TGFS 北太平洋西部台风路径预报性能评估及积云参数化敏感性测试

IF 2.5 4区 地球科学 Q3 ENVIRONMENTAL SCIENCES
Atmosphere Pub Date : 2024-09-05 DOI:10.3390/atmos15091075
Yu-Han Chen, Sheng-Hao Sha, Chang-Hung Lin, Ling-Feng Hsiao, Ching-Yuang Huang, Hung-Chi Kuo
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引用次数: 0

摘要

本研究采用新一代台湾全球预报系统(TGFS),重点研究其在预报2022-2023年北太平洋西部台风路径方面的表现。与中央气象局的全球预报系统相比,台湾新一代全球预报系统在台风路径预报方面表现更佳。在第120小时,TGFS预报的台风路径误差较大,其中大部分是在台风发展初期,台风强度较轻时出现的。这些路径主要偏向东北方向,偶尔偏向西南方向,推测是由于未能捕捉到同步环境特征,导致环境转向引导不足。用新的 Tiedtke(NTDK)方案取代原来的新简化荒川-舒伯特(NSAS)方案,改变同步环境场,不仅可以修正 2023 年台风季发生的台风卡农的路径,还可以修正台风季之后 2023 年 10 月西太平洋非典型环流特征下发生的台风布拉万的路径。涡度预算诊断主要分析对照(CTRL)和 NTDK 试验之间台风路径出现分歧的时期。NTDK 试验中不同的同步环境场影响了水平平流项中的 wavenumber-1 涡度分布,从而提高了台风平移速度预报的准确性。这项初步研究表明,利用 NTDK 方案可以提高 TGFS 对台风路径的预报能力。要更全面地了解 NTDK 对台风路径的影响,还需要对更多台风进行进一步研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Performance Evaluation of TGFS Typhoon Track Forecasts over the Western North Pacific with Sensitivity Tests on Cumulus Parameterization
This study employed the new generation Taiwan global forecast system (TGFS) to focus on its performance in forecasting the tracks of western North Pacific typhoons during 2022–2023. TGFS demonstrated better forecasting performance in typhoon track compared to central weather administration (CWA) GFS. For forecasts with large track errors by TGFS at the 120th h, it was found that most of them originated during the early stages of typhoon development when the typhoons were of mild intensity. The tracks deviated predominantly towards the northeast and occasionally towards the southwest, which were speculated to be due to inadequate environmental steering guidance resulting from the failure to capture synoptic environmental features. The tracks could be corrected by replacing the original new simplified Arakawa–Schubert (NSAS) scheme with the new Tiedtke (NTDK) scheme to change the synoptic environmental field, not only for Typhoon Khanun, which occurred in the typhoon season of 2023, but also for Typhoon Bolaven, which occurred after the typhoon season, in October 2023, under atypical circulation characteristics over the western Pacific. The diagnosis of vorticity budget primarily analyzed the periods where divergence in typhoon tracks between control (CTRL) and NTDK experiments occurred. The different synoptic environmental fields in the NTDK experiment affected the wavenumber-1 vorticity distribution in the horizontal advection term, thereby enhancing the accuracy of typhoon translation velocity forecasts. This preliminary study suggests that utilizing the NTDK scheme might improve the forecasting skill of TGFS for typhoon tracks. To gain a more comprehensive understanding of the impact of NTDK on typhoon tracks, further examination for more typhoons is still in need.
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来源期刊
Atmosphere
Atmosphere METEOROLOGY & ATMOSPHERIC SCIENCES-
CiteScore
4.60
自引率
13.80%
发文量
1769
审稿时长
1 months
期刊介绍: Atmosphere (ISSN 2073-4433) is an international and cross-disciplinary scholarly journal of scientific studies related to the atmosphere. It publishes reviews, regular research papers, communications and short notes, and there is no restriction on the length of the papers. Our aim is to encourage scientists to publish their experimental and theoretical research in as much detail as possible. Full experimental and/or methodical details must be provided for research articles.
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