Probing the Nonlinear Interactions of Supertidal Internal Waves Using a High-Resolution Regional Ocean Model

Author:

Skitka Joseph1,Arbic Brian K.1,Thakur Ritabrata1,Menemenlis Dimitris2,Peltier William R.3,Pan Yulin4,Momeni Kayhan3,Ma Yuchen3

Affiliation:

1. a Department of Earth and Environmental Sciences, University of Michigan, Ann Arbor, Michigan

2. b Jet Propulsion Laboratory, California Institute of Technology, Pasadena, California

3. c Department of Physics, University of Toronto, Toronto, Ontario, Canada

4. d Department of Naval Architecture and Marine Engineering, University of Michigan, Ann Arbor, Michigan

Abstract

Abstract The internal wave (IW) continuum of a regional ocean model is studied in terms of the vertical spectral kinetic energy (KE) fluxes and transfers at high vertical wavenumbers. Previous work has shown that this model permits a partial representation of the IW cascade. In this work, vertical spectral KE flux is decomposed into catalyst, source, and destination vertical modes and frequency bands of nonlinear scattering, a framework that allows for the discernment of different types of nonlinear interactions involving both waves and eddies. Energy transfer within the supertidal IW continuum is found to be strongly dependent on resolution. Specifically, at a horizontal grid spacing of 1/48°, most KE in the supertidal continuum arrives there from lower-frequency modes through a single nonlinear interaction, whereas at 1/384° and with sufficient vertical resolution KE transfers within the supertidal IW continuum are comparable in size to KE transfer from lower-frequency modes. Additionally, comparisons are made with existing theoretical and observational work on energy pathways in the IW continuum. Induced diffusion (ID) is found to be associated with a weak forward frequency transfer within the supertidal IW continuum. ID is also limited to the highest vertical wavenumbers and is more sensitive to resolution relative to spectrally local interactions. At the same time, ID-like processes involving high-vertical-wavenumber near-inertial and tidal waves as well as low-vertical-wavenumber eddy fields are substantial, suggesting that the processes giving rise to a Garrett–Munk-like spectra in the present numerical simulation and perhaps the real ocean may be more varied than in idealized or wave-only frameworks.

Funder

Office of Naval Research

National Science Foundation

National Aeronautics and Space Administration

Publisher

American Meteorological Society

Subject

Oceanography

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