Near-Resonant Generation of Internal Tide Superharmonics: Comparing Theoretical Predictions With a Global Ocean Model

L. E. Baker, A. Doak, D. Bi

Research output: Contribution to journalArticlepeer-review

Abstract

Internal tides are generated in the stratified ocean interior by the interaction of barotropic tidal currents with rough bathymetry. Low-vertical-mode internal tides can transport energy far from their generation site, but it remains unclear how and where this energy is eventually dissipated at small scales. A potential mechanism for the transfer of energy from low-mode internal tides to smaller scales in equatorial regions is superharmonic generation, whereby nonlinear self-interaction of internal tides in non-uniform stratification excites waves with shorter wavelengths and higher frequencies. Here, we use a realistically forced global configuration of the Massachusetts Institute of Technology general circulation model to investigate an enhanced superharmonic signal in the equatorial Pacific Ocean. Using existing theory, we demonstrate that the superharmonic amplitude is consistent with nonlinear self-interaction of the original baroclinic tide, providing strong evidence for an energy pathway from the mode-1 semidiurnal internal tide to smaller horizontal scales.

Original languageEnglish
Article numbere2024GL114226
JournalGeophysical Research Letters
Volume52
Issue number10
Early online date22 May 2025
DOIs
Publication statusPublished - 28 May 2025

Data Availability Statement

Model data is available from the NASA ECCO data portal (https://data.nas.nasa.gov/ecco/data.php). All code to obtain these data and reproduce our results is available at https://doi.org/10.5281/zenodo.15236839 (Baker, 2025).

Acknowledgements

We thank two anonymous reviewers for their helpful comments. We are grateful to the National Fellowships in Fluid Dynamics (NFFDy) Summer Programme, and to Bruce Sutherland for insightful discussions.

Funding

Lois Baker and Alex Doak acknowledge funding from NFFDy Fellowships (EPSRC Grants EP/X028135/1 and EP/X028607/1 respectively). This work was supported by the Google Cloud Research Credits program GCP19980904.

FundersFunder number
UKRI EPSRCEP/X028135/1 , EP/ X028607/1

    Keywords

    • global ocean models
    • internal tides
    • internal waves
    • wave resonances

    ASJC Scopus subject areas

    • Geophysics
    • General Earth and Planetary Sciences

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