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Simulated Sensitivity of Tropical Cyclone Size and Structure to the Atmospheric Temperature Profile

机译:热带气旋的大小和结构对大气温度廓线的模拟敏感性

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摘要

This study uses the WRF ARW to investigate how different atmospheric temperature environments impact the size and structure development of a simulated tropical cyclone (TC). In each simulation, the entire vertical virtual temperature profile is either warmed or cooled in 1 degrees C increments from an initial specified state while the initial relative humidity profile and sea surface temperature are held constant. This alters the initial amount of convective available potential energy (CAPE), specific humidity, and air-sea temperature difference such that, when the simulated atmosphere is cooled (warmed), the initial specific humidity and CAPE decrease (increase), but the surface energy fluxes from the ocean increase (decrease). It is found that the TCs that form in an initially cooler environment develop larger wind and precipitation fields with more active outer-core rainband formation. Consistent with previous studies, outer-core rainband formation is associated with high surface energy fluxes, which leads to increases in the outer-core wind field. A larger convective field develops despite initializing in a low CAPE environment, and the dynamics are linked to a wider field of surface radial inflow. As the TC matures and radial inflow expands, large imports of relative angular momentum in the boundary layer continue to drive expansion of the TC's overall size.
机译:这项研究使用WRF ARW来调查不同的大气温度环境如何影响模拟热带气旋(TC)的大小和结构发展。在每个模拟中,从初始指定状态开始,以1摄氏度为增量对整个垂直虚拟温度曲线进行加热或冷却,同时使初始相对湿度曲线和海面温度保持恒定。这改变了对流可用势能(CAPE)的初始量,比湿度和海气温度差,使得当模拟大气被冷却(变暖)时,初始比湿和CAPE降低(增加),但表面来自海洋的能量通量增加(减少)。发现在最初较冷的环境中形成的TC会形成更大的风场和降水场,并形成更活跃的外核雨带。与以前的研究一致,外芯雨带的形成与高表面能通量有关,这导致外芯风场的增加。尽管在低CAPE环境中进行了初始化,但仍会形成较大的对流场,并且动力学与更广泛的表面径向流入场有关。随着TC的成熟和径向流的扩展,边界层中大量的相对角动量进口继续推动TC整体尺寸的扩大。

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