论文标题

拉格朗日连贯性和墨西哥湾的环流额叶涡流的水源

Lagrangian coherence and source of water of Loop Current Frontal Eddies in the Gulf of Mexico

论文作者

Hiron, Luna, Miron, Philippe, Shay, Lynn K., Johns, William E., Chassignet, Eric P., Bozec, Alexandra

论文摘要

已知环电流额叶涡流(LCFE)可以加强并帮助循环电流(LC)涡流脱落。这些涡流还可以通过吸引水和被动示踪剂(例如叶绿素和污染物)进入LC-LCFE前沿来改变墨西哥湾(GOM)的循环。在2010年深水地平线漏油事件中,一部分油不仅在LC-LCFE前沿,而且在LCFE内部夹带,在那里剩下数周。这项研究评估了LCFE使用高分辨率和高分辨率模型的外部(即Lagrangian连贯性)运输水和被动示踪剂的能力。回答以下开放问题:(1)LCFE在表面上和下方的Lagrangian连贯可以保持多长时间? (2)形成LCFE的水源是什么? (3)LCFE的形成可以吸引货架水吗? 结果表明,LCFE由源自LC前沿,LC以北的区域以及架子的水域组成,并有可能驱动颗粒,水性质和养分的跨架子交换。在深度(〜180 m)下,大多数LCFE水都以较小的额叶涡形的形式来自LC前带的外带。一旦形成,LCFE就可以在其内部运输水和被动示踪剂,而无需与外部交换数周:这些涡流在高度计数据集中保持长达25天,在表面和在仿真中的深度(〜180 m)的29天和29天。 LCFE可以保持Lagrangian连贯,直至约560 m的深度。其他分析证实,与石油钻机位置附近的水漏油相关的LCFE。温度 - 含量图显示LCFE由GOM水组成,而不是LC水。因此,LCFE的形成修改了东部GOM中油和其他被动示踪剂的周围循环和运输。

Loop Current Frontal Eddies (LCFEs) are known to intensify and assist in the Loop Current (LC) eddy shedding. These eddies can also modify the circulation in the eastern Gulf of Mexico (GoM) by attracting water and passive tracers such as chlorophyll and pollutants to the LC-LCFE front. During the 2010 Deepwater Horizon oil spill, part of the oil was entrained not only in the LC-LCFE front but also inside an LCFE, where it remained for weeks. This study assesses the ability of the LCFEs to transport water and passive tracers without exchange with the exterior (i.e., Lagrangian coherence) using altimetry and a high-resolution model. The following open questions are answered: (1) How long can the LCFEs remain Lagrangian coherent at and below the surface? (2) What is the source of water for the formation of LCFEs? (3) Can the formation of LCFEs attract shelf water? The results show that LCFEs are composed of waters originating from the outer band of the LC front, the region north of the LC, and the shelf, and potentially drive cross-shelf exchange of particles, water properties, and nutrients. At depth (~180 m), most LCFE water comes from the outer band of the LC front in the form of smaller frontal eddies. Once formed, LCFEs can transport water and passive tracers in their interior without exchange with the exterior for weeks: these eddies remained Lagrangian coherent for up to 25 days in the altimetry dataset and 18 days at the surface and 29 days at depth (~180 m) in the simulation. LCFE can remain Lagrangian coherent up to a depth of ~560 m. Additional analyses confirm that the LCFE involved in the oil spill formed from water near the oil rig location. Temperature-salinity diagrams show that LCFEs are composed of GoM water as opposed to LC water. Thus, LCFE formation modify the surrounding circulation and the transport of oil and other passive tracers in the eastern GoM.

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