北京大学学报(自然科学版) ›› 2026, Vol. 62 ›› Issue (3): 549-560.DOI: 10.13209/j.0479-8023.2025.111

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基于数值模拟的地震引发海底压强变化的特征分析

宋林涧, 安超   

  1. 水动力学教育部重点实验室, 上海交通大学船舶海洋与建筑工程学院, 上海 200240
  • 收稿日期:2025-03-25 修回日期:2025-07-24 出版日期:2026-05-20 发布日期:2026-05-20
  • 基金资助:
    国家重点研发计划(2024YFF0506800)和国家自然科学基金(T2122012)资助

Characteristic Analysis of Seafloor Pressure Variations Generated by Earthquakes Based on Numerical Simulation

SONG Linjian, AN Chao   

  1. Key Laboratory of Hydrodynamics (Ministry of Education), School of Ocean and Civil Engineering, Shanghai Jiao Tong University, Shanghai 200240
  • Received:2025-03-25 Revised:2025-07-24 Online:2026-05-20 Published:2026-05-20

摘要:

海洋地震发生后可通过在海底布置压强传感器来记录地震引发的压强变化, 目前针对地震引发的压强变化还没有成熟的应用。本文采用SPECFEM3D程序构建海底地震模型, 模拟地震破裂过程以及由此引发的海底压强变化, 并分析海底压强信号的分布特征。研究结果表明, 在距离震源区较远时, 地震引起的低频压强信号变化p与海底垂直加速度a满足理论关系p=ρha, 距离震源较近时, 则不满足理论关系, 两者的边界与震源深度相关。在固定其他震源参数(如震级和滑动角)的情况下, 震源深度决定海底永久形变的大小, 因此低频压强变化特征对预测地震引发的海啸有指示意义。另外, 在震源区一定范围外可以记录到瑞利波, 并且瑞利波引发的海底压强变化相对于体波存在放大现象; 出现瑞利波放大现象的台站位置也与震源深度相关, 可以为海啸预警提供参考。

关键词: 地震海啸生成过程, 海底永久形变, 海底压强, 瑞利波

Abstract:

When a submarine earthquake occurs, pressure sensors deployed on the seafloor can record the pressure variations induced by the earthquake. Currently there is no quantitative application for utilizing earthquake-induced pressure variations. In this study, SPECFEM3D program was employed to construct a numerical model of a submarine earthquake, and simulate the rupture process and the associated seafloor pressure variations. The spatial distribution characteristics of the seafloor pressure signals were analyzed. The results indicate that at stations far from the source region, the low-frequency pressure p induced by the earthquake and vertical acceleration a of the seafloor satisfies the theoretical relationship p = ρha. In areas near the source, this theoretical relationship no longer holds, and the transition boundary between these two regimes is related to the earthquake source depth. If other source parameters are the same, such as magnitude and rake, the source depth determines the permanent seafloor deformation, which provides valuable insights for assessing tsunami threat potential. Additionally, it is found that Rayleigh waves can be recorded outside a certain range of the source region, and the pressure variations caused by Rayleigh waves exhibit an amplification effect compared with seismic body waves. The locations of stations where Rayleigh wave amplification occurs are also related to earthquake source depth, providing useful insights for tsunami early warning.

Key words: earthquake-induced tsunami generation process, permanent seafloor deformation, seafloor pressure; Rayleigh waves