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    CALIPSO/CALIOP Cloud Phase Discrimination Algorithm

    Source: Journal of Atmospheric and Oceanic Technology:;2009:;volume( 026 ):;issue: 011::page 2293
    Author:
    Hu, Yongxiang
    ,
    Winker, David
    ,
    Vaughan, Mark
    ,
    Lin, Bing
    ,
    Omar, Ali
    ,
    Trepte, Charles
    ,
    Flittner, David
    ,
    Yang, Ping
    ,
    Nasiri, Shaima L.
    ,
    Baum, Bryan
    ,
    Holz, Robert
    ,
    Sun, Wenbo
    ,
    Liu, Zhaoyan
    ,
    Wang, Zhien
    ,
    Young, Stuart
    ,
    Stamnes, Knut
    ,
    Huang, Jianping
    ,
    Kuehn, Ralph
    DOI: 10.1175/2009JTECHA1280.1
    Publisher: American Meteorological Society
    Abstract: The current cloud thermodynamic phase discrimination by Cloud-Aerosol Lidar Pathfinder Satellite Observations (CALIPSO) is based on the depolarization of backscattered light measured by its lidar [Cloud-Aerosol Lidar with Orthogonal Polarization (CALIOP)]. It assumes that backscattered light from ice crystals is depolarizing, whereas water clouds, being spherical, result in minimal depolarization. However, because of the relationship between the CALIOP field of view (FOV) and the large distance between the satellite and clouds and because of the frequent presence of oriented ice crystals, there is often a weak correlation between measured depolarization and phase, which thereby creates significant uncertainties in the current CALIOP phase retrieval. For water clouds, the CALIOP-measured depolarization can be large because of multiple scattering, whereas horizontally oriented ice particles depolarize only weakly and behave similarly to water clouds. Because of the nonunique depolarization?cloud phase relationship, more constraints are necessary to uniquely determine cloud phase. Based on theoretical and modeling studies, an improved cloud phase determination algorithm has been developed. Instead of depending primarily on layer-integrated depolarization ratios, this algorithm differentiates cloud phases by using the spatial correlation of layer-integrated attenuated backscatter and layer-integrated particulate depolarization ratio. This approach includes a two-step process: 1) use of a simple two-dimensional threshold method to provide a preliminary identification of ice clouds containing randomly oriented particles, ice clouds with horizontally oriented particles, and possible water clouds and 2) application of a spatial coherence analysis technique to separate water clouds from ice clouds containing horizontally oriented ice particles. Other information, such as temperature, color ratio, and vertical variation of depolarization ratio, is also considered. The algorithm works well for both the 0.3° and 3° off-nadir lidar pointing geometry. When the lidar is pointed at 0.3° off nadir, half of the opaque ice clouds and about one-third of all ice clouds have a significant lidar backscatter contribution from specular reflections from horizontally oriented particles. At 3° off nadir, the lidar backscatter signals for roughly 30% of opaque ice clouds and 20% of all observed ice clouds are contaminated by horizontally oriented crystals.
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      CALIPSO/CALIOP Cloud Phase Discrimination Algorithm

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    http://yetl.yabesh.ir/yetl1/handle/yetl/4210994
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    • Journal of Atmospheric and Oceanic Technology

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    contributor authorHu, Yongxiang
    contributor authorWinker, David
    contributor authorVaughan, Mark
    contributor authorLin, Bing
    contributor authorOmar, Ali
    contributor authorTrepte, Charles
    contributor authorFlittner, David
    contributor authorYang, Ping
    contributor authorNasiri, Shaima L.
    contributor authorBaum, Bryan
    contributor authorHolz, Robert
    contributor authorSun, Wenbo
    contributor authorLiu, Zhaoyan
    contributor authorWang, Zhien
    contributor authorYoung, Stuart
    contributor authorStamnes, Knut
    contributor authorHuang, Jianping
    contributor authorKuehn, Ralph
    date accessioned2017-06-09T16:31:18Z
    date available2017-06-09T16:31:18Z
    date copyright2009/11/01
    date issued2009
    identifier issn0739-0572
    identifier otherams-69336.pdf
    identifier urihttp://onlinelibrary.yabesh.ir/handle/yetl/4210994
    description abstractThe current cloud thermodynamic phase discrimination by Cloud-Aerosol Lidar Pathfinder Satellite Observations (CALIPSO) is based on the depolarization of backscattered light measured by its lidar [Cloud-Aerosol Lidar with Orthogonal Polarization (CALIOP)]. It assumes that backscattered light from ice crystals is depolarizing, whereas water clouds, being spherical, result in minimal depolarization. However, because of the relationship between the CALIOP field of view (FOV) and the large distance between the satellite and clouds and because of the frequent presence of oriented ice crystals, there is often a weak correlation between measured depolarization and phase, which thereby creates significant uncertainties in the current CALIOP phase retrieval. For water clouds, the CALIOP-measured depolarization can be large because of multiple scattering, whereas horizontally oriented ice particles depolarize only weakly and behave similarly to water clouds. Because of the nonunique depolarization?cloud phase relationship, more constraints are necessary to uniquely determine cloud phase. Based on theoretical and modeling studies, an improved cloud phase determination algorithm has been developed. Instead of depending primarily on layer-integrated depolarization ratios, this algorithm differentiates cloud phases by using the spatial correlation of layer-integrated attenuated backscatter and layer-integrated particulate depolarization ratio. This approach includes a two-step process: 1) use of a simple two-dimensional threshold method to provide a preliminary identification of ice clouds containing randomly oriented particles, ice clouds with horizontally oriented particles, and possible water clouds and 2) application of a spatial coherence analysis technique to separate water clouds from ice clouds containing horizontally oriented ice particles. Other information, such as temperature, color ratio, and vertical variation of depolarization ratio, is also considered. The algorithm works well for both the 0.3° and 3° off-nadir lidar pointing geometry. When the lidar is pointed at 0.3° off nadir, half of the opaque ice clouds and about one-third of all ice clouds have a significant lidar backscatter contribution from specular reflections from horizontally oriented particles. At 3° off nadir, the lidar backscatter signals for roughly 30% of opaque ice clouds and 20% of all observed ice clouds are contaminated by horizontally oriented crystals.
    publisherAmerican Meteorological Society
    titleCALIPSO/CALIOP Cloud Phase Discrimination Algorithm
    typeJournal Paper
    journal volume26
    journal issue11
    journal titleJournal of Atmospheric and Oceanic Technology
    identifier doi10.1175/2009JTECHA1280.1
    journal fristpage2293
    journal lastpage2309
    treeJournal of Atmospheric and Oceanic Technology:;2009:;volume( 026 ):;issue: 011
    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
    yabeshDSpacePersian