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    Sensitivity to Physical and Numerical Aspects of Large-Eddy Simulation of Stratocumulus

    Source: Monthly Weather Review:;2019:;volume 147:;issue 007::page 2621
    Author:
    Matheou, Georgios
    ,
    Teixeira, João
    DOI: 10.1175/MWR-D-18-0294.1
    Publisher: American Meteorological Society
    Abstract: AbstractA series of numerical experiments where both physical and numerical model parameters are varied with respect to a reference setup is used to investigate the physics of a stratocumulus cloud and the performance of a large-eddy simulation (LES) model. The simulations show a delicate balance of physical processes with some sensitivities amplified by numerical model features. A strong feedback between cloud liquid, cloud-top radiative cooling, and turbulence leads to slow grid convergence of the turbulent fluxes. For a methodology that diagnoses cloud liquid from conserved variables, small errors in the total water amount result in large liquid water errors, which are amplified by the cloud-top radiative cooling leading to large variations of buoyancy forcing. In contrast, when the liquid?radiation?buoyancy feedback is not present in simulations without radiation, the turbulence structure of the boundary layer remains essentially identical for grid resolutions between 20 and 1.25 m. The present runs suggest that the buoyancy reversal instability significantly enhances the entrainment rate. Even though cloud-top radiative cooling is regarded as a key attribute of stratocumulus, the present simulations suggest that surface fluxes and surface shear significantly contribute to the total turbulent kinetic energy. Turbulence spectra exhibit inertial range scaling away from the confinement effects of the surface and inversion. Fine grid resolution LESs agree with observations, especially with respect to cloud liquid and vertical velocity variance, and exhibit grid convergence without any model tuning or ad hoc model choices.
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      Sensitivity to Physical and Numerical Aspects of Large-Eddy Simulation of Stratocumulus

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    contributor authorMatheou, Georgios
    contributor authorTeixeira, João
    date accessioned2019-10-05T06:54:51Z
    date available2019-10-05T06:54:51Z
    date copyright3/29/2019 12:00:00 AM
    date issued2019
    identifier otherMWR-D-18-0294.1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4263820
    description abstractAbstractA series of numerical experiments where both physical and numerical model parameters are varied with respect to a reference setup is used to investigate the physics of a stratocumulus cloud and the performance of a large-eddy simulation (LES) model. The simulations show a delicate balance of physical processes with some sensitivities amplified by numerical model features. A strong feedback between cloud liquid, cloud-top radiative cooling, and turbulence leads to slow grid convergence of the turbulent fluxes. For a methodology that diagnoses cloud liquid from conserved variables, small errors in the total water amount result in large liquid water errors, which are amplified by the cloud-top radiative cooling leading to large variations of buoyancy forcing. In contrast, when the liquid?radiation?buoyancy feedback is not present in simulations without radiation, the turbulence structure of the boundary layer remains essentially identical for grid resolutions between 20 and 1.25 m. The present runs suggest that the buoyancy reversal instability significantly enhances the entrainment rate. Even though cloud-top radiative cooling is regarded as a key attribute of stratocumulus, the present simulations suggest that surface fluxes and surface shear significantly contribute to the total turbulent kinetic energy. Turbulence spectra exhibit inertial range scaling away from the confinement effects of the surface and inversion. Fine grid resolution LESs agree with observations, especially with respect to cloud liquid and vertical velocity variance, and exhibit grid convergence without any model tuning or ad hoc model choices.
    publisherAmerican Meteorological Society
    titleSensitivity to Physical and Numerical Aspects of Large-Eddy Simulation of Stratocumulus
    typeJournal Paper
    journal volume147
    journal issue7
    journal titleMonthly Weather Review
    identifier doi10.1175/MWR-D-18-0294.1
    journal fristpage2621
    journal lastpage2639
    treeMonthly Weather Review:;2019:;volume 147:;issue 007
    contenttypeFulltext
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