西北太平洋上层海洋对连续多个台风的响应Upper Ocean Response to Sequential Typhoons in Northwest Pacific Ocean
王同宇,张书文,陈法锦,蒋晨,马永贵
摘要(Abstract):
【目的】研究Merantia、Malaks、Megi、Chaba4个连续台风引起上层海洋的响应。【方法】基于遥感和再分析数据,分析台风前海洋环境、台风做功(W)、强迫时间(tf)、降水等要素分布特征,探讨上层海洋稳定度、上升流、湍流混合动力机制如何影响中尺度涡区域的海表温度(SST)、浮游植物繁殖程度,引入动力学参数S判断海洋内部上升流和混合重要性。【结果和结论】冷涡(CE)区域海洋表层降温(SSC)(3.5℃)和叶绿素a(Chl-a)质量浓度(0.5mg/m3)对于台风响应比暖涡(AE)区更为剧烈,与其内部热力学结构有关,出现在Megi过境CE区,主要原因是海洋本身CE特征、强上升流(EPV)=2.5×10-4 m/s,S<1,台风向海洋输入巨大的能量(W>80 kJ)引起剧烈的混合夹卷、强降雨,导致海水迅速重新层化、逐渐加强的非线性CE有更强的封闭性,这些机制的共同作用将底层(营养盐跃层100m以下)富含营养盐的冷水输送到上层;Malaks过境CE(124.9°E,22.3°N)缺乏强上升流(EPV=5×10-5 m/s),以湍流混合为主(S>1);Merantia使CE区域表现下沉流(EPV<0),SSC主要是湍流混合的作用(W>25kJ),Chl-a浓度增长到0.27mg/m3。AE热力学结构比较稳定,连续台风导致SSC<2℃,Chl-a增加仅200%,Merantia、Malaks过境AE(125.1°E,20.6°N)分别以强上升流(S<1)和湍流混合(S>1)为主,混合层厚度约80 m,同时AE周围无强障碍带,易与周围水体交换,Chl-a浓度微弱增加。
关键词(KeyWords): 连续台风;中尺度涡;海洋响应;上升流;混合;西太平洋
基金项目(Foundation): 国家重点研发计划重点专项(2016YFC14001403);; 国家自然科学基金面上项目(41676008和41876005);; 国际合作项目(GASI-IPOVI-04);; 广东省自然科学基金(2016A030312004)
作者(Author): 王同宇,张书文,陈法锦,蒋晨,马永贵
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