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    A New Criterion to Improve Operational Drizzle Detection with Ground-Based Remote Sensing

    Source: Journal of Atmospheric and Oceanic Technology:;2019:;volume 036:;issue 005::page 781
    Author:
    Acquistapace, Claudia
    ,
    Löhnert, Ulrich
    ,
    Maahn, Maximilian
    ,
    Kollias, Pavlos
    DOI: 10.1175/JTECH-D-18-0158.1
    Publisher: American Meteorological Society
    Abstract: AbstractLight shallow precipitation in the form of drizzle is one of the mechanisms for liquid water removal, affecting cloud lifetime and boundary layer dynamics and thermodynamics. The early formation of drizzle drops is of particular interest for quantifying aerosol?cloud?precipitation interactions. In models, drizzle initiation is represented by the autoconversion, that is, the conversion of liquid water from a cloud liquid water category (where particle sedimentation is ignored) into a precipitating liquid water category. Various autoconversion parameterizations have been proposed in recent years, but their evaluation is challenging due to the lack of proper observations of drizzle development in the cloud. This work presents a new algorithm for Classification of Drizzle Stages (CLADS). CLADS is based on the skewness of the Ka-band radar Doppler spectrum. Skewness is sensitive to the drizzle growth in the cloud: the observed Gaussian Doppler spectrum has skewness zero when only cloud droplets are present without any significant fall velocity. Defining downward velocities positive, skewness turns positive when embryonic drizzle forms and becomes negative when drizzle starts to dominate the spectrum. CLADS identifies spatially coherent structures of positive, zero, and negative skewness in space and time corresponding to drizzle seeding, drizzle growth/nondrizzle, and drizzle mature, respectively. We test CLADS on case studies from the Jülich Observatory for Cloud Evolution Core Facility (JOYCE-CF) and the Barbados Cloud Observatory (BCO) to quantitatively estimate the benefits of CLADS compared to the standard Cloudnet target categorization algorithm. We suggest that CLADS can provide additional observational constraints for understanding the processes related to drizzle formation better.
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      A New Criterion to Improve Operational Drizzle Detection with Ground-Based Remote Sensing

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    contributor authorAcquistapace, Claudia
    contributor authorLöhnert, Ulrich
    contributor authorMaahn, Maximilian
    contributor authorKollias, Pavlos
    date accessioned2019-10-05T06:46:25Z
    date available2019-10-05T06:46:25Z
    date copyright3/6/2019 12:00:00 AM
    date issued2019
    identifier otherJTECH-D-18-0158.1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4263372
    description abstractAbstractLight shallow precipitation in the form of drizzle is one of the mechanisms for liquid water removal, affecting cloud lifetime and boundary layer dynamics and thermodynamics. The early formation of drizzle drops is of particular interest for quantifying aerosol?cloud?precipitation interactions. In models, drizzle initiation is represented by the autoconversion, that is, the conversion of liquid water from a cloud liquid water category (where particle sedimentation is ignored) into a precipitating liquid water category. Various autoconversion parameterizations have been proposed in recent years, but their evaluation is challenging due to the lack of proper observations of drizzle development in the cloud. This work presents a new algorithm for Classification of Drizzle Stages (CLADS). CLADS is based on the skewness of the Ka-band radar Doppler spectrum. Skewness is sensitive to the drizzle growth in the cloud: the observed Gaussian Doppler spectrum has skewness zero when only cloud droplets are present without any significant fall velocity. Defining downward velocities positive, skewness turns positive when embryonic drizzle forms and becomes negative when drizzle starts to dominate the spectrum. CLADS identifies spatially coherent structures of positive, zero, and negative skewness in space and time corresponding to drizzle seeding, drizzle growth/nondrizzle, and drizzle mature, respectively. We test CLADS on case studies from the Jülich Observatory for Cloud Evolution Core Facility (JOYCE-CF) and the Barbados Cloud Observatory (BCO) to quantitatively estimate the benefits of CLADS compared to the standard Cloudnet target categorization algorithm. We suggest that CLADS can provide additional observational constraints for understanding the processes related to drizzle formation better.
    publisherAmerican Meteorological Society
    titleA New Criterion to Improve Operational Drizzle Detection with Ground-Based Remote Sensing
    typeJournal Paper
    journal volume36
    journal issue5
    journal titleJournal of Atmospheric and Oceanic Technology
    identifier doi10.1175/JTECH-D-18-0158.1
    journal fristpage781
    journal lastpage801
    treeJournal of Atmospheric and Oceanic Technology:;2019:;volume 036:;issue 005
    contenttypeFulltext
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    DSpace software copyright © 2002-2015  DuraSpace
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