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首页> 外文期刊>Bulletin of the Seismological Society of America >Beyond the SPAC method: Exploiting the wealth of circular-array methods for microtremor exploration
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Beyond the SPAC method: Exploiting the wealth of circular-array methods for microtremor exploration

机译:超越SPAC方法:利用大量的圆形阵列方法进行微震勘探

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We explore the wealth of alternative methods for inferring phase velocities of Rayleigh waves using vertical-component seismograms of microtremors from a circular array of seismic sensors, which are formulable along the extension of the popularly used spatial autocorrelation (SPAQ method. Four such methods are illustrated here: the centerless circular-array (CCA) method, the Henstridge methods of the zeroth and first orders (the H0 and H1 methods, respectively), and what we tentatively call the fifth (V) method. Different methods of phase velocity estimation have different wavelength ranges of good resolution. Implementation to field data from two sites reveals that the traditional SPAC method and the H0 method are both capable of producing reasonable estimates of Rayleigh-wave phase velocities within a relatively narrow range on the short-wavelength side, whereas the H1 method is valid in a relatively narrow range on the long-wavelength side. The CCA and V methods both remain valid over a very broad range of wavelengths, the upper limit extending as far up as several 10s of times the array radius. Use of a noise-compensation technique can further prolong the maximum resolvable wavelength of the CCA method. We also illustrate the field performance of circle phase methods, which give, without recourse to the conventional frequency-wavenumber analysis, estimates for the principal arrival directions of Rayleigh waves on the basis of circular-array scismograms of microtremors.
机译:我们探索了使用圆形地震传感器阵列中微震的垂直分量地震图来推断瑞利波相速度的多种替代方法,这些方法沿着广泛使用的空间自相关(SPAQ方法)的扩展是可行的。举例说明了四种方法这里是:无心圆阵列(CCA)方法,零阶和一阶Henstridge方法(分别为H0和H1方法)以及我们暂时称为第五(V)方法。对两个站点的现场数据的实施表明,传统的SPAC方法和H0方法均能够在短波长侧的相对窄范围内产生合理的瑞利波相速度估计值,而H1方法在长波长侧的相对窄范围内有效,CCA和V方法都保持有效在很宽的波长范围内,上限可以扩展到阵列半径的数十倍。使用噪声补偿技术可以进一步延长CCA方法的最大可分辨波长。我们还说明了圆形相位方法的现场性能,该方法在不依靠常规频率波数分析的情况下,根据微震的圆形阵列地震图估算了瑞利波的主要到达方向。

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