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Laboratory simulations of fluid/gas induced micro-earthquakes: application to volcano seismology

机译:流体/气体诱发的微地震的实验室模拟:在火山地震学中的应用

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摘要

Understanding different seismic signals recorded in active volcanic regions allows geoscientists to derive insight into the processes that generate them. A key type is known as Low Frequency or Long Period (LP) event, generally understood to be generated by different fluid types resonating in cracks and faults. The physical mechanisms of these signals have been linked to either resonance/turbulence within fluids, or as a result of fluids “sloshing” due to a mixture of gas and fluid being present in the system. Less well understood, however, is the effect of the fluid type (phase) on the measured signal. To explore this, we designed an experiment in which we generated a precisely controlled liquid to gas transition in a closed system by inducing rapid decompression of fluid-filled fault zones in a sample of basalt from Mt. Etna Volcano, Italy. We find that fluid phase transition is accompanied by a marked frequency shift in the accompanying microseismic dataset that can be compared to volcano seismic data. Moreover, our induced seismic activity occurs at pressure conditions equivalent to hydrostatic depths of 200–750 m. This is consistent with recently measured dominant frequencies of LP events and with numerous models.
机译:了解活动火山区中记录的不同地震信号,使地球科学家可以深入了解产生这些信号的过程。关键类型被称为低频或长时间(LP)事件,通常被理解为是由在裂缝和故障中引起共振的不同流体类型产生的。这些信号的物理机制已经与流体中的共振/湍流相关联,或者由于系统中存在气体和流体的混合物而导致流体“晃动”。然而,对流体类型(相位)对测量信号的影响了解得还不够清楚。为了探索这一点,我们设计了一个实验,在该实验中,通过在Mt玄武岩样品中诱导充满流体的断层带快速减压,从而在密闭系统中产生了精确受控的液-气过渡。埃特纳火山,意大利。我们发现,流体相变在伴随的微地震数据集中伴随着明显的频移,可以与火山地震数据进行比较。此外,我们诱发的地震活动发生在相当于静水深度200–750 m的压力条件下。这与最近测得的LP事件的主导频率以及众多模型是一致的。

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