Diagnosing tropical cyclone intensity variations from the surface wind field evolution

IF 3 3区 地球科学 Q2 METEOROLOGY & ATMOSPHERIC SCIENCES Journal of the Atmospheric Sciences Pub Date : 2023-07-20 DOI:10.1175/jas-d-22-0208.1
Léo Vinour, Swen Jullien, A. Mouche
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Abstract

Tropical cyclone (TC) intensity fluctuations remain a challenge for TC forecasters. Occurring through a wide range of processes, such as vortex contraction, eyewall replacements, or emission of vortex Rossby waves, they are inherently multiscale, transient, and asymmetric. In a recent study, estimates of surface wind field inner-core properties from high-resolution satellite observations were spotted as valuable for the improvement of intensity variations statistical predictability. The present study evaluates how the temporal evolution of the vortex structure, at scales ranging from O(1km) to vortex-wide, further provides insights on the modulation of intensity. The study is based on a set of seven realistic TC simulations with one-kilometer grid spacing. The surface wind field structure is studied through an original set of descriptors which characterize the radial profile, the azimuthal asymmetries, and their spectral distribution. While radial gradients evolve concurrently with intensity, the azimuthal variability of the inner-core shows a stronger connection with shorter-scale intensity modulation. The increase of high wavenumber asymmetries distributed around the ring of maximum winds is shown to precede phases of rapid (re-)intensification by 5-6h, while the concentration of asymmetry in wavenumbers 1 and 2 leads to intensity weakening. A machine learning classification finally highlights that the classification of intensification phases (i.e. intensification or weakening) can be improved by at least 11% (thus reaching ∼75%) when accounting for the evolution of the radial wind gradient and the variance distribution among scales in the ring of maximum wind, relative to the sole use of vortex-averaged parameters.
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从地面风场演变诊断热带气旋强度变化
热带气旋强度波动仍然是热带气旋预报员面临的一个挑战。它们的发生过程范围广泛,如涡旋收缩、眼壁置换或涡旋罗斯比波的发射,它们本质上是多尺度的、瞬态的和不对称的。在最近的一项研究中,高分辨率卫星观测对地表风场内核特性的估计被认为对提高强度变化的统计可预测性很有价值。本研究评估了涡旋结构在0 (1km)到涡宽范围内的时间演变,进一步提供了对强度调制的见解。这项研究是基于一组7个真实的TC模拟,网格间距为1公里。通过一组原始的描述符来研究地面风场结构,这些描述符描述了径向廓线、方位不对称性及其谱分布。径向梯度与强度同步变化,而内核的方位角变化则与较短尺度的强度调制密切相关。分布在最大风环周围的高波数不对称性的增加表明,在快速(再)增强阶段之前5-6h,而波数1和2的不对称性集中导致强度减弱。机器学习分类最后强调,当考虑到径向风梯度的演变和最大风环中尺度间的方差分布时,相对于单独使用涡平均参数,强化阶段(即增强或减弱)的分类可以提高至少11%(从而达到~ 75%)。
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来源期刊
Journal of the Atmospheric Sciences
Journal of the Atmospheric Sciences 地学-气象与大气科学
CiteScore
0.20
自引率
22.60%
发文量
196
审稿时长
3-6 weeks
期刊介绍: The Journal of the Atmospheric Sciences (JAS) publishes basic research related to the physics, dynamics, and chemistry of the atmosphere of Earth and other planets, with emphasis on the quantitative and deductive aspects of the subject. The links provide detailed information for readers, authors, reviewers, and those who wish to submit a manuscript for consideration.
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