Waves on the Inner Shelf: Observations Using a Distributed Temperature Sensing (DTS) System. (92734)
Kristen A Davis1, Emma Catherine Reid1 and Anne L Cohen2, (1)University of California Irvine, Civil and Environmental Engineering Department, Irvine, CA, United States, (2)Woods Hole Oceanographic Institution, Woods Hole, MA, United States
Near-Bottom Turbulence in the Deep Hypolimnetic Waters of a Large Stratified Basin (93533)
Dr. Cary David Troy, PhD, Purdue University, Lyles School of Civil and Construction Engineering, West Lafayette, United States and David Cannon, Purdue University, Lyles School of Civil Engineering, West Lafayette, IN, United States
Horizontal distribution of near-inertial waves in the western Gulf of Mexico: Eulerian vs Lagrangian. (92617)
Enric Pallas Sanz1, Paula García-Carrillo2, Beatriz Ixetl Garcia Gomez3, Jonathan M Lilly4 and Paula Perez-Brunius1, (1)Center for Scientific Research and Higher Education at Ensenada, Physical Oceanography, Ensenada, BJ, Mexico, (2)CICESE, Ensenada, BJ, Mexico, (3)CICESE, Ensenada, Mexico, (4)Theiss Research, La Jolla, CA, United States