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    A Toy Model of the Instability in the Equatorially Trapped Convectively Coupled Waves on the Equatorial Beta Plane

    Source: Journal of the Atmospheric Sciences:;2008:;Volume( 065 ):;issue: 012::page 3736
    Author:
    Andersen, Joseph Allan
    ,
    Kuang, Zhiming
    DOI: 10.1175/2008JAS2776.1
    Publisher: American Meteorological Society
    Abstract: The equatorial atmospheric variability shows a spectrum of significant peaks in the wavenumber?frequency domain. These peaks have been identified with the equatorially trapped wave modes of rotating shallow water wave theory. This paper addresses the observation that the various wave types (e.g., Kelvin, Rossby, etc.) and wavenumbers show differing signal strength relative to a red background. It is hypothesized that this may be due to variations in the linear stability of the atmosphere in response to the various wave types depending on both the specific wave type and the wavenumber. A simple model of the convectively coupled waves on the equatorial beta plane is constructed to identify processes that contribute to this dependence. The linear instability spectrum of the resulting coupled system is evaluated by eigenvalue analysis. This analysis shows unstable waves with phase speeds, growth rates, and structures (vertical and horizontal) that are broadly consistent with the results from observations. The linear system, with an idealized single intertropical convergence zone (ITCZ) as a mean state, shows peak unstable Kelvin waves around zonal wavenumber 7 with peak growth rates of ?0.08 day?1 (e-folding time of ?13 days). The system also shows unstable mixed Rossby?gravity (MRG) and inertio-gravity waves with significant growth in the zonal wavenumber range from ?15 (negative indicates westward phase speed) to +10 (positive indicates eastward phase speed). The peak MRG n = 0 eastward inertio-gravity wave (EIG) growth rate is around one-third that of the Kelvin wave and occurs at zonal wavenumber 3. The Rossby waves in this system are stable, and the Madden?Julian oscillation is not observed. Within this model, it is shown that in addition to the effect of the ITCZ configuration, the differing instabilities of the different wave modes are also related to their different efficiency in converting input energy into divergent flow. This energy conversion efficiency difference is suggested as an additional factor that helps to shape the observed wave spectrum.
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      A Toy Model of the Instability in the Equatorially Trapped Convectively Coupled Waves on the Equatorial Beta Plane

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    https://yetl.yabesh.ir/yetl1/handle/yetl/4208250
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    contributor authorAndersen, Joseph Allan
    contributor authorKuang, Zhiming
    date accessioned2017-06-09T16:22:59Z
    date available2017-06-09T16:22:59Z
    date copyright2008/12/01
    date issued2008
    identifier issn0022-4928
    identifier otherams-66867.pdf
    identifier urihttp://onlinelibrary.yabesh.ir/handle/yetl/4208250
    description abstractThe equatorial atmospheric variability shows a spectrum of significant peaks in the wavenumber?frequency domain. These peaks have been identified with the equatorially trapped wave modes of rotating shallow water wave theory. This paper addresses the observation that the various wave types (e.g., Kelvin, Rossby, etc.) and wavenumbers show differing signal strength relative to a red background. It is hypothesized that this may be due to variations in the linear stability of the atmosphere in response to the various wave types depending on both the specific wave type and the wavenumber. A simple model of the convectively coupled waves on the equatorial beta plane is constructed to identify processes that contribute to this dependence. The linear instability spectrum of the resulting coupled system is evaluated by eigenvalue analysis. This analysis shows unstable waves with phase speeds, growth rates, and structures (vertical and horizontal) that are broadly consistent with the results from observations. The linear system, with an idealized single intertropical convergence zone (ITCZ) as a mean state, shows peak unstable Kelvin waves around zonal wavenumber 7 with peak growth rates of ?0.08 day?1 (e-folding time of ?13 days). The system also shows unstable mixed Rossby?gravity (MRG) and inertio-gravity waves with significant growth in the zonal wavenumber range from ?15 (negative indicates westward phase speed) to +10 (positive indicates eastward phase speed). The peak MRG n = 0 eastward inertio-gravity wave (EIG) growth rate is around one-third that of the Kelvin wave and occurs at zonal wavenumber 3. The Rossby waves in this system are stable, and the Madden?Julian oscillation is not observed. Within this model, it is shown that in addition to the effect of the ITCZ configuration, the differing instabilities of the different wave modes are also related to their different efficiency in converting input energy into divergent flow. This energy conversion efficiency difference is suggested as an additional factor that helps to shape the observed wave spectrum.
    publisherAmerican Meteorological Society
    titleA Toy Model of the Instability in the Equatorially Trapped Convectively Coupled Waves on the Equatorial Beta Plane
    typeJournal Paper
    journal volume65
    journal issue12
    journal titleJournal of the Atmospheric Sciences
    identifier doi10.1175/2008JAS2776.1
    journal fristpage3736
    journal lastpage3757
    treeJournal of the Atmospheric Sciences:;2008:;Volume( 065 ):;issue: 012
    contenttypeFulltext
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    DSpace software copyright © 2002-2015  DuraSpace
    نرم افزار کتابخانه دیجیتال "دی اسپیس" فارسی شده توسط یابش برای کتابخانه های ایرانی | تماس با یابش
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