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Multi-station joint inversion of receiver function and surface-wave phase velocity data for exploration of deep sedimentary layers

机译:接收机功能和地表波相速度数据的多站联合反演,用于深部沉积层勘探

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摘要

In this study, we propose a joint inversion method, using genetic algorithms, to estimate an S-wave velocity structure for deep sedimentary layers from receiver functions and surface-wave phase velocity observed at several sites. The method takes layer continuity over a target area into consideration by assuming that each layer has uniform physical properties, especially an S-wave velocity, at all the sites in a target area in order to invert datasets acquired at different sites simultaneously. Numerical experiments with synthetic data indicate that the proposed method is effective in reducing uncertainty in deep structure parameters when modelling only surface-wave dispersion data over a limited period range. We then apply the method to receiver functions derived from earthquake records at one site and two datasets of Rayleigh-wave phase velocity obtained from microtremor array surveys performed in central Tokyo, Japan. The estimated subsurface structure is in good agreement with the results of previous seismic refraction surveys and deep borehole data. We also conclude that the proposed method can provide a more accurate and reliable model than individual inversions of either receiver function data only or surface-wave dispersion data only.
机译:在这项研究中,我们提出了一种联合反演方法,利用遗传算法,根据接收器函数和在几个站点观测到的表面波相速度,估算了深部沉积层的S波速度结构。该方法通过假设每一层在目标区域中的所有位置均具有均匀的物理属性(尤其是S波速度)来考虑目标区域的层连续性,以便同时反转在不同位置获取的数据集。使用合成数据进行的数值实验表明,当仅对有限周期范围内的表面波色散数据建模时,该方法可有效减少深层结构参数的不确定性。然后,我们将该方法应用于从一个地点的地震记录和从在日本东京市中心进行的微震阵列勘测获得的瑞利波相速度的两个数据集的接收器函数。估计的地下结构与以前的地震折射调查结果和深孔数据非常吻合。我们还得出结论,与仅对接收机函数数据或仅对表面波色散数据进行单独反演相比,所提出的方法可以提供更准确和可靠的模型。

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