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    Microphysical Perturbation Experiments and Ensemble Forecasts on Summertime Heavy Rainfall over Northern Taiwan

    Source: Weather and Forecasting:;2022:;volume( 037 ):;issue: 009::page 1641
    Author:
    Jen-Ping Chen
    ,
    Tzu-Chin Tsai
    ,
    Min-Duan Tzeng
    ,
    Chi-Shuin Liao
    ,
    Hung-Chi Kuo
    ,
    Jing-Shan Hong
    DOI: 10.1175/WAF-D-22-0004.1
    Publisher: American Meteorological Society
    Abstract: Microphysical perturbation experiments were conducted to investigate the sensitivity of convective heavy rain simulation to cloud microphysical parameterization and its feasibility for ensemble forecasts. An ensemble of 20 perturbation members differing in either the microphysics package or process treatments within a single scheme was applied to simulate 10 summer-afternoon heavy-rain convection cases. The simulations revealed substantial disagreements in the location and amplitude of peak rainfall among the microphysics-package and single-scheme members, with an overall spread of 57%–161%, 66%–161%, and 65%–149% of the observed average rainfall, maximum rainfall, and maximum intensity, respectively. The single-scheme members revealed that the simulation of heavy convective precipitation is quite sensitive to factors including ice-particle fall speed parameterization, aerosol type, ice particle shape, and size distribution representation. The microphysical ensemble can derive reasonable probability of occurrence for a location-specific heavy-rain forecast. Spatial-forecast performance indices up to 0.6 were attained by applying an optimal fuzzy radius of about 8 km for the warning-area coverage. The forecasts tend to be more successful for more organized convection. Spectral mapping methods were further applied to provide ensemble forecasts for the 10 heavy rainfall cases. For most cases, realistic spatial patterns were derived with spatial correlation up to 0.8. The quantitative performance in average rainfall, maximum rainfall, and maximum intensity from the ensembles reached correlations of 0.83, 0.84, and 0.51, respectively, with the observed values.
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      Microphysical Perturbation Experiments and Ensemble Forecasts on Summertime Heavy Rainfall over Northern Taiwan

    URI
    http://yetl.yabesh.ir/yetl1/handle/yetl/4289656
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    • Weather and Forecasting

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    contributor authorJen-Ping Chen
    contributor authorTzu-Chin Tsai
    contributor authorMin-Duan Tzeng
    contributor authorChi-Shuin Liao
    contributor authorHung-Chi Kuo
    contributor authorJing-Shan Hong
    date accessioned2023-04-12T18:25:59Z
    date available2023-04-12T18:25:59Z
    date copyright2022/09/01
    date issued2022
    identifier otherWAF-D-22-0004.1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4289656
    description abstractMicrophysical perturbation experiments were conducted to investigate the sensitivity of convective heavy rain simulation to cloud microphysical parameterization and its feasibility for ensemble forecasts. An ensemble of 20 perturbation members differing in either the microphysics package or process treatments within a single scheme was applied to simulate 10 summer-afternoon heavy-rain convection cases. The simulations revealed substantial disagreements in the location and amplitude of peak rainfall among the microphysics-package and single-scheme members, with an overall spread of 57%–161%, 66%–161%, and 65%–149% of the observed average rainfall, maximum rainfall, and maximum intensity, respectively. The single-scheme members revealed that the simulation of heavy convective precipitation is quite sensitive to factors including ice-particle fall speed parameterization, aerosol type, ice particle shape, and size distribution representation. The microphysical ensemble can derive reasonable probability of occurrence for a location-specific heavy-rain forecast. Spatial-forecast performance indices up to 0.6 were attained by applying an optimal fuzzy radius of about 8 km for the warning-area coverage. The forecasts tend to be more successful for more organized convection. Spectral mapping methods were further applied to provide ensemble forecasts for the 10 heavy rainfall cases. For most cases, realistic spatial patterns were derived with spatial correlation up to 0.8. The quantitative performance in average rainfall, maximum rainfall, and maximum intensity from the ensembles reached correlations of 0.83, 0.84, and 0.51, respectively, with the observed values.
    publisherAmerican Meteorological Society
    titleMicrophysical Perturbation Experiments and Ensemble Forecasts on Summertime Heavy Rainfall over Northern Taiwan
    typeJournal Paper
    journal volume37
    journal issue9
    journal titleWeather and Forecasting
    identifier doi10.1175/WAF-D-22-0004.1
    journal fristpage1641
    journal lastpage1659
    page1641–1659
    treeWeather and Forecasting:;2022:;volume( 037 ):;issue: 009
    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
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