Resonant Wave Interactions in the Presence of a Diurnally Varying Heat Source
Contribuinte(s) |
UNIVERSIDADE DE SÃO PAULO |
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Data(s) |
19/10/2012
19/10/2012
2009
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Resumo |
Resonant interactions among equatorial waves in the presence of a diurnally varying heat source are studied in the context of the diabatic version of the equatorial beta-plane primitive equations for a motionless, hydrostatic, horizontally homogeneous and stably stratified background atmosphere. The heat source is assumed to be periodic in time and of small amplitude [i.e., O(epsilon)] and is prescribed to roughly represent the typical heating associated with deep convection in the tropical atmosphere. In this context, using the asymptotic method of multiple time scales, the free linear Rossby, Kelvin, mixed Rossby-gravity, and inertio-gravity waves, as well as their vertical structures, are obtained as leading-order solutions. These waves are shown to interact resonantly in a triad configuration at the O(e) approximation, and the dynamics of these interactions have been studied in the presence of the forcing. It is shown that for the planetary-scale wave resonant triads composed of two first baroclinic equatorially trapped waves and one barotropic Rossby mode, the spectrum of the thermal forcing is such that only one of the triad components is resonant with the heat source. As a result, to illustrate the role of the diurnal forcing in these interactions in a simplified fashion, two kinds of triads have been analyzed. The first one refers to triads composed of a k = 0 first baroclinic geostrophic mode, which is resonant with the stationary component of the diurnal heat source, and two dispersive modes, namely, a mixed Rossby-gravity wave and a barotropic Rossby mode. The other class corresponds to triads composed of two first baroclinic inertio-gravity waves in which the highest-frequency wave resonates with a transient harmonic of the forcing. The integration of the asymptotic reduced equations for these selected resonant triads shows that the stationary component of the diurnal heat source acts as an ""accelerator"" for the energy exchanges between the two dispersive waves through the excitation of the catalyst geostrophic mode. On the other hand, since in the second class of triads the mode that resonates with the forcing is the most energetically active member because of the energy constraints imposed by the triad dynamics, the results show that the convective forcing in this case is responsible for a longer time scale modulation in the resonant interactions, generating a period doubling in the energy exchanges. The results suggest that the diurnal variation of tropical convection might play an important role in generating low-frequency fluctuations in the atmospheric circulation through resonant nonlinear interactions. FAPESP (Fundagao de Amparo a Pesquisa do Estado de SAo Paulo)[06153606-0] PROSURIIRI Moore Foundation |
Identificador |
JOURNAL OF THE ATMOSPHERIC SCIENCES, v.66, n.10, p.3165-3183, 2009 0022-4928 http://producao.usp.br/handle/BDPI/26977 10.1175/2009JAS2899.1 |
Idioma(s) |
eng |
Publicador |
AMER METEOROLOGICAL SOC |
Relação |
Journal of the Atmospheric Sciences |
Direitos |
restrictedAccess Copyright AMER METEOROLOGICAL SOC |
Palavras-Chave | #MADDEN-JULIAN OSCILLATION #SIMPLE MULTICLOUD PARAMETERIZATION #COUPLED TROPICAL WAVES #INTRASEASONAL OSCILLATIONS #SOUTHERN-HEMISPHERE #CONVECTIVE SYSTEMS #MULTISCALE MODEL #LINEAR-RESPONSE #LIFE-CYCLE #ATMOSPHERE #Meteorology & Atmospheric Sciences |
Tipo |
article original article publishedVersion |