4.7 Article

Inverse cascades and resonant triads in rotating and stratified turbulence

Journal

PHYSICS OF FLUIDS
Volume 29, Issue 11, Pages -

Publisher

AMER INST PHYSICS
DOI: 10.1063/1.5001740

Keywords

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Funding

  1. UBACYT Grant [20020130100738BA]
  2. PICT Grants [20111529, 2015-3530]
  3. CISL visitor program at NCAR
  4. program PALSE (Programme Avenir Lyon Saint-Etienne) of the University of Lyon [ANR-11-IDEX-0007]
  5. LASP

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Kraichnan's seminal ideas on inverse cascades yielded new tools to study common phenomena in geophysical turbulent flows. In the atmosphere and the oceans, rotation and stratification result in a flow that can be approximated as two-dimensional at very large scales but which requires considering three-dimensional effects to fully describe turbulent transport processes and non-linear phenomena. Motions can thus be classified into two classes: fast modes consisting of inertia-gravity waves and slow quasi-geostrophic modes for which the Coriolis force and horizontal pressure gradients are close to balance. In this paper, we review previous results on the strength of the inverse cascade in rotating and stratified flows and then present new results on the effect of varying the strength of rotation and stratification (measured by the inverse Prandtl ratio N/f, of the Coriolis frequency to the Brunt-Vaisala frequency) on the amplitude of the waves and on the flow quasi-geostrophic behavior. We show that the inverse cascade is more efficient in the range of N/f for which resonant triads do not exist, 1 / 2 <= N / f <= 2. We then use the spatio-temporal spectrum to show that in this range slow modes dominate the dynamics, while the strength of the waves (and their relevance in the flow dynamics) is weaker. Published by AIP Publishing.

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