Biophysical responses to tropical cyclone Hudhud over the Bay of Bengal

IF 1.7 3区 地球科学 Q4 METEOROLOGY & ATMOSPHERIC SCIENCES Journal of Operational Oceanography Pub Date : 2019-11-04 DOI:10.1080/1755876X.2019.1684135
K. Maneesha, D. Prasad, K. Patnaik
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引用次数: 7

Abstract

ABSTRACT Cyclone Hudhud originated in the Andaman Sea on 6 October 2014. Later, it intensified into a cyclonic storm on 8 October and eventually made landfall at Visakhapatnam on 12 October as a very severe cyclonic storm. It was intensified off of Visakhapatnam by high stratified waters with a thick barrier layer that held significant heat content. In this study, we analysed the data along the cyclone track using a combination of satellite, in-situ Argo and Bio-Argo data to assess the upper oceanic changes along the Hudhud track. Notable changes were detected in the upper ocean due to its extreme intensification and prior passage through cold-core eddies. A high translation speed and persistent stratification dominated the effects caused by the cold-core eddies on the intensification of the cyclone and the same was attributed to the upwelled subsurface chlorophyll maxima. The biophysical changes in the top 150 m layer derived from Argo floats were in good agreement with the satellite and model data. Further, it was observed that the increase in lightning flash rates also influenced surface productivity during the cyclone. Subsequent to the passage of the cyclone, the ocean took two weeks to achieve its original state.
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孟加拉湾热带气旋哈德哈德的生物物理响应
气旋哈德哈德于2014年10月6日在安达曼海形成。其后,它于10月8日增强为气旋风暴,并最终于10月12日在维沙卡帕特南登陆,强度为极强的气旋风暴。它在远离维沙卡帕特南的高分层水的影响下增强,其中有一层厚厚的阻隔层,含有大量的热量。在本研究中,我们使用卫星、原位Argo和Bio-Argo数据相结合的方法分析了气旋路径沿线的数据,以评估Hudhud路径沿线的上层海洋变化。由于其极端增强和事先通过冷核涡流,在上层海洋中发现了显著的变化。冷核涡旋对气旋增强的影响以高平移速度和持续分层为主,而上升流的次表层叶绿素极大值对气旋增强的影响同样重要。Argo浮标反演的150 m上层生物物理变化与卫星和模式数据吻合较好。此外,还观察到,在气旋期间,闪电率的增加也影响了地表生产力。气旋通过后,海洋花了两周时间才恢复原状。
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来源期刊
CiteScore
7.50
自引率
9.70%
发文量
8
审稿时长
>12 weeks
期刊介绍: The Journal of Operational Oceanography will publish papers which examine the role of oceanography in contributing to the fields of: Numerical Weather Prediction; Development of Climatologies; Implications of Ocean Change; Ocean and Climate Forecasting; Ocean Observing Technologies; Eutrophication; Climate Assessment; Shoreline Change; Marine and Sea State Prediction; Model Development and Validation; Coastal Flooding; Reducing Public Health Risks; Short-Range Ocean Forecasting; Forces on Structures; Ocean Policy; Protecting and Restoring Ecosystem health; Controlling and Mitigating Natural Hazards; Safe and Efficient Marine Operations
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