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    Radar Climatology of Tornadic and Nontornadic Vortices in High-Shear, Low-CAPE Environments in the Mid-Atlantic and Southeastern United States

    Source: Weather and Forecasting:;2014:;volume( 029 ):;issue: 004::page 828
    Author:
    Davis, Jason M.
    ,
    Parker, Matthew D.
    DOI: 10.1175/WAF-D-13-00127.1
    Publisher: American Meteorological Society
    Abstract: ornadoes occurring in environments characterized by strong vertical wind shear [0?6-km bulk wind difference ≥35 knots (kt; 1 kt = 0.51 m s?1) (18 m s?1)] but low CAPE (<500 J kg?1) are an important challenge for forecasters, especially in the mid-Atlantic and southeastern United States. In this study, 95 tornadic and 135 nontornadic vortices were tracked in high-shear, low-CAPE (HSLC) environments. Values of azimuthal shear were recorded along the vortex tracks, and operationally relevant radar reflectivity signatures were also manually identified in association with these vortices. Statistically significant differences in azimuthal shear were found between tornadic and nontornadic vortices within 60 km of the radar, particularly near the surface. Although there were significant differences between tornadic and nontornadic vortices from nonsupercells (primarily quasi-linear convective systems), this was not the case for supercellular vortices. Beyond 60 km from the radar, no statistically significant differences were found. Numerous reflectivity signatures were also studied, including hook echoes and weak-echo regions associated with supercell vortices, as well as rear-inflow notches, bowing segments, and forward-inflow notches associated with nonsupercell vortices. These signatures were found to have a high probability of detection close to the radar, but also a high false alarm rate, and were observed much less often >100 km from the radar. Overall, while azimuthal shear and radar reflectivity signatures show the potential for high probability of detection in close proximity to operational radars, high false alarm rates, and short lead times appear to be an unavoidable trade-off in HSLC environments.
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      Radar Climatology of Tornadic and Nontornadic Vortices in High-Shear, Low-CAPE Environments in the Mid-Atlantic and Southeastern United States

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    contributor authorDavis, Jason M.
    contributor authorParker, Matthew D.
    date accessioned2017-06-09T17:36:30Z
    date available2017-06-09T17:36:30Z
    date copyright2014/08/01
    date issued2014
    identifier issn0882-8156
    identifier otherams-87996.pdf
    identifier urihttp://onlinelibrary.yabesh.ir/handle/yetl/4231726
    description abstractornadoes occurring in environments characterized by strong vertical wind shear [0?6-km bulk wind difference ≥35 knots (kt; 1 kt = 0.51 m s?1) (18 m s?1)] but low CAPE (<500 J kg?1) are an important challenge for forecasters, especially in the mid-Atlantic and southeastern United States. In this study, 95 tornadic and 135 nontornadic vortices were tracked in high-shear, low-CAPE (HSLC) environments. Values of azimuthal shear were recorded along the vortex tracks, and operationally relevant radar reflectivity signatures were also manually identified in association with these vortices. Statistically significant differences in azimuthal shear were found between tornadic and nontornadic vortices within 60 km of the radar, particularly near the surface. Although there were significant differences between tornadic and nontornadic vortices from nonsupercells (primarily quasi-linear convective systems), this was not the case for supercellular vortices. Beyond 60 km from the radar, no statistically significant differences were found. Numerous reflectivity signatures were also studied, including hook echoes and weak-echo regions associated with supercell vortices, as well as rear-inflow notches, bowing segments, and forward-inflow notches associated with nonsupercell vortices. These signatures were found to have a high probability of detection close to the radar, but also a high false alarm rate, and were observed much less often >100 km from the radar. Overall, while azimuthal shear and radar reflectivity signatures show the potential for high probability of detection in close proximity to operational radars, high false alarm rates, and short lead times appear to be an unavoidable trade-off in HSLC environments.
    publisherAmerican Meteorological Society
    titleRadar Climatology of Tornadic and Nontornadic Vortices in High-Shear, Low-CAPE Environments in the Mid-Atlantic and Southeastern United States
    typeJournal Paper
    journal volume29
    journal issue4
    journal titleWeather and Forecasting
    identifier doi10.1175/WAF-D-13-00127.1
    journal fristpage828
    journal lastpage853
    treeWeather and Forecasting:;2014:;volume( 029 ):;issue: 004
    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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