English

Global Energy Spectrum of the General Oceanic Circulation

Atmospheric and Oceanic Physics 2022-10-12 v1 Geophysics

Abstract

Since the advent of satellite altimetry, our perception of the oceanic circulation has brought into focus the pervasiveness of mesoscale eddies that have typical scales of tens to hundreds of kilometers [5], are the ocean's analogue of weather systems, and are often thought of as the peak of the ocean's kinetic energy (KE) wavenumber spectrum [7, 19, 23]. Yet, our understanding of the ocean's spatial scales has been derived mostly from Fourier analysis in small representative regions (e.g. [16, 14, 4]), typically a few hundred kilometers in size, that cannot capture the vast dynamic range at planetary scales. Here, we present the first truly global wavenumber spectrum of the oceanic circulation from satellite data and high-resolution re-analysis data, using a coarse-graining method to analyze scales much larger than what had been possible before. Spectra spanning over three orders of magnitude in length-scale reveal the Antarctic Circumpolar Current (ACC) as the spectral peak of the global extra-tropical ocean, at 10×103 \approx 10 \times 10^3~km. We also find a previously unobserved power-law scaling over scales larger than 103 10^3~km. A smaller spectral peak exists at 300 \approx 300~km associated with the mesoscales, which, due to their wider spread in wavenumber space, account for more than 50%50\% of the resolved surface KE globally. Length-scales that are twice as large (up to 10310^3~km) exhibit a characteristic lag time of 40 \approx40~days in their seasonal cycle, such that in both hemispheres KE at 100 100~km peaks in late spring while KE at 103 10^3~km peaks in late summer. The spectrum presented here affords us a new window for understanding the multiscale general oceanic circulation within Earth's climate system, including the largest planetary scales.

Keywords

Cite

@article{arxiv.2208.04859,
  title  = {Global Energy Spectrum of the General Oceanic Circulation},
  author = {Benjamin A. Storer and Michele Buzzicotti and Hemant Khatri and Stephen M. Griffies and Hussein Aluie},
  journal= {arXiv preprint arXiv:2208.04859},
  year   = {2022}
}