Evaluation of scale-aware subgrid mesoscale eddy models in a global eddy-rich model

Brodie Pearson, Baylor Fox-Kemper, Scott Bachman, Frank Bryan

Research output: Contribution to journalArticlepeer-review

62 Scopus citations

Abstract

Two parameterizations for horizontal mixing of momentum and tracers by subgrid mesoscale eddies are implemented in a high-resolution global ocean model. These parameterizations follow on the techniques of large eddy simulation (LES). The theory underlying one parameterization (2D Leith due to Leith, 1996) is that of enstrophy cascades in two-dimensional turbulence, while the other (QG Leith) is designed for potential enstrophy cascades in quasi-geostrophic turbulence. Simulations using each of these parameterizations are compared with a control simulation using standard biharmonic horizontal mixing.Simulations using the 2D Leith and QG Leith parameterizations are more realistic than those using biharmonic mixing. In particular, the 2D Leith and QG Leith simulations have more energy in resolved mesoscale eddies, have a spectral slope more consistent with turbulence theory (an inertial enstrophy or potential enstrophy cascade), have bottom drag and vertical viscosity as the primary sinks of energy instead of lateral friction, and have isoneutral parameterized mesoscale tracer transport. The parameterization choice also affects mass transports, but the impact varies regionally in magnitude and sign.

Original languageEnglish
Pages (from-to)42-58
Number of pages17
JournalOcean Modelling
Volume115
DOIs
StatePublished - Jul 2017

Keywords

  • Global climate models
  • Large eddy simulation
  • Mesoscale eddies
  • Subgrid models

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