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    Initialization and Validation of a Simulation of Cirrus Using FIRE-II Data

    Source: Journal of the Atmospheric Sciences:;1996:;Volume( 053 ):;issue: 023::page 3397
    Author:
    Westphal, D.L.
    ,
    Kinne, S.
    ,
    Pilewskie, P.
    ,
    Alvarez, J.M.
    ,
    Minnis, P.
    ,
    Young, D.F.
    ,
    Benjamin, S.G.
    ,
    Eberhard, W.L.
    ,
    Kropfli, R.A.
    ,
    Matrosov, S.Y.
    ,
    Snider, J.B.
    ,
    Uttal, T.A.
    ,
    Heymsfield, A.J.
    ,
    Mace, G.G.
    ,
    Melfi, S.H.
    ,
    Starr, D.O'C.
    ,
    Soden, J.J.
    DOI: 10.1175/1520-0469(1996)053<3397:IAVOAS>2.0.CO;2
    Publisher: American Meteorological Society
    Abstract: Observations from a wide variety of instruments and platforms are used to validate many different aspects of a three-dimensional mesoscale simulation of the dynamics, cloud microphysics, and radiative transfer of a cirrus cloud system observed on 26 November 1991 during the second cirrus field program of the First International Satellite Cloud Climatology Program (ISCCP) Regional Experiment (FIRE-II) located in southeastern Kansas. The simulation was made with a mesoscale dynamical model utilizing a simplified bulk water cloud scheme and a spectral model of radiative transfer. Expressions for cirrus optical properties for solar and infrared wavelength intervals as functions of ice water content and effective particle radius are modified for the midlatitude cirrus observed during FIRE-II and are shown to compare favorably with explicit size-resolving calculations of the optical properties. Rawinsonde, Raman lidar, and satellite data are evaluated and combined to produce a time?height cross section of humidity at the central FIRE-II site for model verification. Due to the wide spacing of rawinsondes and their infrequent release, important moisture features go undetected and are absent in the conventional analyses. The upper-tropospheric humidities used for the initial conditions were generally less than 50% of those inferred from satellite data, yet over the course of a 24-h simulation the model produced a distribution that closely resembles the large-scale features of the satellite analysis. The simulated distribution and concentration of ice compares favorably with data from radar, lidar, satellite, and aircraft. Direct comparison is made between the radiative transfer simulation and data from broadband and spectral sensors and inferred quantities such as cloud albedo, optical depth, and top-of-the-atmosphere 11-µm brightness temperature, and the 6.7-µm brightness temperature. Comparison is also made with theoretical heating rates calculated using the rawinsonde data and measured ice water size distributions near the central site. For this case study, and perhaps for most other mesoscale applications, the differences between the observed and simulated radiative quantities are due more to errors in the prediction of ice water content, than to errors in the optical properties or the radiative transfer solution technique.
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      Initialization and Validation of a Simulation of Cirrus Using FIRE-II Data

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    contributor authorWestphal, D.L.
    contributor authorKinne, S.
    contributor authorPilewskie, P.
    contributor authorAlvarez, J.M.
    contributor authorMinnis, P.
    contributor authorYoung, D.F.
    contributor authorBenjamin, S.G.
    contributor authorEberhard, W.L.
    contributor authorKropfli, R.A.
    contributor authorMatrosov, S.Y.
    contributor authorSnider, J.B.
    contributor authorUttal, T.A.
    contributor authorHeymsfield, A.J.
    contributor authorMace, G.G.
    contributor authorMelfi, S.H.
    contributor authorStarr, D.O'C.
    contributor authorSoden, J.J.
    date accessioned2017-06-09T14:34:12Z
    date available2017-06-09T14:34:12Z
    date copyright1996/12/01
    date issued1996
    identifier issn0022-4928
    identifier otherams-21882.pdf
    identifier urihttp://onlinelibrary.yabesh.ir/handle/yetl/4158270
    description abstractObservations from a wide variety of instruments and platforms are used to validate many different aspects of a three-dimensional mesoscale simulation of the dynamics, cloud microphysics, and radiative transfer of a cirrus cloud system observed on 26 November 1991 during the second cirrus field program of the First International Satellite Cloud Climatology Program (ISCCP) Regional Experiment (FIRE-II) located in southeastern Kansas. The simulation was made with a mesoscale dynamical model utilizing a simplified bulk water cloud scheme and a spectral model of radiative transfer. Expressions for cirrus optical properties for solar and infrared wavelength intervals as functions of ice water content and effective particle radius are modified for the midlatitude cirrus observed during FIRE-II and are shown to compare favorably with explicit size-resolving calculations of the optical properties. Rawinsonde, Raman lidar, and satellite data are evaluated and combined to produce a time?height cross section of humidity at the central FIRE-II site for model verification. Due to the wide spacing of rawinsondes and their infrequent release, important moisture features go undetected and are absent in the conventional analyses. The upper-tropospheric humidities used for the initial conditions were generally less than 50% of those inferred from satellite data, yet over the course of a 24-h simulation the model produced a distribution that closely resembles the large-scale features of the satellite analysis. The simulated distribution and concentration of ice compares favorably with data from radar, lidar, satellite, and aircraft. Direct comparison is made between the radiative transfer simulation and data from broadband and spectral sensors and inferred quantities such as cloud albedo, optical depth, and top-of-the-atmosphere 11-µm brightness temperature, and the 6.7-µm brightness temperature. Comparison is also made with theoretical heating rates calculated using the rawinsonde data and measured ice water size distributions near the central site. For this case study, and perhaps for most other mesoscale applications, the differences between the observed and simulated radiative quantities are due more to errors in the prediction of ice water content, than to errors in the optical properties or the radiative transfer solution technique.
    publisherAmerican Meteorological Society
    titleInitialization and Validation of a Simulation of Cirrus Using FIRE-II Data
    typeJournal Paper
    journal volume53
    journal issue23
    journal titleJournal of the Atmospheric Sciences
    identifier doi10.1175/1520-0469(1996)053<3397:IAVOAS>2.0.CO;2
    journal fristpage3397
    journal lastpage3430
    treeJournal of the Atmospheric Sciences:;1996:;Volume( 053 ):;issue: 023
    contenttypeFulltext
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    DSpace software copyright © 2002-2015  DuraSpace
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