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中国物理学会期刊

非水平海底情况下海底地震波时域有限差分数值模拟

CSTR: 32037.14.aps.70.20210634

Seabed seismic wave simulation by finite difference time domain scheme in marine environment with complex seafloor topography

CSTR: 32037.14.aps.70.20210634
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  • 研究复杂海洋环境中海底地震波激发及其传播特性, 对海底物理力学特性研究、资源勘探等具有重要的意义. 目前针对时域海底地震波的研究大都局限于水平分层的情况, 而实际的海底地质条件比较复杂, 基于理想环境假设得出的数值解与实际差别较大. 本文在考虑倾斜、隆起等非水平海底模型的情形下, 采用时间2阶精度、空间10阶精度的交错网格有限差分方法, 同时结合多轴完全匹配层边界条件, 对复杂海洋环境下的海底地震波进行时域数值模拟与分析. 利用计算得到的声场时域波形, 分析了复杂海洋环境下海底地震波的传播特性. 结果表明, 采用空间高阶精度的交错网格有限差分方法, 可改善数值计算中的频散问题; 同时采用多轴完全匹配层替代传统的完全匹配层, 解决了液-固介质中远距离声场数值模拟不稳定的问题. 在含倾斜与隆起构造的复杂海底模型中, 海底基岩隆起改变了Scholte波的传播方向, 更有利于在较浅深度处接收到Scholte波.

     

    The studying of the excitation and propagation characteristics of seabed seismic waves in a complex marine environment is of great significance in investigating seafloor physical and mechanical properties and exploring resources. At present, the research of time-domain seabed seismic waves is mostly restricted in a marine environment with horizontal stratification, but the actual geological conditions of seafloor are relatively complex, and the numerical solutions obtained under ideal assumption are quite different from those in an actual complex environment. To master the propagation characteristics of seabed seismic wave in the environment that is closer to the actual one, a complex and long range model including layers of water, soft mud and bedrocks is designed in the paper, where non-horizontal seafloor topography with a dipping and uplifting structure is considered. The staggered-grid finite difference method with 2nd-order accuracy in time and 10th-order accuracy in space is used to simulate the seabed seismic waves under such a complex marine environment. Meanwhile, multi axial perfectly matched layer is used as an artificial boundary condition to ensure the numerical long-term stability in a liquid-solid medium. Considering the dipping structure, the acoustic signals excited by sources at different positions of the model are compared to determine the favorable style of source excitation for Scholte interface wave receiving. Through the time-domain waveform of the calculated acoustic field, the propagation characteristics of the seabed seismic wave in the complex marine environment are analyzed. The results show that the staggered-grid finite difference method with high-order spatial accuracy can improve the dispersion problem in numerical calculation. The multi-axial perfectly matched layer used to replace the traditional perfectly matched layer can solve the instability problem in the numerical simulation of acoustic field in liquid-solid media for a long range. Through the comparison among the acoustic signal amplitudes excited by sources at different positions, a better performance can be achieved when the source-receiver is placed along the updip direction. In such a case, the acoustic signal is stronger, which is more advantageous to receive and analyze the Scholte interface wave. In the complex seabed model with a dipping and uplifting structure, the uplift of seafloor bedrock changes the propagation direction of Scholte wave, which makes it possible to receive Scholte wave at shallower depth.

     

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