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APS -70th Annual Meeting of the APS Division of Fluid Dynamics- Event - Homogeneous internal wave turbulence driven by tidal flows

机译:APS -70TH流体动力学的APS划分年会 - 事件 - 潮流驱动的均匀内波湍流

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摘要

We propose a novel investigation of the stability of strongly stratified planetary fluid layers undergoing periodic tidal distortion in the limit where rotational effects are negligible compared to buoyancy. With the help of a local model focusing on a small fluid area compared to the global layer, we find that periodic tidal distortion drives a parametric subharmonic resonance of internal. This instability saturates into an homogeneous internal wave turbulence pervading the whole fluid interior: the energy is injected in the unstable waves which then feed a succession of triadic resonances also generating small spatial scales. As the timescale separation between the forcing and Brunt-V?is?l? is increased, the temporal spectrum of this turbulence displays a -2 power law reminiscent of the Garrett and Munk spectrum measured in the oceans (Garett & Munk 1979). Moreover, in this state consisting of a superposition of waves in weak non-linear interaction, the mixing efficiency is increased compared to classical, Kolmogorov-like stratified turbulence. This study is of wide interest in geophysical fluid dynamics ranging from oceanic turbulence and tidal heating in icy satellites to dynamo action in partially stratified planetary cores as it could be the case in the Earth.
机译:我们提出了一种新颖的对经历了经历周期性潮汐变形的强烈平坦的行星流体层稳定性的新调查,其与浮力相比可忽略不计的极限。借助于与全球层相比,专注于小流体面积的本地模型,我们发现周期性潮汐失真驱动内部的参数次谐振谐振。这种不稳定性饱和进入均匀的内部波湍流,透过整个流体内部内部:将能量注入不稳定的波浪中,然后在不稳定的波中注入,然后喂养连续的三合一共谐振,也产生小的空间尺度。作为强制和Brunt-V之间的时间尺度分离?是?l?增加,这种湍流的时间谱显示了在海洋中测量的GARRETT和MUNK光谱的-2电力法(Garett&Munk 1979)。此外,在这种状态包括在弱非线性相互作用中的波浪中的叠加,与古典的Kolmogorov样谱湍流相比,混合效率增加。该研究对从海洋湍流和冰冷卫星的海洋湍流和潮汐加热到部分分层行星芯的流动性流体动力学的兴趣范围广泛,因为它可以是地球的情况。

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