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Intrinsic Breaking of Internal Solitary Waves in a Deep Lake

机译:深湖内部孤立波的内在破坏

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摘要

Based on simulations with the Dubreil-Jacotin-Long (DJL) equation, the limiting amplitude and the breaking mechanisms of internal solitary waves of depression (ISWs) are predicted for different background stratifications. These theoretical predictions are compared to the amplitude and the stability of the leading internal solitary waves of more than 200 trains of ISWs observed in the centre of a sub-basin of Lake Constance. The comparison of the model results with the field observations indicates that the simulated limiting amplitude of the ISWs provides an excellent prediction of the critical wave height above which ISWs break in the field. Shear instabilities and convective instabilities are each responsible for about half of the predicted wave breaking events. The data suggest the presence of core-like structures within the convectively unstable waves, but fully developed and stable cores were not observed. The lack of stable trapped cores in the field can be explained by the results from dynamic simulations of ISWs with trapped cores which demonstrate that even slight disturbances of the background stratification cause trapped cores to become unstable.
机译:基于Dubreil-Jacotin-Long(DJL)方程的模拟,预测了不同背景分层的凹陷内部孤立波(ISWs)的极限振幅和破裂机理。将这些理论预测与在康斯坦茨湖一个小盆地中心观测到的200多个ISW的领先内部孤立波的振幅和稳定性进行了比较。模型结果与现场观测结果的比较表明,ISW的模拟极限振幅为临界波高提供了极好的预测,在此之上,ISW会在现场破裂。剪切不稳定性和对流不稳定性分别占预计的破波事件的一半。数据表明在对流不稳定波中存在类核结构,但未观察到充分发育和稳定的核。现场被困岩心缺乏稳定的原因可以通过对带有被困岩心的ISW进行动态模拟的结果来解释,该结果表明,即使是轻微的背景分层干扰也会导致被困岩心变得不稳定。

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