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    The Weather Research and Forecasting Model with Aerosol–Cloud Interactions (WRF-ACI): Development, Evaluation, and Initial Application

    Source: Monthly Weather Review:;2019:;volume 147:;issue 005::page 1491
    Author:
    Glotfelty, Timothy
    ,
    Alapaty, Kiran
    ,
    He, Jian
    ,
    Hawbecker, Patrick
    ,
    Song, Xiaoliang
    ,
    Zhang, Guang
    DOI: 10.1175/MWR-D-18-0267.1
    Publisher: American Meteorological Society
    Abstract: AbstractThe Weather Research and Forecasting Model with Aerosol?Cloud Interactions (WRF-ACI) is developed for studying aerosol effects on gridscale and subgrid-scale clouds using common aerosol activation and ice nucleation formulations and double-moment cloud microphysics in a scale-aware subgrid-scale parameterization scheme. Comparisons of both the standard WRF and WRF-ACI models? results for a summer season against satellite and reanalysis estimates show that the WRF-ACI system improves the simulation of cloud liquid and ice water paths. Correlation coefficients for nearly all evaluated parameters are improved, while other variables show slight degradation. Results indicate a strong cloud lifetime effect from current climatological aerosols increasing domain average cloud liquid water path and reducing domain average precipitation as compared to a simulation with aerosols reduced by 90%. Increased cloud-top heights indicate a thermodynamic invigoration effect, but the impact of thermodynamic invigoration on precipitation is overwhelmed by the cloud lifetime effect. A combination of cloud lifetime and cloud albedo effects increases domain average shortwave cloud forcing by ~3.0 W m?2. Subgrid-scale clouds experience a stronger response to aerosol levels, while gridscale clouds are subject to thermodynamic feedbacks because of the design of the WRF modeling framework. The magnitude of aerosol indirect effects is shown to be sensitive to the choice of autoconversion parameterization used in both the gridscale and subgrid-scale cloud microphysics, but spatial patterns remain qualitatively similar. These results indicate that the WRF-ACI model provides the community with a computationally efficient tool for exploring aerosol?cloud interactions.
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      The Weather Research and Forecasting Model with Aerosol–Cloud Interactions (WRF-ACI): Development, Evaluation, and Initial Application

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    http://yetl.yabesh.ir/yetl1/handle/yetl/4263809
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    • Monthly Weather Review

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    contributor authorGlotfelty, Timothy
    contributor authorAlapaty, Kiran
    contributor authorHe, Jian
    contributor authorHawbecker, Patrick
    contributor authorSong, Xiaoliang
    contributor authorZhang, Guang
    date accessioned2019-10-05T06:54:36Z
    date available2019-10-05T06:54:36Z
    date copyright1/31/2019 12:00:00 AM
    date issued2019
    identifier otherMWR-D-18-0267.1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4263809
    description abstractAbstractThe Weather Research and Forecasting Model with Aerosol?Cloud Interactions (WRF-ACI) is developed for studying aerosol effects on gridscale and subgrid-scale clouds using common aerosol activation and ice nucleation formulations and double-moment cloud microphysics in a scale-aware subgrid-scale parameterization scheme. Comparisons of both the standard WRF and WRF-ACI models? results for a summer season against satellite and reanalysis estimates show that the WRF-ACI system improves the simulation of cloud liquid and ice water paths. Correlation coefficients for nearly all evaluated parameters are improved, while other variables show slight degradation. Results indicate a strong cloud lifetime effect from current climatological aerosols increasing domain average cloud liquid water path and reducing domain average precipitation as compared to a simulation with aerosols reduced by 90%. Increased cloud-top heights indicate a thermodynamic invigoration effect, but the impact of thermodynamic invigoration on precipitation is overwhelmed by the cloud lifetime effect. A combination of cloud lifetime and cloud albedo effects increases domain average shortwave cloud forcing by ~3.0 W m?2. Subgrid-scale clouds experience a stronger response to aerosol levels, while gridscale clouds are subject to thermodynamic feedbacks because of the design of the WRF modeling framework. The magnitude of aerosol indirect effects is shown to be sensitive to the choice of autoconversion parameterization used in both the gridscale and subgrid-scale cloud microphysics, but spatial patterns remain qualitatively similar. These results indicate that the WRF-ACI model provides the community with a computationally efficient tool for exploring aerosol?cloud interactions.
    publisherAmerican Meteorological Society
    titleThe Weather Research and Forecasting Model with Aerosol–Cloud Interactions (WRF-ACI): Development, Evaluation, and Initial Application
    typeJournal Paper
    journal volume147
    journal issue5
    journal titleMonthly Weather Review
    identifier doi10.1175/MWR-D-18-0267.1
    journal fristpage1491
    journal lastpage1511
    treeMonthly Weather Review:;2019:;volume 147:;issue 005
    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