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A Numerical Study of the Impact of Vertical Shear on the Distribution of Rainfall in Hurricane Bonnie (1998)

机译:邦尼飓风(1998)中垂直剪切对降雨分布影响的数值研究

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Despite the significant impacts of torrential rainfall from tropical cyclones at landfall, quantitative precipitation forecasting (QPF) remains an unsolved problem. A key task in improving tropical cyclone QPF is understanding the factors that affect the intensity and distribution of rainfall around the storm. These include the storm motion, topography, and orientation of the coast, and interactions with the environmental flow. The combination of these effects can produce rainfall distributions that may be nearly axisymmetric or highly asymmetric and rainfall amounts that range from 1 or 2 cm to >30 cm. This study investigates the interactions between a storm and its environmental flow through a numerical simulation of Hurricane Bonnie (1998) that focuses on the role of vertical wind shear in governing azimuthal variations of rainfall. The simulation uses the high-resolution nonhydrostatic fifth-generation Pennsylvania State University-NCAR Mesoscale Model (MM5) to simulate the storm between 0000 UTC 22 August and 0000 UTC 27 August 1998. During this period significant changes in the vertical shear occurred in the simulation. It changed from strong west-southwesterly, and across track, to much weaker south-southwesterly, and along track. Nearly concurrently, the azimuthal distribution of convection changed from a distinct wavenumber-1 pattern to almost azimuthally symmetric by the end of the time period. The strongest convection in the core was generally located on the downshear left side of the shear vector when the shear was strong. The azimuthal distributions and magnitudes of low-level radial inflow, reflectivity, boundary layer divergence, and low-level vertical motion all varied consistently with the evolution of the vertical shear. Additionally, the vortex showed a generally downshear tilt from the vertical. The magnitude of the tilt correlated well with changes in magnitude of the environmental shear. The accumulated rainfall was distributed symmetrically across the track of the storm when the shear was strong and across track, and it was distributed asymmetrically across the track of the storm when the shear was weak and along track.
机译:尽管热带气旋对登陆的暴雨产生了重大影响,但定量降水预报(QPF)仍然是一个尚未解决的问题。改善热带气旋QPF的关键任务是了解影响风暴周围降雨强度和分布的因素。其中包括风暴运动,地形和海岸方向,以及与环境流量的相互作用。这些影响的组合可以产生几乎轴对称或高度不对称的降雨分布,且降雨量的范围从1或2 cm到> 30 cm。这项研究通过对邦妮飓风(1998)的数值模拟来研究风暴与其环境流之间的相互作用,该数值模拟着重于垂直风切变在控制降雨方位角变化中的作用。该模拟使用高分辨率的非静液压第五代宾夕法尼亚州立大学NCAR中尺度模型(MM5)来模拟1998年8月22日至0000 UTC于1998年8月27日之间的风暴。在此期间,模拟中发生了垂直切变的重大变化。 。它从强大的西南偏西到横穿轨道,变成了更加弱小的西南偏南和沿轨道。几乎同时,在时间周期结束时,对流的方位角分布从明显的波数1模式变为几乎方位对称。当剪切强度较大时,岩心中最强的对流通常位于剪切矢量的下剪切左侧。低层径向入流,反射率,边界层发散和低层垂直运动的方位角分布和大小都随垂直剪切力的变化而一致地变化。另外,旋涡显示出相对于垂直方向总体上的剪切剪切倾斜。倾斜的大小与环境剪切强度的变化具有很好的相关性。当剪切力较强时,累积的雨量在风暴轨道上对称分布,并且在整个轨道上分布;当剪切力较弱时,累积的雨量在风暴轨道上不对称分布并沿着轨道分布。

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