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    What are the Best Thermodynamic Quantity and Function to Define a Front in Gridded Model Output?

    Source: Bulletin of the American Meteorological Society:;2018:;volume 100:;issue 005::page 873
    Author:
    Thomas, Carl M.
    ,
    Schultz, David M.
    DOI: 10.1175/BAMS-D-18-0137.1
    Publisher: American Meteorological Society
    Abstract: AbstractFronts can be computed from gridded datasets such as numerical model output and reanalyses, resulting in automated surface frontal charts and climatologies. Defining automated fronts requires quantities (e.g., potential temperature, equivalent potential temperature, wind shifts) and kinematic functions (e.g., gradient, thermal front parameter, and frontogenesis). Which are the most appropriate to use in different applications remains an open question. This question is investigated using two quantities (potential temperature and equivalent potential temperature) and three functions (magnitude of the horizontal gradient, thermal front parameter, and frontogenesis) from both the context of real-time surface analysis and climatologies from 38 years of reanalyses. The strengths of potential temperature to identify fronts are that it represents the thermal gradients and its direct association with the kinematics and dynamics of fronts. Although climatologies using potential temperature show features associated with extratropical cyclones in the storm tracks, climatologies using equivalent potential temperature include moisture gradients within air masses, most notably at low latitudes that are unrelated to the traditional definition of a front, but may be representative of a broader definition of an airmass boundary. These results help to explain previously published frontal climatologies featuring maxima of fronts in the subtropics and tropics. The best function depends upon the purpose of the analysis, but Petterssen frontogenesis is attractive, both for real-time analysis and long-term climatologies, in part because of its link to the kinematics and dynamics of fronts. Finally, this study challenges the conventional definition of a front as an airmass boundary and suggests that a new, dynamically based definition would be useful for some applications.
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      What are the Best Thermodynamic Quantity and Function to Define a Front in Gridded Model Output?

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    contributor authorThomas, Carl M.
    contributor authorSchultz, David M.
    date accessioned2019-10-05T06:53:19Z
    date available2019-10-05T06:53:19Z
    date copyright11/16/2018 12:00:00 AM
    date issued2018
    identifier otherBAMS-D-18-0137.1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4263741
    description abstractAbstractFronts can be computed from gridded datasets such as numerical model output and reanalyses, resulting in automated surface frontal charts and climatologies. Defining automated fronts requires quantities (e.g., potential temperature, equivalent potential temperature, wind shifts) and kinematic functions (e.g., gradient, thermal front parameter, and frontogenesis). Which are the most appropriate to use in different applications remains an open question. This question is investigated using two quantities (potential temperature and equivalent potential temperature) and three functions (magnitude of the horizontal gradient, thermal front parameter, and frontogenesis) from both the context of real-time surface analysis and climatologies from 38 years of reanalyses. The strengths of potential temperature to identify fronts are that it represents the thermal gradients and its direct association with the kinematics and dynamics of fronts. Although climatologies using potential temperature show features associated with extratropical cyclones in the storm tracks, climatologies using equivalent potential temperature include moisture gradients within air masses, most notably at low latitudes that are unrelated to the traditional definition of a front, but may be representative of a broader definition of an airmass boundary. These results help to explain previously published frontal climatologies featuring maxima of fronts in the subtropics and tropics. The best function depends upon the purpose of the analysis, but Petterssen frontogenesis is attractive, both for real-time analysis and long-term climatologies, in part because of its link to the kinematics and dynamics of fronts. Finally, this study challenges the conventional definition of a front as an airmass boundary and suggests that a new, dynamically based definition would be useful for some applications.
    publisherAmerican Meteorological Society
    titleWhat are the Best Thermodynamic Quantity and Function to Define a Front in Gridded Model Output?
    typeJournal Paper
    journal volume100
    journal issue5
    journal titleBulletin of the American Meteorological Society
    identifier doi10.1175/BAMS-D-18-0137.1
    journal fristpage873
    journal lastpage895
    treeBulletin of the American Meteorological Society:;2018:;volume 100:;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
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