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    Simulation of Heavy Precipitation and the Production of Graupel Related to the Passage of a Cold Front over the Australian Snowy Mountains

    Source: Monthly Weather Review:;2022:;volume( 150 ):;issue: 012::page 3229
    Author:
    Artur Gevorgyan
    ,
    Luis Ackermann
    ,
    Yi Huang
    ,
    Steven Siems
    ,
    Michael Manton
    DOI: 10.1175/MWR-D-21-0080.1
    Publisher: American Meteorological Society
    Abstract: The case study of a heavy precipitation event associated with the passage of cold front over the Australian Snowy Mountains (ASM) on 3 August 2018 has been examined using the observational data from an intensive field campaign and high-resolution (1 km) Weather Research and Forecasting (WRF) simulation. We divided this event into prefrontal, cold front, and postfrontal periods. The cold front and postfrontal periods were characterized by higher production of graupel, while relatively low graupel was produced in the prefrontal period. Overall, aggregation along with deposition are likely the main growth mechanisms of snow in the prefrontal clouds, while heavy rain was produced below the melting level over windward slopes of the ASM. The simulated melting level is lower compared to the observations, which is consistent with model cold bias. Stronger orographic uplift and frontal forcing were mainly responsible for the enhanced supercooled liquid water (SLW) production over the ASM in the cold front period. A drop in elevation of the freezing level and increase in low-level relative humidity further enhanced the SLW production. The production of graupel through riming processes was highly efficient in the cold front period given the high concentration of ice-phase hydrometeors in the frontal clouds and the development of clouds comprising supercooled liquid water. The orographic updrafts and embedded convection were the main dynamical processes generating postfrontal SLW clouds and graupel. Ice initiation processes were activated once SLW cloud tops reached −15°C level followed by graupel production through riming processes.
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      Simulation of Heavy Precipitation and the Production of Graupel Related to the Passage of a Cold Front over the Australian Snowy Mountains

    URI
    https://yetl.yabesh.ir/yetl1/handle/yetl/4290037
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    • Monthly Weather Review

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    contributor authorArtur Gevorgyan
    contributor authorLuis Ackermann
    contributor authorYi Huang
    contributor authorSteven Siems
    contributor authorMichael Manton
    date accessioned2023-04-12T18:39:40Z
    date available2023-04-12T18:39:40Z
    date copyright2022/12/06
    date issued2022
    identifier otherMWR-D-21-0080.1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4290037
    description abstractThe case study of a heavy precipitation event associated with the passage of cold front over the Australian Snowy Mountains (ASM) on 3 August 2018 has been examined using the observational data from an intensive field campaign and high-resolution (1 km) Weather Research and Forecasting (WRF) simulation. We divided this event into prefrontal, cold front, and postfrontal periods. The cold front and postfrontal periods were characterized by higher production of graupel, while relatively low graupel was produced in the prefrontal period. Overall, aggregation along with deposition are likely the main growth mechanisms of snow in the prefrontal clouds, while heavy rain was produced below the melting level over windward slopes of the ASM. The simulated melting level is lower compared to the observations, which is consistent with model cold bias. Stronger orographic uplift and frontal forcing were mainly responsible for the enhanced supercooled liquid water (SLW) production over the ASM in the cold front period. A drop in elevation of the freezing level and increase in low-level relative humidity further enhanced the SLW production. The production of graupel through riming processes was highly efficient in the cold front period given the high concentration of ice-phase hydrometeors in the frontal clouds and the development of clouds comprising supercooled liquid water. The orographic updrafts and embedded convection were the main dynamical processes generating postfrontal SLW clouds and graupel. Ice initiation processes were activated once SLW cloud tops reached −15°C level followed by graupel production through riming processes.
    publisherAmerican Meteorological Society
    titleSimulation of Heavy Precipitation and the Production of Graupel Related to the Passage of a Cold Front over the Australian Snowy Mountains
    typeJournal Paper
    journal volume150
    journal issue12
    journal titleMonthly Weather Review
    identifier doi10.1175/MWR-D-21-0080.1
    journal fristpage3229
    journal lastpage3249
    page3229–3249
    treeMonthly Weather Review:;2022:;volume( 150 ):;issue: 012
    contenttypeFulltext
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