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东海对台风云娜的海洋响应
引用本文:许丹,李志远,万占鸿,任宗福,邹仲水,吕修阳,罗世著.东海对台风云娜的海洋响应[J].海洋学报(英文版),2020,39(7):69-78.
作者姓名:许丹  李志远  万占鸿  任宗福  邹仲水  吕修阳  罗世著
作者单位:浙江大学建筑工程学院, 杭州, 310058;浙江水利水电学院水利与环境工程学院, 杭州, 310018;浙江大学海洋学院, 舟山, 316021
基金项目:The National Natural Science Foundation of China under contract Nos 11572283, 11602179 and 41806028; the National Key Research and Development Program of China under contract No. 2017YFC1403300; the Public Science and Technology Research Funds Projects of Ocean under contract No. 20110518-5.
摘    要:Many typhoons pass through the East China Sea(ECS) and the oceanic responses to typhoons on the ECS shelf are very energetic. However, these responses are not well studied because of the complicated background oceanic environment. The sea surface temperature(SST) response to a severe Typhoon Rananim in August 2004 on the ECS shelf was observed by the merged cloud-penetrating microwave and infrared SST data. The observed SST response shows an extensive SST cooling with a maximum cooling of 3°C on the ECS shelf and the SST cooling lags the typhoon by about one day. A numerical model is designed to simulate the oceanic responses to Rananim.The numerical model reasonably simulates the observed SST response and thereby provides a more comprehensive investigation on the oceanic temperature and current responses. The simulation shows that Rananim deepens the ocean mix layer by more than 10 m on the ECS shelf and causes a cooling in the whole mixed layer. Both upwelling and entrainment are responsible for the cooling. Rananim significantly deforms the background Taiwan Warm Current on the ECS shelf and generates strong Ekman current at the surface. After the typhoon disappears, the surface current rotates clockwise and vertically, the current is featured by near inertial oscillation with upward propagating phase.

关 键 词:台风  海面温度  数值模型  混合层  近惯性振荡
收稿时间:2019/3/31 0:00:00

The oceanic responses to Typhoon Rananim on the East China Sea
Xu Dan,Li Zhiyuan,Wan Zhanhong,Ren Zongfu,Zou Zhongshui,Lv Xiuyang,Luo Shizhu.The oceanic responses to Typhoon Rananim on the East China Sea[J].Acta Oceanologica Sinica,2020,39(7):69-78.
Authors:Xu Dan  Li Zhiyuan  Wan Zhanhong  Ren Zongfu  Zou Zhongshui  Lv Xiuyang  Luo Shizhu
Institution:1.College of Civil Engineering and Architecture, Zhejiang University, Hangzhou 310058, China2.Collegeof Hydraulic and Environmental Engineering, Zhejiang University of Water Resources and Electric Power, Hangzhou 310018, China3.Ocean College, Zhejiang University, Zhoushan 316021, China
Abstract:Many typhoons pass through the East China Sea (ECS) and the oceanic responses to typhoons on the ECS shelf are very energetic. However, these responses are not well studied because of the complicated background oceanic environment. The sea surface temperature (SST) response to a severe Typhoon Rananim in August 2004 on the ECS shelf was observed by the merged cloud-penetrating microwave and infrared SST data. The observed SST response shows an extensive SST cooling with a maximum cooling of 3°C on the ECS shelf and the SST cooling lags the typhoon by about one day. A numerical model is designed to simulate the oceanic responses to Rananim. The numerical model reasonably simulates the observed SST response and thereby provides a more comprehensive investigation on the oceanic temperature and current responses. The simulation shows that Rananim deepens the ocean mix layer by more than 10 m on the ECS shelf and causes a cooling in the whole mixed layer. Both upwelling and entrainment are responsible for the cooling. Rananim significantly deforms the background Taiwan Warm Current on the ECS shelf and generates strong Ekman current at the surface. After the typhoon disappears, the surface current rotates clockwise and vertically, the current is featured by near inertial oscillation with upward propagating phase.
Keywords:typhoon  sea surface temperature  numerical model  mix layer  near inertial oscillation
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