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Microscopic Evolution of Laboratory Volcanic Hybrid Earthquakes

机译:实验室火山混合地震的微观演化

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摘要

Characterizing the interaction between fluids and microscopic defects is one of the long-standing challenges in understanding a broad range of cracking processes, in part because they are so difficult to study experimentally. We address this issue by reexamining records of emitted acoustic phonon events during rock mechanics experiments under wet and dry conditions. The frequency spectrum of these events provides direct information regarding the state of the system. Such events are typically subdivided into high frequency (HF) and low frequency (LF) events, whereas intermediate “Hybrid” events, have HF onsets followed by LF ringing. At a larger scale in volcanic terranes, hybrid events are used empirically to predict eruptions, but their ambiguous physical origin limits their diagnostic use. By studying acoustic phonon emissions from individual microcracking events we show that the onset of a secondary instability–related to the transition from HF to LF–occurs during the fast equilibration phase of the system, leading to sudden increase of fluid pressure in the process zone. As a result of this squeezing process, a secondary instability akin to the LF event occurs. This mechanism is consistent with observations of hybrid earthquakes.
机译:表征流体和微观缺陷之间的相互作用是理解广泛裂化过程的长期挑战之一,部分原因是它们很难通过实验研究。我们通过重新检查在潮湿和干燥条件下进行的岩石力学实验中发出的声子声子事件的记录来解决此问题。这些事件的频谱提供了有关系统状态的直接信息。通常将此类事件细分为高频(HF)事件和低频(LF)事件,而中间的“混合”事件具有HF发作,随后是LF振铃。在火山喷发中,混合事件在经验上可以用来预测喷发,但其物理来源不明确限制了其诊断用途。通过研究单个微裂纹事件产生的声子声子发射,我们发现,在系统的快速平衡阶段,发生了与从HF到LF过渡有关的次要不稳定性的发生,从而导致过程区域中的流体压力突然增加。由于这种挤压过程,发生了类似于LF事件的二次不稳定性。该机制与混合地震的观察结果一致。

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