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    The Evolution of Vortex Tilt and Vertical Motion of Tropical Cyclones in Directional Shear Flows

    Source: Journal of the Atmospheric Sciences:;2018:;volume 075:;issue 010::page 3565
    Author:
    Gu, Jian-Feng
    ,
    Tan, Zhe-Min
    ,
    Qiu, Xin
    DOI: 10.1175/JAS-D-18-0024.1
    Publisher: American Meteorological Society
    Abstract: AbstractRecent studies have demonstrated the importance of moist dynamics on the intensification variability of tropical cyclones (TCs) in directional shear flows. Here, we propose that dry dynamics can account for many aspects of the structure change of TCs in moist simulations. The change of vortex tilt with height and time essentially determines the kinematic and thermodynamic structure of TCs experiencing directional shear flows, depending on how the environmental flow rotates with height, that is, in a clockwise (CW) or counterclockwise (CC) fashion. The vortex tilt precesses faster and is closer to the left-of-shear (with respect to the deep-layer shear) region, with a smaller magnitude at equilibrium in CW hodographs than in CC hodographs. The low-level vortex tilt and accordingly more low-level upward motions are ahead of the overall vortex tilt in CW hodographs but are behind the overall vortex tilt in CC hodographs. Such a configuration of vortex tilt in CW hodographs is potentially favorable for the continuous precession of convection into the upshear region but in CC hodographs it is unfavorable. Most of the upward motions within a TC undergoing CW shear are concentrated in the downshear-left region, whereas those in the CC shear are located in the downshear-right region. Moreover, the upward (downward) motions are in phase with positive (negative) local helicity in both CW and CC hodographs. Here, we present an alternative mechanism that is associated with balanced dynamics in response to vortex tilt to explain the coincidence and also the distribution variability of vertical motions, as well as local helicity in directional shear flows. The balanced dynamics could explain the overlap of positive helicity and convection in both moist simulations and observations.
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      The Evolution of Vortex Tilt and Vertical Motion of Tropical Cyclones in Directional Shear Flows

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    contributor authorGu, Jian-Feng
    contributor authorTan, Zhe-Min
    contributor authorQiu, Xin
    date accessioned2019-09-19T10:08:03Z
    date available2019-09-19T10:08:03Z
    date copyright8/20/2018 12:00:00 AM
    date issued2018
    identifier otherjas-d-18-0024.1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4261908
    description abstractAbstractRecent studies have demonstrated the importance of moist dynamics on the intensification variability of tropical cyclones (TCs) in directional shear flows. Here, we propose that dry dynamics can account for many aspects of the structure change of TCs in moist simulations. The change of vortex tilt with height and time essentially determines the kinematic and thermodynamic structure of TCs experiencing directional shear flows, depending on how the environmental flow rotates with height, that is, in a clockwise (CW) or counterclockwise (CC) fashion. The vortex tilt precesses faster and is closer to the left-of-shear (with respect to the deep-layer shear) region, with a smaller magnitude at equilibrium in CW hodographs than in CC hodographs. The low-level vortex tilt and accordingly more low-level upward motions are ahead of the overall vortex tilt in CW hodographs but are behind the overall vortex tilt in CC hodographs. Such a configuration of vortex tilt in CW hodographs is potentially favorable for the continuous precession of convection into the upshear region but in CC hodographs it is unfavorable. Most of the upward motions within a TC undergoing CW shear are concentrated in the downshear-left region, whereas those in the CC shear are located in the downshear-right region. Moreover, the upward (downward) motions are in phase with positive (negative) local helicity in both CW and CC hodographs. Here, we present an alternative mechanism that is associated with balanced dynamics in response to vortex tilt to explain the coincidence and also the distribution variability of vertical motions, as well as local helicity in directional shear flows. The balanced dynamics could explain the overlap of positive helicity and convection in both moist simulations and observations.
    publisherAmerican Meteorological Society
    titleThe Evolution of Vortex Tilt and Vertical Motion of Tropical Cyclones in Directional Shear Flows
    typeJournal Paper
    journal volume75
    journal issue10
    journal titleJournal of the Atmospheric Sciences
    identifier doi10.1175/JAS-D-18-0024.1
    journal fristpage3565
    journal lastpage3578
    treeJournal of the Atmospheric Sciences:;2018:;volume 075:;issue 010
    contenttypeFulltext
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    DSpace software copyright © 2002-2015  DuraSpace
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