冲积区对2024年诺托半岛地震引发的海啸的反应

IF 4.1 2区 地球科学 Q1 GEOSCIENCES, MULTIDISCIPLINARY Journal of Geophysical Research: Earth Surface Pub Date : 2025-01-10 DOI:10.1029/2024JF007997
Yoshinao Matsuba, Yoshimitsu Tajima, Takenori Shimozono, Yusuke Yamanaka
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引用次数: 0

摘要

2024年1月1日,日本诺户半岛发生破坏性地震,引发日本海海啸。在地震发生前,在距离震中150公里的砾石沙滩上安装了3D激光雷达,成功地测量了海啸期间近岸的波浪和地形变化。本研究的重点是分析一个新的数据集,以阐明海啸引起的冲积带过程,特别关注海啸和风浪对高波上升和形态变化的综合影响。观测资料显示,当最大的海啸到达海滩时,平均海平面上升了1米。除海啸外,达到2米高度的风浪引起的浪高约为1米,冲刷高度超过2米。考虑观测到的前滩坡度变化的经验公式较好地再现了观测到的风浪冲升高度,表明海啸水位的增加通过增加凹剖面海滩上的前滩坡度间接放大了风浪冲升。高风浪冲刷对砾石滩有较大的侵蚀作用,海啸发生时,上滩面高程降低0.5 m。我们发现,受风浪影响的海滩表面面积随着海啸水位的变化而扩大。
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Swash Zone Response to the Tsunami Triggered by the 2024 Noto Peninsula Earthquake

On January 1, 2024, a destructive earthquake struck the Noto Peninsula in Japan, triggering a tsunami in the Sea of Japan. A 3D lidar, which was installed on a gravel beach 150 km from the epicenter before the earthquake, successfully measured nearshore waves and topographic changes during the tsunami event. This study is focused on the analysis of a novel data set to elucidate the swash zone processes caused by the tsunami, with a particular focus on the combined effects of the tsunami and wind waves on high wave runup and morphological changes. The observation data show that the mean sea level was elevated by 1 m when the largest tsunami arrived at the beach. In addition to the tsunami, wind waves reaching a height of 2 m induced wave setup of approximately 1 m and swash exceeding a height of 2 m. The empirical formulas considering the observed change in foreshore slope reasonably reproduced the observed runup heights, suggesting that an increase in the tsunami water level indirectly amplified wind wave runup by increasing the foreshore slope on the concave profile beach. High wind wave runup largely eroded the gravel beach, with the elevation of the upper beach face decreasing by 0.5 m during the tsunami event. We found that the area on the beach face affected by wind waves expanded in response to changes in the tsunami water level.

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来源期刊
Journal of Geophysical Research: Earth Surface
Journal of Geophysical Research: Earth Surface Earth and Planetary Sciences-Earth-Surface Processes
CiteScore
6.30
自引率
10.30%
发文量
162
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