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    An Explicit Simulation of Tropical Cyclones with a Triply Nested Movable Mesh Primitive Equation Model: TCM3. Part I: Model Description and Control Experiment

    Source: Monthly Weather Review:;2001:;volume( 129 ):;issue: 006::page 1370
    Author:
    Wang, Yuqing
    DOI: 10.1175/1520-0493(2001)129<1370:AESOTC>2.0.CO;2
    Publisher: American Meteorological Society
    Abstract: Results from an explicit simulation of tropical cyclones are presented in this study. The numerical model used in the study is the triply nested movable mesh primitive equation model newly developed by the author. It uses the hydrostatic primitive equations with explicit treatment of cloud microphysics. The integration domain is triply nested by a two-way nesting strategy with the two interior meshes being movable following the model tropical cyclone. The model physics are chosen based on the up-to-date developments, including an E-? closure scheme for subgrid-scale vertical turbulent mixing [with E being the turbulent kinetic energy (TKE), and ? the TKE dissipation rate]; a modified Monin?Obukhov scheme for the surface flux calculation, with an option to include the effect of sea spray evaporation; an explicit treatment of mixed-ice phase cloud microphysics; and dissipative heating, which has been found to be important in tropical cyclones. New developments include a new iteration scheme to solve the nonlinear balance equation in σ coordinates in the nested-mesh grids, which is used for model initialization; an initialization scheme for both TKE and its dissipation rate fields based on a level-2 turbulence closure scheme deduced from the TKE and its dissipation rate equations; and a modified formula for the timescale that determines the rate at which cloud ice converts to snow via the Bergeron process. The success of the multiply nested movable mesh approach and the conservative property of the numerical model is first tested with an experiment in which the model was initialized with an axisymmetric cyclonic vortex embedded in a uniform easterly flow of 5 ms?1 on an f plane, but with no model physics. Results from a control experiment with the full model physics are then discussed in detail to demonstrate the capability of the model in simulating many aspects of the tropical cyclone, especially the inner core structure and both the inner and outer spiral rainbands in the cyclone circulation. The vortex Rossby waves in the simulated tropical cyclone core region are also identified and analyzed. Sensitivity of the model results to various model physics and major physical parameters will be given in a companion paper.
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      An Explicit Simulation of Tropical Cyclones with a Triply Nested Movable Mesh Primitive Equation Model: TCM3. Part I: Model Description and Control Experiment

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    contributor authorWang, Yuqing
    date accessioned2017-06-09T16:13:42Z
    date available2017-06-09T16:13:42Z
    date copyright2001/06/01
    date issued2001
    identifier issn0027-0644
    identifier otherams-63739.pdf
    identifier urihttp://onlinelibrary.yabesh.ir/handle/yetl/4204775
    description abstractResults from an explicit simulation of tropical cyclones are presented in this study. The numerical model used in the study is the triply nested movable mesh primitive equation model newly developed by the author. It uses the hydrostatic primitive equations with explicit treatment of cloud microphysics. The integration domain is triply nested by a two-way nesting strategy with the two interior meshes being movable following the model tropical cyclone. The model physics are chosen based on the up-to-date developments, including an E-? closure scheme for subgrid-scale vertical turbulent mixing [with E being the turbulent kinetic energy (TKE), and ? the TKE dissipation rate]; a modified Monin?Obukhov scheme for the surface flux calculation, with an option to include the effect of sea spray evaporation; an explicit treatment of mixed-ice phase cloud microphysics; and dissipative heating, which has been found to be important in tropical cyclones. New developments include a new iteration scheme to solve the nonlinear balance equation in σ coordinates in the nested-mesh grids, which is used for model initialization; an initialization scheme for both TKE and its dissipation rate fields based on a level-2 turbulence closure scheme deduced from the TKE and its dissipation rate equations; and a modified formula for the timescale that determines the rate at which cloud ice converts to snow via the Bergeron process. The success of the multiply nested movable mesh approach and the conservative property of the numerical model is first tested with an experiment in which the model was initialized with an axisymmetric cyclonic vortex embedded in a uniform easterly flow of 5 ms?1 on an f plane, but with no model physics. Results from a control experiment with the full model physics are then discussed in detail to demonstrate the capability of the model in simulating many aspects of the tropical cyclone, especially the inner core structure and both the inner and outer spiral rainbands in the cyclone circulation. The vortex Rossby waves in the simulated tropical cyclone core region are also identified and analyzed. Sensitivity of the model results to various model physics and major physical parameters will be given in a companion paper.
    publisherAmerican Meteorological Society
    titleAn Explicit Simulation of Tropical Cyclones with a Triply Nested Movable Mesh Primitive Equation Model: TCM3. Part I: Model Description and Control Experiment
    typeJournal Paper
    journal volume129
    journal issue6
    journal titleMonthly Weather Review
    identifier doi10.1175/1520-0493(2001)129<1370:AESOTC>2.0.CO;2
    journal fristpage1370
    journal lastpage1394
    treeMonthly Weather Review:;2001:;volume( 129 ):;issue: 006
    contenttypeFulltext
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    DSpace software copyright © 2002-2015  DuraSpace
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