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The Importance of the Spatial Variability of Geotechnical Properties for Numerical Models of Downhole Seismic Arrays

机译:井下地震阵列数值模型的岩土性特性空间变异的重要性

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Ground motion models at downhole seismic arrays are often inaccurate at frequencies where the upgoing wave interferes with the downgoing wave. At these frequencies, the interference of the waves creates spectral holes in the theoretical amplifications that are often not observed in the empirical transfer function (ETF). We illustrate this behavior by comparing estimates of the ETF to the plane SH-wave theoretical transfer function (TTF) within a laterally constant medium at two KiK-Net stations. One example site, where the 1D plane SH-wave formulation poorly predicts the ETF, shows that modeling the seismic properties as spatially correlated random fields can dramatically improve the fit of the TTF to the ETF. The improved fit results from the seismic scattering produced by the heterogeneities of the random field, thus diminishing the destructive interference between the upgoing and downgoing waves. The scale of fluctuation, or range parameter, of the random field controls the wavelengths of the scattered waves, and thus the frequencies where the scattering will influence the TTF.
机译:在井下地震阵列处的地面运动模型通常在上行波干扰追随波的频率下不准确。在这些频率下,波的干扰在经验传递函数(ETF)中通常未观察到的理论扩增中产生光谱孔。我们通过将ETF的估计与两个KIK-NET站的横向恒定介质内的平面SH波理论传递函数(TTF)的估计进行比较来说明这种行为。一个示例站点,其中1D平面SH波制剂预测ETF的预测不当,表明将地震性质建模,如空间相关的随机场可以显着改善TTF到ETF的拟合。通过随机场的异质性产生的地震散射产生改进的拟合,从而降低上行波之间的破坏性干扰。随机场的波动或范围参数的比例控制散射波的波长,从而控制散射将影响TTF的频率。

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