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首页> 外文期刊>Journal of Volcanology and Geothermal Research >Long-period seismicity at Shishaldin volcano (Alaska) in 2003-2004: Indications of an upward migration of the source before a minor eruption
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Long-period seismicity at Shishaldin volcano (Alaska) in 2003-2004: Indications of an upward migration of the source before a minor eruption

机译:Shishaldin火山(阿拉斯加)2003-2004年的长期地震活动:表明在小喷发之前震源向上迁移

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We have analyzed the long-period (LP) seismic activity at Shishaldin volcano (Aleutians Islands, Alaska) in the period October 2003-July 2004, during which a minor eruption took place in May 2004, with ash and steam emissions, thermal anomalies, volcanic tremor and small explosions. We have focused the attention on the time evolution of LP rate, size, spectra and polarization dip angle along the dataset We find an evolution toward more shallow dip angles in the polarization of the waveforms during the sequence. The dip angle is a manifestation of the source location. Because the LP seismic sources are presumed to reflect the aggregation of gas slug or pockets within the melt, we use the polarization dip at the LP onset as a proxy for the nucleation depth of the seismic events within the conduit We refer to this parameter as the nucleation dip and the position along the conduit of the gas aggregation as nucleation depth. The nucleation dip changes throughout the dataset It shows a sharp decrease between the end of December 2003 and the end of January 2004, followed by a gradual increase until the onset of the eruption. At the same time, a general increase of the LP rate occurs. We have associated the dip evolution with a sinking and a subsequent decrease of the nucleation depth, which would quickly migrate up to about 8 km below the crater rim, followed by a slow depth decrease which culminates in the eruption. The change in the nucleation depth reflects either a pressure variation within the plumbing system which would affect the confining pressure experienced by the gas aggregations. We have imputed such a pressure change to the intrusion of batches of magma from a deeper magma chamber (<10 km) toward a shallower one (>5 km). For a cylindric conduit with rigid walls, this leads to a volume of the injected new magma of 10~5-10~7 m~3, compatible with estimates in other areas, suggesting that the LP process can be considered a good proxy of the thermodynamical conditions of the shallow plumbing system.
机译:我们分析了Shishaldin火山(阿拉斯加阿留申群岛)的长期地震活动(2003年10月至2004年7月),在2004年5月发生了一次小喷发,火山灰和蒸汽排放,热异常,火山震颤和小爆炸。我们将注意力集中在沿数据集的LP速率,大小,频谱和极化倾角的时间演化上。我们发现,在序列期间,波形极化向更浅倾角的演化。倾角是源位置的体现。由于假定LP地震源反映了熔体中气团或气穴的聚集,因此我们使用LP起始处的极化倾角作为管道内地震事件成核深度的代用品。我们将此参数称为成核倾角和气体聚集沿管道的位置作为成核深度。整个数据集中的形核倾角变化在2003年12月底至2004年1月底之间急剧下降,然后逐渐增加,直到爆发。同时,LP率普遍增加。我们将倾角的演变与下沉和随后成核深度的减小相关联,成核深度的减小将迅速迁移至火山口边缘以下约8 km,随后深度缓慢减小,最终导致喷发。成核深度的变化反映了管道系统内的压力变化,这会影响气体聚集体所承受的围压。我们认为这种压力变化会导致一批岩浆从较深的岩浆室(<10 km)向较浅的岩浆室(> 5 km)侵入。对于具有刚性壁的圆筒形导管,这导致注入的新岩浆体积为10〜5-10〜7 m〜3,与其他区域的估计值相符,这表明LP过程可以被视为LP过程的良好替代。浅水暖系统的热力学条件。

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