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    Retrieved Vertical Profiles of Latent Heat Release Using TRMM Rainfall Products for February 1998

    Source: Journal of Applied Meteorology:;2001:;volume( 040 ):;issue: 006::page 957
    Author:
    Tao, W-K.
    ,
    Lang, S.
    ,
    Olson, W. S.
    ,
    Meneghini, R.
    ,
    Yang, S.
    ,
    Simpson, J.
    ,
    Kummerow, C.
    ,
    Smith, E.
    ,
    Halverson, J.
    DOI: 10.1175/1520-0450(2001)040<0957:RVPOLH>2.0.CO;2
    Publisher: American Meteorological Society
    Abstract: This paper represents the first attempt to use Tropical Rainfall Measuring Mission (TRMM) rainfall information to estimate the four-dimensional latent heating structure over the global Tropics for one month (February 1998). The mean latent heating profiles over six oceanic regions [Tropical Ocean and Global Atmosphere (TOGA) Coupled Ocean?Atmosphere Response Experiment (COARE) Intensive Flux Array (IFA), central Pacific, South Pacific Convergence Zone (SPCZ), east Pacific, Indian Ocean, and Atlantic Ocean] and three continental regions (South America, central Africa, and Australia) are estimated and studied. The heating profiles obtained from the results of diagnostic budget studies over a broad range of geographic locations are used to provide comparisons and indirect validation for the heating algorithm?estimated heating profiles. Three different latent heating algorithms, the Goddard Space Flight Center convective?stratiform heating (CSH), the Goddard profiling (GPROF) heating, and the hydrometeor heating (HH) algorithms are used and their results are intercompared. The horizontal distribution or patterns of latent heat release from the three different heating retrieval methods are very similar. They all can identify the areas of major convective activity [i.e., a well-defined Intertropical Convergence Zone (ITCZ) in the Pacific, a distinct SPCZ] in the global Tropics. The magnitudes of their estimated latent heating release are also in good agreement with each other and with those determined from diagnostic budget studies. However, the major difference among these three heating retrieval algorithms is the altitude of the maximum heating level. The CSH algorithm?estimated heating profiles only show one maximum heating level, and the level varies among convective activity from various geographic locations. These features are in good agreement with diagnostic budget studies. A broader maximum of heating, often with two embedded peaks, is generally derived from applications of the GPROF heating and HH algorithms, and the response of the heating profiles to convective activity is less pronounced. Also, GPROF and HH generally yield heating profiles with a maximum at somewhat lower altitudes than CSH. The impact of different TRMM Microwave Imager (TMI) and precipitation radar (PR) rainfall information on latent heating structures was also examined. The rainfall estimated from the PR is smaller than that estimated from the TMI in the Pacific (TOGA COARE IFA, central Pacific, SPCZ, and east Pacific) and Indian Oceans, causing weaker latent heat release in the CSH algorithm?estimated heating. In addition, the larger stratiform amounts derived from the PR over South America and Australia consequently lead to higher maximum heating levels. Sensitivity tests addressing the appropriate selection of latent heating profiles from the CSH lookup table were performed.
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      Retrieved Vertical Profiles of Latent Heat Release Using TRMM Rainfall Products for February 1998

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    contributor authorTao, W-K.
    contributor authorLang, S.
    contributor authorOlson, W. S.
    contributor authorMeneghini, R.
    contributor authorYang, S.
    contributor authorSimpson, J.
    contributor authorKummerow, C.
    contributor authorSmith, E.
    contributor authorHalverson, J.
    date accessioned2017-06-09T14:07:53Z
    date available2017-06-09T14:07:53Z
    date copyright2001/06/01
    date issued2001
    identifier issn0894-8763
    identifier otherams-12999.pdf
    identifier urihttp://onlinelibrary.yabesh.ir/handle/yetl/4148399
    description abstractThis paper represents the first attempt to use Tropical Rainfall Measuring Mission (TRMM) rainfall information to estimate the four-dimensional latent heating structure over the global Tropics for one month (February 1998). The mean latent heating profiles over six oceanic regions [Tropical Ocean and Global Atmosphere (TOGA) Coupled Ocean?Atmosphere Response Experiment (COARE) Intensive Flux Array (IFA), central Pacific, South Pacific Convergence Zone (SPCZ), east Pacific, Indian Ocean, and Atlantic Ocean] and three continental regions (South America, central Africa, and Australia) are estimated and studied. The heating profiles obtained from the results of diagnostic budget studies over a broad range of geographic locations are used to provide comparisons and indirect validation for the heating algorithm?estimated heating profiles. Three different latent heating algorithms, the Goddard Space Flight Center convective?stratiform heating (CSH), the Goddard profiling (GPROF) heating, and the hydrometeor heating (HH) algorithms are used and their results are intercompared. The horizontal distribution or patterns of latent heat release from the three different heating retrieval methods are very similar. They all can identify the areas of major convective activity [i.e., a well-defined Intertropical Convergence Zone (ITCZ) in the Pacific, a distinct SPCZ] in the global Tropics. The magnitudes of their estimated latent heating release are also in good agreement with each other and with those determined from diagnostic budget studies. However, the major difference among these three heating retrieval algorithms is the altitude of the maximum heating level. The CSH algorithm?estimated heating profiles only show one maximum heating level, and the level varies among convective activity from various geographic locations. These features are in good agreement with diagnostic budget studies. A broader maximum of heating, often with two embedded peaks, is generally derived from applications of the GPROF heating and HH algorithms, and the response of the heating profiles to convective activity is less pronounced. Also, GPROF and HH generally yield heating profiles with a maximum at somewhat lower altitudes than CSH. The impact of different TRMM Microwave Imager (TMI) and precipitation radar (PR) rainfall information on latent heating structures was also examined. The rainfall estimated from the PR is smaller than that estimated from the TMI in the Pacific (TOGA COARE IFA, central Pacific, SPCZ, and east Pacific) and Indian Oceans, causing weaker latent heat release in the CSH algorithm?estimated heating. In addition, the larger stratiform amounts derived from the PR over South America and Australia consequently lead to higher maximum heating levels. Sensitivity tests addressing the appropriate selection of latent heating profiles from the CSH lookup table were performed.
    publisherAmerican Meteorological Society
    titleRetrieved Vertical Profiles of Latent Heat Release Using TRMM Rainfall Products for February 1998
    typeJournal Paper
    journal volume40
    journal issue6
    journal titleJournal of Applied Meteorology
    identifier doi10.1175/1520-0450(2001)040<0957:RVPOLH>2.0.CO;2
    journal fristpage957
    journal lastpage982
    treeJournal of Applied Meteorology:;2001:;volume( 040 ):;issue: 006
    contenttypeFulltext
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    DSpace software copyright © 2002-2015  DuraSpace
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