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    Simulation of Inertia–Gravity Waves in a Poleward-Breaking Rossby Wave

    Source: Journal of the Atmospheric Sciences:;2006:;Volume( 063 ):;issue: 012::page 3253
    Author:
    Zülicke, Christoph
    ,
    Peters, Dieter
    DOI: 10.1175/JAS3805.1
    Publisher: American Meteorological Society
    Abstract: Poleward-breaking Rossby waves often induce an upper-level jet streak over northern Europe. Dominant inertia?gravity wave packets are observed downstream of this jet. The physical processes of their generation and propagation, in such a configuration, are investigated with a mesoscale model. The study is focused on an observational campaign from 17 to 19 December 1999 over northern Germany. Different simulations with the fifth-generation Pennsylvania State University?National Center for Atmospheric Research (PSU?NCAR) Mesoscale Model (MM5) have been performed. For a high-resolution process study, three domains were set up that encompass the evolution of Rossby waves and that of inertia?gravity waves. To minimize the impact of model damping, the horizontal and vertical resolution has been adjusted appropriately. With a novel statistical approach, the properties of inertia?gravity wave packets have been estimated. This method uses the horizontal divergence field and takes into account the spatial extension of a wave packet. It avoids the explicit treatment of the background field and works for arbitrary wavelength. Two classes of inertia?gravity waves were found: subsynoptic waves with a horizontal wavelength of about 500 km and mesoscale waves with a horizontal wavelength of about 200 km. The subsynoptic structures were also detected in radiosonde observations during this campaign. The similarity between simulated and observed wavelengths and amplitudes suggests that the simulations can be considered as near realistic. Spontaneous radiation from unbalanced flow is an important process of inertia?gravity wave generation. Synoptic-scale imbalances in the exit region of the upper-tropospheric jet streak were identified with the smoothed cross-stream Lagrangian Rossby number. In a number of simulations with different physics, it was found that the inertia?gravity wave activity was related to the tropospheric jet, orography, and moist convection. The upward propagation of inertia?gravity waves was favored during this event of a poleward-breaking Rossby wave. The presence of the polar vortex induced background winds exceeding the critical line. Consequently, the activity of inertia?gravity waves in the lower stratosphere increased by an order of magnitude during the case study. The successful simulation of the complex processes of generation and propagation showed the important role of poleward Rossby wave breaking for the appearance of inertia?gravity waves in the midlatitudes.
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      Simulation of Inertia–Gravity Waves in a Poleward-Breaking Rossby Wave

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    contributor authorZülicke, Christoph
    contributor authorPeters, Dieter
    date accessioned2017-06-09T16:53:15Z
    date available2017-06-09T16:53:15Z
    date copyright2006/12/01
    date issued2006
    identifier issn0022-4928
    identifier otherams-75990.pdf
    identifier urihttp://onlinelibrary.yabesh.ir/handle/yetl/4218386
    description abstractPoleward-breaking Rossby waves often induce an upper-level jet streak over northern Europe. Dominant inertia?gravity wave packets are observed downstream of this jet. The physical processes of their generation and propagation, in such a configuration, are investigated with a mesoscale model. The study is focused on an observational campaign from 17 to 19 December 1999 over northern Germany. Different simulations with the fifth-generation Pennsylvania State University?National Center for Atmospheric Research (PSU?NCAR) Mesoscale Model (MM5) have been performed. For a high-resolution process study, three domains were set up that encompass the evolution of Rossby waves and that of inertia?gravity waves. To minimize the impact of model damping, the horizontal and vertical resolution has been adjusted appropriately. With a novel statistical approach, the properties of inertia?gravity wave packets have been estimated. This method uses the horizontal divergence field and takes into account the spatial extension of a wave packet. It avoids the explicit treatment of the background field and works for arbitrary wavelength. Two classes of inertia?gravity waves were found: subsynoptic waves with a horizontal wavelength of about 500 km and mesoscale waves with a horizontal wavelength of about 200 km. The subsynoptic structures were also detected in radiosonde observations during this campaign. The similarity between simulated and observed wavelengths and amplitudes suggests that the simulations can be considered as near realistic. Spontaneous radiation from unbalanced flow is an important process of inertia?gravity wave generation. Synoptic-scale imbalances in the exit region of the upper-tropospheric jet streak were identified with the smoothed cross-stream Lagrangian Rossby number. In a number of simulations with different physics, it was found that the inertia?gravity wave activity was related to the tropospheric jet, orography, and moist convection. The upward propagation of inertia?gravity waves was favored during this event of a poleward-breaking Rossby wave. The presence of the polar vortex induced background winds exceeding the critical line. Consequently, the activity of inertia?gravity waves in the lower stratosphere increased by an order of magnitude during the case study. The successful simulation of the complex processes of generation and propagation showed the important role of poleward Rossby wave breaking for the appearance of inertia?gravity waves in the midlatitudes.
    publisherAmerican Meteorological Society
    titleSimulation of Inertia–Gravity Waves in a Poleward-Breaking Rossby Wave
    typeJournal Paper
    journal volume63
    journal issue12
    journal titleJournal of the Atmospheric Sciences
    identifier doi10.1175/JAS3805.1
    journal fristpage3253
    journal lastpage3276
    treeJournal of the Atmospheric Sciences:;2006:;Volume( 063 ):;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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