Abstract
The nonlinear response of a spherical shallow water model to an imposed heat source in the presence of realistic zonal mean zonal winds is investigated numerically. The solutions exhibit elongated, meridionally tilted ridges and troughs indicative of a poleward dispersion of wave activity. As the speed of the jets is increased, the equatorial Kelvin wave is unaffected but the global Rossby wave train coalesces to form a compact, amplified quadrupole structure that bears a striking resemblance to the observed upper level structure of the Madden-Julian oscillation. In the presence of strong subtropical westerly jets, the advection of planetary vorticity by the meridional flow and relative vorticity by the zonally averaged background flow conspire to create the distinctive quadrupole configuration of flanking Rossby waves. Key Points Extension of the Matsuno-Gill model to the sphere with mean subtropical jetsTransition from a Rossby wave train to a subtropical quadrupole is demonstratedImplications for the upper level structure of the MJO are discussed
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Monteiro, J. M., Adames, Á. F., Wallace, J. M., & Sukhatme, J. S. (2014). Interpreting the upper level structure of the Madden-Julian oscillation. Geophysical Research Letters, 41(24), 9158–9165. https://doi.org/10.1002/2014GL062518
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