Observed interaction between oceanic internal waves and mesoscale eddies

Claude Frankignoul
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引用次数: 21

Abstract

Measurements from arrays of moored current meters taken during the Mid-Ocean Dynamics Experiment (MODE) are analyzed, using short-term spectral analysis. A weak variability in space and time is detected in the internal wave continuum, as well as some horizontal anisotropy. It is suggested that the observed anisotropy is induced by the weak interaction between internal waves and mesoscale motions in a manner consistent with the weak interaction theory of >ü (Hamburger Geophysikalische Einzelschriften23, 1974). The interaction appears to be essentially local in space and time. It is shown that the internal wave continuum contributes positively to the horizontal diffusion of mean flow momentum, and is characterized by a relaxation time of the order of 1 to 4 days in the vicinity of the main thermocline. From observed correspondences between the fluctuations in total internal wave energy and square mean vertical shear, an estimate of the vertical eddy viscosity vν induced by internal waves is attempted, suggesting a large value for vν in the mid-ocean thermocline, maybe as high as 103 cm2 s−1.

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观测到海洋内波与中尺度涡旋的相互作用
利用短期频谱分析,分析了在中海洋动力学实验(MODE)期间所采集的系泊流计阵列的测量结果。在内波连续体中检测到微弱的空间和时间变异性,以及一些水平的各向异性。认为观测到的各向异性是由内波和中尺度运动之间的弱相互作用引起的,与>ü的弱相互作用理论一致(Hamburger Geophysikalische einzelschriften23,1974)。这种相互作用在空间和时间上似乎基本上是局部的。结果表明,内波连续体对平均流动动量的水平扩散有积极作用,并且在主温跃层附近有1 ~ 4天的松弛时间。根据观测到的内波总能量波动与平均垂直切变平方之间的对应关系,试图估计由内波引起的垂直涡旋粘度vν,表明在海洋中温跃层中vν的值很大,可能高达103 cm2 s−1。
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