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Internal Tidal Modal Ray Refraction and Energy Ducting in Baroclinic Gulf Stream Currents

机译:斜压湾流中的内部潮汐模态射线折射和能量导管

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摘要

Upstream mean semidiurnal internal tidal energy flux has been found in the Gulf Stream in hydrodynamical model simulations of the Atlantic Ocean. A major source of the energy in the simulations is the south edge of Georges Bank, where strong and resonant Gulf of Maine tidal currents are found. An explanation of the flux pattern within the Gulf Stream is that internal wave modal rays can be strongly redirected by baroclinic currents and even trapped (ducted) by current jets that feature strong velocities above the thermocline that are directed counter to the modal wavenumber vector (i.e., when the waves travel upstream). This ducting behavior is analyzed and explained here with ray-based wave propagation studies for internal wave modes with anisotropic wavenumbers, as occur in mesoscale background flow fields. Two primary analysis tools are introduced and then used to analyze the strong refraction and ducting: the generalized Jones equation governing modal properties and ray equations that are suitable for studying waves with anisotropic wavenumbers.
机译:在大西洋的水动力模型模拟中,在墨西哥湾流中发现了上游平均半日潮汐能通量。在模拟中,主要的能量来源是乔治银行的南边缘,在那里发现了强烈而共振的缅因湾潮流。墨西哥湾流内通量模式的一种解释是,斜波电流可以使内部波模态射线强烈地重定向,甚至可以被电流射流束缚(传导),这些射流的特征是在热跃层上方具有很强的速度,而该速度与模态波数矢量的方向相反(即,当波浪向上游传播时)。对于中尺度背景流场中发生的各向异性波数的内部波模,本文将通过基于射线的波传播研究来分析和解释这种管道行为。引入了两个主要的分析工具,然后使用它们来分析强折射和管道传输:控制模态特性的广义Jones方程和适合研究各向异性波数波的射线方程。

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