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Earth modeling and estimation of the local seismic ground motion due to site geology in complex volcanoclastic areas

机译:复杂火山碎屑岩地区地质地质引起的局部地震动的地球建模与估算

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摘要

Volcanic areas often show complex behaviour as far as seismic waves propagation and seismic motion at surface are concerned. In fact, the finite lateral extent of surface layers such as lava flows, blocks, differential welding and/or zeolitization within pyroclastic deposits, introduces in the propagation of seismic waves effects such as the generation of surface waves at the edge, resonance in lateral direction, diffractions and scattering of energy, which tend to modify the amplitude as well as the duration of the ground motion. The irregular topographic surface, typical of volcanic areas, also strongly influences the seismic site response. Despite this heterogeneity, it is unfortunately a common geophysical and engineering practice to evaluate even in volcanic environments the subsurface velocity field with monodimensional investigation method (i.e. geognostic soundings, refraction survey, down-hole, etc.) prior to the seismic site response computation which in a such cases is obviously also made with 1D algorithms. This approach often leads to highly inaccurate results. In this paper we use a different approach, i.e. a fully 2D P-wave Çturning rayÈ tomographic survey followed by 2D seismic site response modeling. We report here the results of this approach in three sites located at short distance from Mt. Vesuvius and Campi Flegrei and characterized by overburdens constituted by volcanoclastic deposits with large lateral and vertical variations of their elastic properties. Comparison between 1D and 2D Dynamic Amplification Factor shows in all reported cases entirely different results, both in terms of peak period and spectral contents, as expected from the clear bidimensionality of the geological section. Therefore, these studies suggest evaluating carefully the subsoil geological structures in areas characterized by possible large lateral and vertical variations of the elastic properties in order to reach correct seismic site response curves to be used for engineering projects.
机译:就地表的地震波传播和地震运动而言,火山区通常表现出复杂的行为。实际上,表面层的有限横向范围(例如熔岩流,块体,热碎屑沉积物中的差异焊接和/或沸石化)在地震波的传播中引入了影响,例如在边缘产生表面波,在横向方向产生共振,能量的衍射和散射,它们往往会改变振幅以及地面运动的持续时间。火山区特有的不规则地形表面也极大地影响了地震现场的响应。尽管存在这种异质性,但不幸的是,在地震现场响应计算之前,即使是在火山环境中,也要使用一维调查方法(即地质学测深,折射调查,井下等)来评估地下速度场,这是普遍的地球物理和工程实践。在这种情况下,显然也可以使用一维算法。这种方法通常会导致非常不准确的结果。在本文中,我们使用了不同的方法,即完全2D P波切向射线X线断层扫描和随后的2D地震现场响应建模。我们在这里报告了这种方法在距山很近的三个地点的结果。维苏威火山和Campi Flegrei的特征是由火山碎屑沉积物构成的上覆岩层,其弹性性质在横向和垂直方向上都有很大的变化。一维和二维动态放大系数之间的比较显示,在所有报告的情况下,就峰值周期和频谱含量而言,结果都是完全不同的,这是地质剖面清晰的二维所期望的。因此,这些研究建议仔细评估以弹性特性可能在横向和垂直上有较大变化为特征的区域的地下土壤地质结构,以便获得正确的地震现场响应曲线,以用于工程项目。

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