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The Inner-Shelf Dynamics Experiment

Authors :
Sean Celona
Hans C. Graber
Jennifer A. MacKinnon
C. Chris Chickadel
Sutara H. Suanda
Andrew M. Moore
Christopher A. Edwards
Tongtong Xu
André Palóczy
David A. Fertitta
Jim Thomson
William J. Crawford
Annika O'Dea
Amy F. Waterhouse
Jamie MacMahan
P.B. Smit
Sophia Merrifield
Matthew S. Spydell
Nirnimesh Kumar
Melissa Moulton
Lisa Nyman
John A. Colosi
Falk Feddersen
Tony de Paolo
C. Swann
D. J. Grimes
Stephen D. Pierce
Merrick C. Haller
Emanuele Di Lorenzo
Alexandra Simpson
E. F. Braithwaite
Joseph Calantoni
Ryan S. Mieras
Kendall Melville
John A. Barth
T. T. Janssen
Björn Lund
Kevin A. Haas
Sean Haney
Jacqueline M. McSweeney
Eric Terrill
James A. Lerczak
Arthur J. Miller
Luc Lenain
Johannes Becherer
Roland Romeiser
Seongho Ahn
Michael Kovatch
Matt K. Gough
James N. Moum
Naval Postgraduate School
Civil and Environmental Engineering
Marine Science
Oceanography
Source :
Bulletin of the American Meteorological Society. 102:E1033-E1063
Publication Year :
2021
Publisher :
American Meteorological Society, 2021.

Abstract

17 USC 105 interim-entered record; under review. The article of record as published may be found at http://dx.doi.org/10.1175/BAMS-D-19-0281.1 The inner shelf, the transition zone between the surfzone and the midshelf, is a dynamically complex region with the evolution of circulation and stratification driven by multiple physical processes. Cross-shelf exchange through the inner shelf has important implications for coastal water quality, ecological connectivity, and lateral movement of sediment and heat. The Inner-Shelf Dynamics Experiment (ISDE) was an intensive, coordinated, multi-institution field experiment from September–October 2017, conducted from the midshelf, through the inner shelf, and into the surfzone near Point Sal, California. Satellite, airborne, shore- and ship-based remote sensing, in-water moorings and ship-based sampling, and numerical ocean circulation models forced by winds, waves, and tides were used to investigate the dynamics governing the circulation and transport in the inner shelf and the role of coastline variability on regional circulation dynamics. Here, the following physical processes are highlighted: internal wave dynamics from the midshelf to the inner shelf; flow separation and eddy shedding off Point Sal; offshore ejection of surfzone waters from rip currents; and wind-driven subtidal circulation dynamics. The extensive dataset from ISDE allows for unprecedented investigations into the role of physical processes in creating spatial heterogeneity, and nonlinear interactions between various inner-shelf physical processes. Overall, the highly spatially and temporally resolved oceanographic measurements and numerical simulations of ISDE provide a central framework for studies exploring this complex and fascinating region of the ocean. U.S. Office of Naval Research (ONR) ONR Departmental Research Initiative (DRI) Inner-Shelf Dynamics Experiment (ISDE)

Details

ISSN :
15200477 and 00030007
Volume :
102
Database :
OpenAIRE
Journal :
Bulletin of the American Meteorological Society
Accession number :
edsair.doi.dedup.....37fa48e3f24f585f431c5df1294f9e05