The Role of Surface Potential Vorticity in the Vertical Structure of Mesoscale Eddies in Wind-Driven Ocean Circulations

Author:

Zhang Wenda1ORCID,Griffies Stephen M.12,Hallberg Robert W.12,Kuo Yi-Hung1,Wolfe Christopher L. P.3

Affiliation:

1. a Program in Atmospheric and Oceanic Sciences, Princeton University, Princeton, New Jersey

2. b NOAA/Geophysical Fluid Dynamics Laboratory, Princeton, New Jersey

3. c School of Marine and Atmospheric Sciences, Stony Brook University, State University of New York, Stony Brook, New York

Abstract

Abstract The vertical structure of ocean eddies is generally surface-intensified, commonly attributed to the dominant baroclinic modes arising from the boundary conditions (BCs). Conventional BC considerations mostly focus on either flat- or rough-bottom conditions. The impact of surface buoyancy anomalies—often represented by surface potential vorticity (PV) anomalies—has not been fully explored. Here, we study the role of the surface PV in setting the vertical distribution of eddy kinetic energy (EKE) in an idealized adiabatic ocean model driven by wind stress. The simulated EKE profile in the extratropical ocean tends to peak at the surface and have an e-folding depth typically smaller than half of the ocean depth. This vertical structure can be reasonably represented by a single surface quasigeostrophic (SQG) mode at the energy-containing scale resulting from the large-scale PV structure. Due to isopycnal outcropping and interior PV homogenization, the surface meridional PV gradient is substantially stronger than the interior PV gradient, yielding surface-trapped baroclinically unstable modes with horizontal scales comparable to or smaller than the deformation radius. These surface-trapped eddies then grow in size both horizontally and vertically through an inverse energy cascade up to the energy-containing scale, which dominates the vertical distribution of EKE. As for smaller horizontal scales, the EKE distribution decays faster with depth. Guided by this interpretation, an SQG-based scale-aware parameterization of the EKE profile is proposed. Preliminary offline diagnosis of a high-resolution simulation shows the proposed scheme successfully reproducing the dependence of the vertical structure of EKE on the horizontal grid resolution.

Funder

National Oceanic and Atmospheric Administration

National Science Foundation

Publisher

American Meteorological Society

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Cited by 2 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Vertical Structure and Energetic Constraints for a Backscatter Parameterization of Ocean Mesoscale Eddies;Journal of Advances in Modeling Earth Systems;2024-07

2. Inferring Tracer Diffusivity From Coherent Mesoscale Eddies;Journal of Advances in Modeling Earth Systems;2024-04

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