2003Journal of the Atmospheric SciencesOpen access

The Nonlinear Interaction of Barotropic and Equatorial Baroclinic Rossby Waves

Andrew J. Majda, Joseph A. Biello

Open full text 149 citations

Abstract

Simplified asymptotic equations are developed for the nonlinear interaction of long-wavelength equatorial Rossby waves and barotropic Rossby waves with a significant midlatitude projection in the presence of suitable horizontally and vertically sheared zonal mean flows.The simplified equations allow for nonlinear energy exchange between the barotropic Rossby waves and the baroclinic equatorial waves for nonzero zonal mean vertical shear through wave-wave interactions.Idealized examples in the model demonstrate that midlatitude Rossby wave trains in a baroclinic mean shear can transfer their energy to localized equatorially trapped baroclinic Rossby waves through a nonlinear ''westerly wind burst'' mechanism.Conversely, equatorially trapped baroclinic Rossby wave trains in the idealized model can transfer substantial energy to the midlatitude barotropic Rossby waves.From the viewpoint of applied mathematics, the asymptotic equations derived here have several novel features.

Open-access reader

About this research paper

What this paper is about

Simplified asymptotic equations are developed for the nonlinear interaction of long-wavelength equatorial Rossby waves and barotropic Rossby waves with a significant midlatitude projection in the presence of suitable horizontally and vertically sheared zonal mean flows.The simplified equations allow for nonlinear energy exchange between the barotropic Rossby waves and the baroclinic equatorial waves for nonzero zonal mean vertical shear through wave-wave interactions.Idealized examples in the model demonstrate that midlatitude Rossby wave trains in a baroclinic mean shear can transfer their energy to localized equatorially trapped baroclinic Rossby waves through a nonlinear ''westerly wind burst'' mechanism.Conversely, equatorially trapped baroclinic Rossby wave trains in the idealized model can transfer substantial energy to the midlatitude barotropic Rossby waves.From the viewpoint of applied mathematics, the asymptotic equations derived here have several novel features.

Why it matters

OpenAlex reports 149 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

Simplified asymptotic equations are developed for the nonlinear interaction of long-wavelength equatorial Rossby waves and barotropic Rossby waves with a significant midlatitude projection in the presence of suitable horizontally and vertically sheared zonal mean flows.The simplified equations allow for nonlinear energy exchange between the barotropic Rossby waves and the baroclinic equatorial waves for nonzero zonal mean vertical shear through wave-wave interactions.Idealized examples in the model demonstrate that midlatitude Rossby wave trains in a baroclinic mean shear can transfer their energy to localized equatorially trapped baroclinic Rossby waves through a nonlinear ''westerly wind burst'' mechanism.Conversely, equatorially trapped baroclinic Rossby wave trains in the idealized model can transfer substantial energy to the midlatitude barotropic Rossby waves.From the viewpoint of applied mathematics, the asymptotic equations derived here have several novel features.

Key concepts: Baroclinity, Barotropic fluid, Rossby wave, Rossby radius of deformation, Middle latitudes, Physics, Rossby number, Atmospheric wave

Related papers

Back to paper searchBrowse research topicsOriginal source
The Nonlinear Interaction of Barotropic and Equatorial Baroclinic Rossby Waves — Research Paper | ScholarLens