Intensity fluctuations in Hurricane Irma (2017) during a period of rapid intensification

William Torgerson, Juliane Schwendike, Andrew Ross, Chris J. Short
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Abstract

Abstract. This study aims to understand the fluctuations observed in Hurricane Irma (2017), which change the tangential wind speed and the size of the radius of maximum surface wind and therefore affect short-term destructive potential. Intensity fluctuations observed during a period of rapid intensification of Hurricane Irma between 4 and 6 September 2017 are investigated in a detailed modelling study using an ensemble of Met Office Unified Model (MetUM) convection-permitting forecasts. Although weakening and strengthening phases were defined using 10 m wind, structural changes in the storm were observed through the lower troposphere, with the most substantial changes just above the boundary layer (at around 1500 m). Isolated regions of rotating deep convection, coupled with outward propagating vortex Rossby waves, develop during the strengthening phases. Although these isolated convective structures initially contribute to the increase in azimuthally averaged tangential wind through positive radial eddy vorticity fluxes, the continued outward expansion of convection eventually leads to a negative radial eddy vorticity flux, which halts the strengthening of the tangential wind above the boundary layer at the start of the weakening phase. The outward expansion of the azimuthally averaged convection also enhances the outflow above the boundary layer in the eyewall region, as the convection is no longer strong enough to ventilate the mass inflow from the boundary layer in a process similar to one described in a recent idealised study.
飓风伊尔玛(2017)在快速增强期间的强度波动
摘要本研究旨在了解飓风Irma(2017)观测到的波动,这些波动改变了切向风速和最大地面风半径的大小,从而影响短期破坏潜力。在2017年9月4日至6日飓风“厄玛”快速增强期间观测到的强度波动,利用英国气象局统一模式(MetUM)允许对流的预报集合进行了详细的建模研究。虽然减弱和增强阶段是用10米的风来定义的,但风暴的结构变化是通过对流层下层观察到的,最明显的变化是在边界层以上(大约1500米)。在增强阶段,形成了旋转的深层对流的孤立区域,加上向外传播的涡旋罗斯比波。虽然这些孤立的对流结构最初通过正的径向涡度通量促进了方位平均切向风的增加,但对流的持续向外扩张最终导致负的径向涡度通量,从而在减弱阶段开始时停止了边界层上方切向风的增强。方向平均对流的向外扩张也增强了眼壁区域边界层上方的流出,因为对流不再足够强大,无法像最近一项理想化研究中描述的那样,为边界层流入的质量通风。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
6.40
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