On the large-scale dynamics of f−plane zonally symmetric circulations

Abstract

In this study, an f-plane dynamical model for incompressible flows is presented to examine the mechanisms underlying the structure and stability of large-scale zonally symmetric circulations. Analyses based on the Principle of Exchange of Stabilities reveal that this zonally symmetric model possesses a single-cell structure in the absence of the Coriolis force, similar to the single-cell general atmospheric circulation in the absence of the Earth’s rotation as previously hypothesized. The circulation, however, bifurcates into a triple-cell structure in the presence of the Coriolis force if the vertical temperature gradient, the rotational rate, and the momentum eddy coefficients satisfy a certain constraint. Further analyses of this triple-cell structure as a result of the Coriolis force show that this structure is topologically stable, thus offering new insight into the highly resilient structure of the Earth’s atmospheric global circulations.

Document Details

Document Type
Pub Defense Publication
Publication Date
Jan 01, 2019
Source ID
10.1063/1.5051737

Entities

People

  • Chanh Kieu
  • Quan Wang

Organizations

  • Indiana University
  • Indiana University Bloomington
  • Office of Naval Research
  • Sichuan University

Tags

Readers

  • Coastal Oceanography
  • Fluid Dynamics.
  • Systems Analysis and Design