The role of SST structure in convectively coupled kelvin-rossby waves and its implications for MJO formation

49Citations
Citations of this article
46Readers
Mendeley users who have this article in their library.
Get full text

Abstract

The dynamics of the Madden-Julian oscillation (MJO) are investigated using an aqua-planet general circulation model (GCM) and a simple one-and-a-half-layer model with a first-baroclinic mode and a planetary boundary layer. The aqua-planet GCM with zonally symmetric SST conditions simulates tropical intraseasonal disturbances with a dominant time scale of about 20 days, which is much faster than that of the observed MJO, although the GCM with realistic surface boundary conditions is shown to reproduce the observed MJO reasonably well. The SST with a broader meridional structure slows down the propagation speed. Several experiments done with various zonally symmetric surface boundary conditions showed that the meridional structure of the SST in fact is a control factor for the propagation characteristics of the MJO. With a simple theoretical model for the MJO, it is shown that the instability of the moist coupled Kelvin-Rossby waves depends on the SST structure, which determines the lower-level moisture field. The SST with a narrow meridional structure prefers to enhance only the fast eastward Kelvin wave, while the broader SST provides enough off-equatorial moisture for the growth of the Rossby component, which couples strongly with the Kelvin component and slows down the eastward modes. The SST influences the coupled Kelvin-Rossby waves through changes in the moist static stability of the free atmosphere and the frictional moisture convergence in the planetary boundary layer. The present results suggest that the essential dynamics of the MJO are rooted in a convectively coupled Kelvin-Rossby wave packet with frictional moisture convergenc. © 2013 American Meteorological Society.

Cite

CITATION STYLE

APA

Kang, I. S., Liu, F., Ahn, M. S., Yang, Y. M., & Wang, B. (2013). The role of SST structure in convectively coupled kelvin-rossby waves and its implications for MJO formation. Journal of Climate, 26(16), 5915–5930. https://doi.org/10.1175/JCLI-D-12-00303.1

Register to see more suggestions

Mendeley helps you to discover research relevant for your work.

Already have an account?

Save time finding and organizing research with Mendeley

Sign up for free