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JOURNAL OF GEOPHYSICAL RESEARCH,
VOL. 105, NO. C8,
PAGES 19,499–19,514,
2000
Sea surface velocities from sea surface temperature image sequences 1. Method and validation using primitive equation model
output
Xavier Vigan
Christine Provost
Rainer Bleck
Philippe Courtier
Abstract
An inverse variational finite element model is developed for the purpose of estimating ocean surface velocity fields from
sequences of temperature fields. The cross-isotherm component of the velocity is controlled by a mixed layer integrated formulation
of the heat balance. The aperture problem imposes additional constraints on the flow field: we control the divergence and
the vorticity of the horizontal velocity. The method is then applied to sequences of sea surface temperature (SST) fields
from a fine-mesh numerical simulation over the Brazil-Malvinas Confluence region. The difference between the actual velocity
and the SST inverted velocity is 11% rms in magnitude and 17° rms in direction. These differences are analyzed; divergence
and vorticity are computed. The hypothesis of neglecting the source terms made in the formulation of the mixed layer integrated
heat balance is verified. The sensitivity of the solution to the influence of the constraints is examined. Perturbations are
performed yielding fields of ellipses of covariance. We obtain on average 15% uncertainties in magnitude and 25° in direction
of the velocity. Differences between the actual and SST inverted velocities fall into those covariance ellipses, except over
regions where temperature does not change from one image to the other.
Received 28
May
1999;
accepted 24
January
2000.
Read Full Article Cited by
Citation: Vigan, X., C. Provost, R. Bleck, and P. Courtier
(2000),
Sea surface velocities from sea surface temperature image sequences 1. Method and validation using primitive equation model
output,
J. Geophys. Res.,
105(C8),
19,499–19,514.
Copyright 2000 by the American Geophysical Union.
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