首页> 外文期刊>Journal of geophysical research. Solid earth: JGR >Evidences for strong directional resonances in intensely deformed zones of the Pernicana fault, Mount Etna, Italy
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Evidences for strong directional resonances in intensely deformed zones of the Pernicana fault, Mount Etna, Italy

机译:意大利埃特纳火山Pernicana断层强烈变形区域强烈定向共振的证据

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In this paper we investigate ground motion properties in the western part of the Pemicana fault. This is the major fault of Mount Etna and drives the dynamic evolution of the area. In a previous work, Rigano et al. (2008) showed that a significant horizontal polarization characterizes ground motion in fault zones of Mount Etna, both during earthquakes and ambient vibrations. We have performed denser microtremor measurements in the NE rift segment and in intensely deformed zones of the Pernicana fault at Piano Pernicana. This study includes mapping of azimuth-dependent horizontal-to-vertical spectral ratios along and across the fault, frequency—wave number techniques applied to array data to investigate the nature of ambient vibrations, and polarization analysis through the conventional covariance matrix method. Our results indicate that microtremors are likely composed of volcanic tremor. Spectral ratios show strong directional resonances of horizontal components around 1 Hz when measurements enter the most damaged part of the fault zone. Their polarization directions show an abrupt change, by 20° to 40°, at close measurements between the northern and southern part of the fault zone. Recordings of local earthquakes at one site in the fault zone confirm the occurrence of polarization with the same angle found using volcanic tremor. We have also found that the directional effect is not time-dependent, at least at a seasonal scale. This observation and the similar behavior of volcanic tremors and earthquake-induced ground motions suggest that horizontal polarization is the effect of local fault properties. However, the 1-Hz resonant frequency cannot be reproduced using the 1-D vertically varying model inferred from the array data analysis, suggesting a role of lateral variations of the fault zone. Although the actual cause of polarization is unknown, a role of stress-induced anisotropy and microfracture orientation in the near-surface lavas of the Pemicana fault can be hypothesized consistently with the sharp rotation of the polarization angle within the damaged fault zone.
机译:在本文中,我们研究了Pemicana断层西部的地震动特性。这是埃特纳火山的主要断层,并推动了该地区的动态演变。在以前的工作中,Rigano等人。 (2008年)表明,在地震和环境振动过程中,显着的水平极化是埃特纳火山断层带地面运动的特征。我们在NE裂谷段和Piano Pernicana的Pernicana断层强烈变形的区域进行了更密集的微震测量。这项研究包括沿断层和跨断层的方位角相关的水平-垂直频谱比的映射,应用于阵列数据以研究环境振动性质的频率-波数技术以及通过常规协方差矩阵方法进行的极化分析。我们的结果表明,微震可能是由火山震所组成。当测量进入断层带中损坏最严重的部分时,频谱比率显示出水平分量在1 Hz左右的强烈定向共振。在断层区北部和南部的近距离测量中,它们的极化方向显示出从20°到40°的突然变化。断层带一处地方地震的记录证实了极化的发生,其极化与使用火山震波发现的角度相同。我们还发现,方向效应与时间无关,至少在季节尺度上是不依赖时间的。这项观察以及火山震颤和地震引起的地震动的类似行为表明,水平极化是局部断层性质的影响。但是,不能使用从阵列数据分析中推导出的一维垂直变化模型来再现1 Hz谐振频率,这表明了断层带横向变化的作用。尽管极化的实际原因尚不清楚,但可以推测,随着极化角在受损断层带内的急剧旋转,应力引起的各向异性和Pemicana断层近地表熔岩中微裂缝取向的作用。

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