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Mapping the Energy Cascade in the North Atlantic Ocean: The Coarse-graining Approach

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arxiv 1710.07963 v1 pith:6T36I2ZY submitted 2017-10-22 physics.flu-dyn physics.geo-ph

classification physics.flu-dynphysics.geo-ph
keywords energytransferoceanscale-transfercoarse-grainingframeworkmeasurescales
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A coarse-graining framework is implemented to analyze nonlinear processes, measure energy transfer rates and map out the energy pathways from simulated global ocean data. Traditional tools to measure the energy cascade from turbulence theory, such as spectral flux or spectral transfer rely on the assumption of statistical homogeneity, or at least a large separation between the scales of motion and the scales of statistical inhomogeneity. The coarse-graining framework allows for probing the fully nonlinear dynamics simultaneously in scale and in space, and is not restricted by those assumptions. This paper describes how the framework can be applied to ocean flows. Energy transfer between scales is not unique due to a gauge freedom. Here, it is argued that a Galilean invariant subfilter scale (SFS) flux is a suitable quantity to properly measure energy scale-transfer in the Ocean. It is shown that the SFS definition can yield answers that are qualitatively different from traditional measures that conflate spatial transport with the scale-transfer of energy. The paper presents geographic maps of the energy scale-transfer that are both local in space and allow quasi-spectral, or scale-by-scale, dynamics to be diagnosed. Utilizing a strongly eddying simulation of flow in the North Atlantic Ocean, it is found that an upscale energy transfer does not hold everywhere. Indeed certain regions, near the Gulf Stream and in the Equatorial Counter Current have a marked downscale transfer. Nevertheless, on average an upscale transfer is a reasonable mean description of the extra-tropical energy scale-transfer over regions of O(10^3) kilometers in size.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Interfacial dynamics and energy cascade in immiscible Rayleigh-Taylor turbulence

    physics.flu-dyn 2026-08 conditional novelty 6.0 of 10

    Surface tension in immiscible Rayleigh-Taylor turbulence produces self-similar scaling laws and shifts the energy cascade from a large-scale sink to a small-scale source near the Hinze scale.

  2. Characterization of local energy transfer in large-scale intermittent stratified turbulent flows via coarse graining

    physics.flu-dyn 2024-12 conditional novelty 6.0 of 10

    Using coarse-grained Boussinesq simulations, strong vertical drafts are associated with enhanced downscale kinetic transfer and bidirectional potential-energy transfer near the buoyancy scale.

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