首页> 外文期刊>Journal of geophysical research. Solid earth: JGR >Volcanic tremor masks its seismogenic source: Results from a study of noneruptive tremor recorded at Mount St. Helens, Washington
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Volcanic tremor masks its seismogenic source: Results from a study of noneruptive tremor recorded at Mount St. Helens, Washington

机译:火山震颤掩盖了其震源:华盛顿圣海伦斯山记录的非破坏性震颤研究的结果

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On 2 October 2004, a significant noneruptive tremor episode occurred during the buildup to the 2004–2008 eruption of Mount St. Helens (Washington). This episode was remarkable both because no explosion followed, and because seismicity abruptly stopped following the episode. This sequence motivated us to consider a model for volcanic tremor that does not involve energetic gas release from magma but does involve movement of conduit magma through extension on its way toward the surface. We found that the tremor signal was composed entirely of Love and Rayleigh waves and that its spectral bandwidth increased and decreased with signal amplitude, with broader bandwidth signals containing both higher and lower frequencies. Our modeling results demonstrate that the forces giving rise to this tremor were largely normal to conduit walls, generating hybrid head waves along conduit walls that are coupled to internally reflected waves. Together these form a crucial part of conduit resonance, giving tremor wavefields that are largely a function of waveguide geometry and velocity. We find that the mechanism of tremor generation fundamentally masks the nature of the seismogenic source giving rise to resonance. Thus multiple models can be invoked to explain volcanic tremor, requiring that information from other sources (such as visual observations, geodesy, geology, and gas geochemistry) be used to constrain source models. With concurrent GPS and field data supporting rapid rise of magma, we infer that tremor resulted from drag of nearly solid magma along rough conduit walls as magma was forced toward the surface.
机译:2004年10月2日,在圣海伦斯山(华盛顿)2004-2008年爆发期间,发生了严重的无震性震颤。这一事件之所以引人注目,不仅是因为没有爆炸发生,而且是因为在事件发生后地震活动突然停止。这个顺序促使我们考虑一个火山震颤的模型,该模型不涉及从岩浆释放高能气体,但涉及导管岩浆通过其向地面延伸的运动。我们发现,震颤信号完全由Love和Rayleigh波组成,其频谱带宽随信号幅度的增加而减小,而较宽的带宽信号包含较高和较低的频率。我们的建模结果表明,引起这种震颤的力在很大程度上垂直于导管壁,沿着导管壁生成混合的头波,这些波与内部反射波耦合。这些共同构成了导管共振的关键部分,产生的震颤波场很大程度上取决于波导的几何形状和速度。我们发现,震颤产生的机理从根本上掩盖了引起共振的震源的性质。因此,可以调用多个模型来解释火山震颤,要求使用来自其他来源的信息(例如视觉观测,大地测量,地质和天然气地球化学)来约束源模型。利用同时存在的GPS和现场数据支持岩浆的快速上升,我们推断出震颤是由于岩浆被迫向地表附近沿粗糙的导管壁拖动近固体岩浆所致。

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