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Dynamical controls on the longevity of a non-linear vortex : The case of the Lofoten Basin Eddy

机译:非线性涡旋寿命的动力学控制:以罗弗敦盆地涡为例

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摘要

The Lofoten Basin is the largest oceanic reservoir of heat in the Nordic Seas, and the site of important heat fluxes to the atmosphere. An intense permanent anticyclone in the basin impacts the regional hydrography, energetics, and ecosystem. Repeated sampling of this Lofoten Basin Eddy from dedicated cruises, autonomous profiling gliders, and acoustically-tracked subsurface floats enables the documentation of its dynamics and energetics over the course of 15 months. The eddy core, in nearly solid-body rotation, exhibits an unusually low vertical vorticity close to the local inertial frequency and important strain rates at the periphery. Subsurface floats as deep as 800 m are trapped within the core for their entire deployment duration (up to 15 months). The potential vorticity is reduced in the core by two orders of magnitude relative to the surroundings, creating a barrier. In the winter, this barrier weakens and lateral exchanges and heat flux between the eddy and the surroundings increase, apparently the result of dynamical instabilities and a possible eddy merger. Based on a simple energy budget, the dissipation timescale for the eddy energy is three years, during which wintertime convection seasonally modulates potential and kinetic energy.
机译:罗弗敦海盆是北欧海中最大的海洋热库,也是向大气层传热的重要地点。流域中强烈的永久性反气旋影响着区域水文学,能量学和生态系统。从专用巡洋舰,自主轮廓滑翔机和声学跟踪的地下浮体中对该罗弗敦海盆涡流进行反复采样,可以在15个月的时间内记录其动力和能量。涡旋核心在几乎是固体的旋转中,表现出非常低的垂直涡度,接近于局部惯性频率和周边的重要应变率。在整个部署过程中(长达15个月),深达800µm的地下浮子被困在岩心中。相对于周围环境,核心中的潜在涡度降低了两个数量级,从而形成了障碍。在冬季,这种屏障减弱了,涡流与周围环境之间的横向交换和热通量增加了,这显然是动力不稳定和可能的涡流合并的结果。基于简单的能量预算,涡流能量的耗散时间尺度为三年,在此期间冬季对流季节性地调节势能和动能。

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