Midlatitude–Equatorial Dynamics of a Grounded Deep Western Boundary Current. Part II: Cross-Equatorial Dynamics
Author:
Affiliation:
1. Institute of Applied Mathematics, Department of Mathematical and Statistical Sciences, and Institute for Geophysical Research, University of Alberta, Edmonton, Alberta, Canada
Abstract
Publisher
American Meteorological Society
Subject
Oceanography
Link
http://journals.ametsoc.org/jpo/article-pdf/45/10/2470/4550609/jpo-d-14-0208_1.pdf
Reference10 articles.
1. Deep, cross-equatorial eddies;Borisov;Geophys. Astrophys. Fluid Dyn.,1998
2. Bifurcation in cross-equatorial airflow: A nonlinear characteristic of Lagrangian modeling;Chen;J. Atmos. Sci.,1995
3. Motion of a free particle on a beta-plane;Cushman-Roisin;Geophys. Astrophys. Fluid Dyn.,1982
4. Dynamics of nonlinear cross-equatorial flow. Part I: Potential vorticity transformation;Edwards;J. Phys. Oceanogr.,1998
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1. Hamiltonian Structure and a Variational Principle for Grounded Abyssal Flow on a Sloping Bottom in a Mid-Latitude β-Plane;Studies in Applied Mathematics;2018-07-05
2. Meridional dynamics of grounded abyssal water masses on a sloping bottom in a mid-latitude -plane;Journal of Fluid Mechanics;2018-02-26
3. Internal dissipative boundary layers in the cross-equatorial flow of a grounded deep western boundary current;Geophysical & Astrophysical Fluid Dynamics;2017-02-09
4. Midlatitude–Equatorial Dynamics of a Grounded Deep Western Boundary Current. Part I: Midlatitude Flow and the Transition to the Equatorial Region;Journal of Physical Oceanography;2015-10
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