首页> 外文期刊>Journal of geophysical research. Solid earth: JGR >Full wavefield decomposition of high-frequency secondary microseisms reveals distinct arrival azimuths for Rayleigh and Love waves
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Full wavefield decomposition of high-frequency secondary microseisms reveals distinct arrival azimuths for Rayleigh and Love waves

机译:高频二次微痉挛的全波场分解揭示了瑞利和爱情波的明显到达方位角

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In the secondary microseism band (0.1-1.0Hz) the theoretical excitation of Rayleigh waves (R-g/LR), through oceanic wave-wave interaction, is well understood. For Love waves (LQ), the excitation mechanism in the secondary microseism band is less clear. We explore high-frequency secondary microseism excitation between 0.35 and 1Hz by analyzing a full year (2013) of records from a three-component seismic array in Pilbara (PSAR), Australia. Our recently developed three-component waveform decomposition algorithm (CLEAN-3C) fully decomposes the beam power in slowness space into multiple point sources. This method allows for a directionally dependent power estimation for all separable wave phases. In this contribution, we compare quantitatively microseismic energy recorded on vertical and transverse components. We find the mean power representation of Rayleigh and Love waves to have differing azimuthal distributions, which are likely a result of their respective generation mechanisms. Rayleigh waves show correlation with convex coastlines, while Love waves correlate with seafloor sedimentary basins. The observations are compared to the WAVEWATCH III ocean model, implemented at the Institut Francais de Recherche pour l'Exploitation de la Mer (IFREMER), which describes the spatial and temporal characteristics of microseismic source excitation. We find Love wave energy to originate from raypaths coinciding with seafloor sedimentary basins where strong Rayleigh wave excitation is predicted by the ocean model. The total power of R-g waves is found to dominate at 0.35-0.6Hz, and the Rayleigh/Love wave power ratio strongly varies with direction and frequency.
机译:在二级微痉挛带(0.1-1.0Hz)通过海洋波浪相互作用的瑞利波(R-G / LR)的理论激发,得到了很好的理解。对于爱情波(LQ),二次微震杆中的激发机制较小。通过分析来自Pilbara(PSAR),澳大利亚的三分地震阵列的全年(2013),探讨了0.35和1Hz的高频二次微动激励。我们最近开发的三组分波形分解算法(CLEAN-3C)完全将弱势空间中的光束功率分解为多个点源。该方法允许所有可分离波相的定向相关功率估计。在这一贡献中,我们比较垂直和横向部件上记录的定量微震能量。我们发现瑞利和爱波的平均功率表示具有不同的方位角分布,这可能是它们各自的产生机制的结果。 Rayleigh Waves显示与凸海岸线相关的相关性,而爱情波与海底沉积盆地相关。将观察结果与Wavewatch III海洋模型进行比较,在Institut Francais de Recherche Pour L'Exploitation de la Mer(IfRemer)中实施,其描述了微震源激发的空间和时间特征。我们发现爱情波能量来源于与海底沉积盆地重合的雷,瑞利波激励被海洋模型预测。 R-G波的总功率被发现在0.35-0.6Hz下占主导地位,瑞利/爱波动力比强烈随着方向和频率而变化。

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