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    Observations of the Structure and Evolution of Hurricane Edouard (2014) during Intensity Change. Part I: Relationship between the Thermodynamic Structure and Precipitation

    Source: Monthly Weather Review:;2016:;volume( 144 ):;issue: 009::page 3333
    Author:
    Zawislak, Jonathan
    ,
    Jiang, Haiyan
    ,
    Alvey, George R.
    ,
    Zipser, Edward J.
    ,
    Rogers, Robert F.
    ,
    Zhang, Jun A.
    ,
    Stevenson, Stephanie N.
    DOI: 10.1175/MWR-D-16-0018.1
    Publisher: American Meteorological Society
    Abstract: he structural evolution of the inner core and near environment throughout the life cycle of Hurricane Edouard (2014) is examined using a synthesis of airborne and satellite measurements. This study specifically focuses on the precipitation evolution and thermodynamic changes that occur on the vortex scale during four periods: when Edouard was a slowly intensifying tropical storm, another while a rapidly intensifying hurricane, during the initial stages of weakening after reaching peak intensity, and later while experiencing moderate weakening in the midlatitudes. Results suggest that, in a shear-relative framework, a wavenumber-1 asymmetry exists whereby the downshear quadrants consistently exhibit the greatest precipitation coverage and highest relative humidity, while the upshear quadrants (especially upshear right) exhibit relatively less precipitation coverage and lower humidity, particularly in the midtroposphere. Whether dynamically or precipitation driven, the relatively dry layers upshear appear to be ubiquitously caused by subsidence. The precipitation and thermodynamic asymmetry is observed throughout the intensification and later weakening stages, while a consistently more symmetric distribution is only observed when Edouard reaches peak intensity. The precipitation distribution, which is also discussed in the context of the boundary layer thermodynamic properties, is intimately linked to the thermodynamic symmetry, which becomes greater as the frequency, areal coverage, and, in particular, rainfall rate increases upshear. Although shear is generally believed to be detrimental to intensification, observations in Edouard also indicate that subsidence warming from mesoscale downdrafts in the low- to midtroposphere very near the center may have contributed favorably to organization early in the intensification stage.
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      Observations of the Structure and Evolution of Hurricane Edouard (2014) during Intensity Change. Part I: Relationship between the Thermodynamic Structure and Precipitation

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    http://yetl.yabesh.ir/yetl1/handle/yetl/4230908
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    • Monthly Weather Review

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    contributor authorZawislak, Jonathan
    contributor authorJiang, Haiyan
    contributor authorAlvey, George R.
    contributor authorZipser, Edward J.
    contributor authorRogers, Robert F.
    contributor authorZhang, Jun A.
    contributor authorStevenson, Stephanie N.
    date accessioned2017-06-09T17:33:48Z
    date available2017-06-09T17:33:48Z
    date copyright2016/09/01
    date issued2016
    identifier issn0027-0644
    identifier otherams-87259.pdf
    identifier urihttp://onlinelibrary.yabesh.ir/handle/yetl/4230908
    description abstracthe structural evolution of the inner core and near environment throughout the life cycle of Hurricane Edouard (2014) is examined using a synthesis of airborne and satellite measurements. This study specifically focuses on the precipitation evolution and thermodynamic changes that occur on the vortex scale during four periods: when Edouard was a slowly intensifying tropical storm, another while a rapidly intensifying hurricane, during the initial stages of weakening after reaching peak intensity, and later while experiencing moderate weakening in the midlatitudes. Results suggest that, in a shear-relative framework, a wavenumber-1 asymmetry exists whereby the downshear quadrants consistently exhibit the greatest precipitation coverage and highest relative humidity, while the upshear quadrants (especially upshear right) exhibit relatively less precipitation coverage and lower humidity, particularly in the midtroposphere. Whether dynamically or precipitation driven, the relatively dry layers upshear appear to be ubiquitously caused by subsidence. The precipitation and thermodynamic asymmetry is observed throughout the intensification and later weakening stages, while a consistently more symmetric distribution is only observed when Edouard reaches peak intensity. The precipitation distribution, which is also discussed in the context of the boundary layer thermodynamic properties, is intimately linked to the thermodynamic symmetry, which becomes greater as the frequency, areal coverage, and, in particular, rainfall rate increases upshear. Although shear is generally believed to be detrimental to intensification, observations in Edouard also indicate that subsidence warming from mesoscale downdrafts in the low- to midtroposphere very near the center may have contributed favorably to organization early in the intensification stage.
    publisherAmerican Meteorological Society
    titleObservations of the Structure and Evolution of Hurricane Edouard (2014) during Intensity Change. Part I: Relationship between the Thermodynamic Structure and Precipitation
    typeJournal Paper
    journal volume144
    journal issue9
    journal titleMonthly Weather Review
    identifier doi10.1175/MWR-D-16-0018.1
    journal fristpage3333
    journal lastpage3354
    treeMonthly Weather Review:;2016:;volume( 144 ):;issue: 009
    contenttypeFulltext
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