In a global ocean simulation, pair dispersion is controlled by slow, balanced currents even when internal waves dominate the small-scale kinetic energy spectrum.
Dynamic-Mode Decomposition of Geostrophically Balanced Motions from SWOT Altimetry
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abstract
The decomposition of oceanic flow into its balanced and unbalanced motions carries theoretical and practical significance for the oceanographic community. These two motions have distinct dynamical characteristics and affect the transport of tracers differently from one another. The launch of Surface Water and Ocean Topography (SWOT) satellite provides a prime opportunity to diagnose the surface balanced and unbalanced motions on a global scale at an unprecedented spatial resolution. Here, we apply dynamic-mode decomposition (DMD), a linear-algebraic data-driven method, to a tidally-forced numerical simulation and one-day-repeat SWOT observations of sea-surface height (SSH) in the Gulf Stream extension. DMD is able to separate out the spatial modes associated with sub-inertial periods from super-inertial periods. The sub-inertial modes of DMD can be used to extract geostrophically balanced motions from SSH fields, which have an imprint of internal tides and gravity waves. We utilize the statistical relation between relative vorticity and strain rate as the metric to gauge the extraction of geostrophy.
fields
physics.flu-dyn 1years
2025 1verdicts
CONDITIONAL 1representative citing papers
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Effects of high-frequency and balanced motions on Lagrangian pair dispersion at the ocean surface
In a global ocean simulation, pair dispersion is controlled by slow, balanced currents even when internal waves dominate the small-scale kinetic energy spectrum.