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    Impact of Microphysics Parameterizations on Simulations of the 27 October 2010 Great Salt Lake–Effect Snowstorm

    Source: Weather and Forecasting:;2014:;volume( 030 ):;issue: 001::page 136
    Author:
    McMillen, John D.
    ,
    Steenburgh, W. James
    DOI: 10.1175/WAF-D-14-00060.1
    Publisher: American Meteorological Society
    Abstract: imulations of moist convection at cloud-permitting grid spacings are sensitive to the parameterization of microphysical processes, posing a challenge for operational weather prediction. Here, the Weather Research and Forecasting (WRF) Model is used to examine the sensitivity of simulations of the Great Salt Lake?effect snowstorm of 27 October 2010 to the choice of microphysics parameterization (MP). It is found that the simulated precipitation from four MP schemes varies in areal coverage, amount, and position. The Thompson scheme (THOM) verifies best against radar-derived precipitation estimates and gauge observations. The Goddard, Morrison, and WRF double-moment 6-class microphysics schemes (WDM6) produce more precipitation than THOM, with WDM6 producing the largest overprediction relative to radar-derived precipitation estimates and gauge observations. Analyses of hydrometeor mass tendencies show that WDM6 creates more graupel, less snow, and more total precipitation than the other schemes. These results indicate that the rate of graupel and snow production can strongly influence the precipitation efficiency in simulations of lake-effect storms, but further work is needed to evaluate MP-scheme accuracy across a wider range of events, including the use of aircraft- and ground-based hydrometeor sampling to validate MP hydrometeor categorization.
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      Impact of Microphysics Parameterizations on Simulations of the 27 October 2010 Great Salt Lake–Effect Snowstorm

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    https://yetl.yabesh.ir/yetl1/handle/yetl/4231783
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    contributor authorMcMillen, John D.
    contributor authorSteenburgh, W. James
    date accessioned2017-06-09T17:36:42Z
    date available2017-06-09T17:36:42Z
    date copyright2015/02/01
    date issued2014
    identifier issn0882-8156
    identifier otherams-88046.pdf
    identifier urihttp://onlinelibrary.yabesh.ir/handle/yetl/4231783
    description abstractimulations of moist convection at cloud-permitting grid spacings are sensitive to the parameterization of microphysical processes, posing a challenge for operational weather prediction. Here, the Weather Research and Forecasting (WRF) Model is used to examine the sensitivity of simulations of the Great Salt Lake?effect snowstorm of 27 October 2010 to the choice of microphysics parameterization (MP). It is found that the simulated precipitation from four MP schemes varies in areal coverage, amount, and position. The Thompson scheme (THOM) verifies best against radar-derived precipitation estimates and gauge observations. The Goddard, Morrison, and WRF double-moment 6-class microphysics schemes (WDM6) produce more precipitation than THOM, with WDM6 producing the largest overprediction relative to radar-derived precipitation estimates and gauge observations. Analyses of hydrometeor mass tendencies show that WDM6 creates more graupel, less snow, and more total precipitation than the other schemes. These results indicate that the rate of graupel and snow production can strongly influence the precipitation efficiency in simulations of lake-effect storms, but further work is needed to evaluate MP-scheme accuracy across a wider range of events, including the use of aircraft- and ground-based hydrometeor sampling to validate MP hydrometeor categorization.
    publisherAmerican Meteorological Society
    titleImpact of Microphysics Parameterizations on Simulations of the 27 October 2010 Great Salt Lake–Effect Snowstorm
    typeJournal Paper
    journal volume30
    journal issue1
    journal titleWeather and Forecasting
    identifier doi10.1175/WAF-D-14-00060.1
    journal fristpage136
    journal lastpage152
    treeWeather and Forecasting:;2014:;volume( 030 ):;issue: 001
    contenttypeFulltext
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