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Precise relative earthquake depth determination using array processing techniques

机译:使用阵列处理技术精确相对地震深度测定

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Precise determination of hypocentral depth remains one of the most relevant problems in earthquake seismology. It is well known that using depth phases allows for significant improvement in event depth determination; however, routinely and systematically picking such phases, for teleseismic or regional arrivals, is problematic due to poor signal-to-noise ratios around the pP and sP phases. To overcome this limitation, we have taken advantage of the additional information carried by seismic arrays. We use velocity spectral analysis to precisely measure pP-P times. The individual estimates obtained at different subarrays, for all pairs of earthquakes, are combined using a double-difference algorithm, in order to precisely map seismicity in regions where it is tightly clustered. We illustrate this method by relocating intermediate-depth earthquakes in the Nazca subducting plate, beneath northern Chile, where we confirm the existence of a narrowly spaced double seismic zone, previously imaged using a local dedicated deployment. As a second example we relocate the aftershock sequence of the 2014 M-w 7.9 intermediate depth, Rat Islands earthquake, and provide evidence of a subvertical fault plane for the main shock. Finally, we show that the resulting relative depth errors are typically smaller than 2km.
机译:精确测定斜视深度仍然是地震地震学中最相关的问题之一。众所周知,使用深度阶段允许在事件深度测定中进行显着改善;然而,由于PP和SP阶段周围的信噪比差,因此常规和系统地挑选这些阶段是有问题的。为了克服这种限制,我们利用了地震阵列携带的附加信息。我们使用速度谱分析来精确测量PP-P次。使用双差分算法将在不同子阵列的不同子阵列获得的个体估计,以便精确地将其紧密聚集的区域映射地震性。我们通过在智利北部地下迁移中间深度地震来说明这种方法,在北智利下方,我们确认了使用本地专用部署的先前成像的狭窄间隔的双地震区的存在。作为第二个例子,我们重新定位2014 M-W 7.9中间深度,大鼠岛地震的余震序列,并提供了主休克的混合断层平面的证据。最后,我们表明所得到的相对深度误差通常小于2km。

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