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深海-陆地相互作用如何控制次生微震洛夫波的产生。

How deep ocean-land coupling controls the generation of secondary microseism Love waves.

机构信息

Geophysics Section, Dublin Institute for Advanced Studies, Dublin 2, Ireland.

iCRAG centre, University College Dublin, Dublin 4, Ireland.

出版信息

Nat Commun. 2021 Apr 20;12(1):2332. doi: 10.1038/s41467-021-22591-5.

Abstract

Wind driven ocean wave-wave interactions produce continuous Earth vibrations at the seafloor called secondary microseisms. While the origin of associated Rayleigh waves is well understood, there is currently no quantified explanation for the existence of Love waves in the most energetic region of the microseism spectrum (3-10 s). Here, using terrestrial seismic arrays and 3D synthetic acoustic-elastic simulations combined with ocean wave hindcast data, we demonstrate that, observed from land, our general understanding of Rayleigh and Love wave microseism sources is significantly impacted by 3D propagation path effects. We show that while Rayleigh to Love wave conversions occur along the microseism path, Love waves predominantly originate from steep subsurface geological interfaces and bathymetry, directly below the ocean source that couples to the solid Earth. We conclude that, in contrast to Rayleigh waves, microseism Love waves observed on land do not directly relate to the ocean wave climate but are significantly modulated by continental margin morphologies, with a first order effect from sedimentary basins. Hence, they yield rich spatio-temporal information about ocean-land coupling in deep water.

摘要

风生海洋波-波相互作用在海底产生连续的地球振动,称为次生微震。虽然相关瑞利波的起源已被很好地理解,但目前对于微震谱中最具能量区域(3-10 秒)内存在洛夫波还没有定量解释。在这里,我们使用陆地地震台阵和 3D 合成声学-弹性模拟,并结合海洋波回溯数据,证明从陆地观测时,我们对瑞利和洛夫波微震源的一般理解受到 3D 传播路径效应的显著影响。我们表明,虽然在微震路径上会发生瑞利到洛夫波的转换,但洛夫波主要源自陡峭的地下地质界面和海底地形,就在耦合到固体地球的海洋源下方。我们的结论是,与瑞利波不同,陆地上观测到的微震洛夫波与海洋波气候没有直接关系,而是受到大陆边缘形态的显著调制,沉积盆地具有一阶效应。因此,它们提供了关于深水中海-陆耦合的丰富时空信息。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6434/8058104/d837e5060a81/41467_2021_22591_Fig1_HTML.jpg

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