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Tsunami-tide interactions: A Cook Inlet case study

机译:海啸与潮汐的相互作用:库克湾案例研究

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First, we investigated some aspects of tsunami-tide interactions based on idealized numerical experiments. Theoretically, by changing total ocean depth, tidal elevations influence the speed and magnitude of tsunami waves in shallow regions with dominating tidal signals. We tested this assumption by employing a simple 1-D model that describes propagation of tidal waves in a channel with gradually increasing depth and the interaction of the tidal waves with tsunamis generated at the channel's open boundary. Important conclusions from these studies are that computed elevations by simulating the tsunami and the tide together differ significantly from linear superposing of the sea surface heights obtained when simulating the tide and the tsunami separately, and that maximum tsunami-tide interaction depends on tidal amplitude and phase. The major cause of this tsunami-tide interaction is tidally induced ocean depth that changes the conditions of tsunami propagation, amplification, and dissipation. Interactions occur by means of momentum advection, bottom friction, and variable water flux due to changing total depth and velocity. We found the major cause of tsunami-tide interactions to be changing depth. Secondly, we investigate tsunami-tide interactions in Cook Inlet, Alaska, employing a high-resolution 2-D numerical model. Cook Inlet has high tides and a history of strong tsunamis and is a potential candidate for tsunami impacts in the future. In agreement with previous findings, we find that the impacts of tsunamis depend on basin bathymetries and coastline configurations, and they can, in particular, depend on tsunami-tide interactions. In regions with strong tides and tsunamis, these interactions can result in either intensification or damping of cumulative tsunami and tide impacts, depending on mean basin depth, which is regulated by tides. Thus, it is not possible to predict the effect of tsunami-tide interaction in regions with strong tides without making preliminary investigations of the area. One approach to reduce uncertainties in tsunami impact in regions with high tides is to simulate tsunamis together with tidal forcing. (C) 2009 Elsevier Ltd. All rights reserved.
机译:首先,我们基于理想化的数值实验研究了海啸与潮汐相互作用的某些方面。从理论上讲,通过改变总海洋深度,潮汐高程会以主导的潮汐信号影响浅海地区海啸的速度和大小。我们通过使用一个简单的一维模型测试了这个假设,该模型描述了随着深度逐渐增加的潮汐在通道中的传播以及潮汐与通道的开放边界处发生的海啸的相互作用。这些研究的重要结论是,通过模拟海啸和潮汐共同计算出的海拔高度与分别模拟潮汐和海啸时获得的海平面高度的线性叠加显着不同,并且最大的海啸与潮汐之间的相互作用取决于潮汐振幅和相位。海啸与潮汐相互作用的主要原因是潮汐诱发的海洋深度,它改变了海啸传播,放大和消散的条件。由于总深度和速度的变化,动量对流,底部摩擦和可变的水通量会产生相互作用。我们发现海啸与潮汐相互作用的主要原因是深度的变化。其次,我们采用高分辨率的二维数值模型调查了阿拉斯加库克湾的海啸与潮汐相互作用。库克湾(Cook Inlet)潮汐高,发生海啸的历史悠久,将来可能成为海啸影响的潜在候选人。与先前的发现一致,我们发现海啸的影响取决于盆地的等距线和海岸线构造,它们尤其可能取决于海啸与潮汐的相互作用。在潮汐和海啸强烈的地区,这些相互作用可能导致累积海啸和潮汐影响加剧或减弱,这取决于受潮汐调节的平均盆地深度。因此,如果不对该地区进行初步调查,就无法预测海啸与潮汐之间相互作用的影响。减少高潮地区海啸影响的不确定性的一种方法是模拟海啸和潮汐强迫。 (C)2009 Elsevier Ltd.保留所有权利。

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