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Lattice Boltzmann modeling to explain volcano acoustic source

机译:格子玻尔兹曼模型解释火山声源

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摘要

Acoustic pressure is largely used to monitor explosive activity at volcanoes and has become one of the most promising technique to monitor volcanoes also at large scale. However, no clear relation between the fluid dynamics of explosive eruptions and the associated acoustic signals has yet been defined. Linear acoustic has been applied to derive source parameters in the case of strong explosive eruptions which are well-known to be driven by large overpressure of the magmatic fluids. Asymmetric acoustic waveforms are generally considered as the evidence for supersonic explosive dynamics also for small explosive regimes. We have used Lattice-Boltzmann modeling of the eruptive fluid dynamics to analyse the acoustic wavefield produced by different flow regimes. We demonstrate that acoustic waveform well reproduces the flow dynamics of a subsonic fluid injection related to discrete explosive events. Different volumetric flow rate, at low-Mach regimes, can explain both the observed symmetric and asymmetric waveform. Hence, asymmetric waveforms are not necessarily related to the shock/supersonic fluid dynamics of the source. As a result, we highlight an ambiguity in the general interpretation of volcano acoustic signals for the retrieval of key eruption source parameters, necessary for a reliable volcanic hazard assessment.
机译:声压主要用于监测火山爆发性活动,并已成为最有前途的大规模监测火山的技术之一。但是,爆炸性喷发的流体动力学与相关的声音信号之间尚无明确的关系。在众所周知的是由岩浆流体过大的压力驱动的强烈爆炸爆发的情况下,线性声学已被用于推导震源参数。非对称声波形通常被认为是超音速爆炸动力学的证据,也适用于小型爆炸区域。我们已经使用了喷发流体动力学的莱迪思-玻尔兹曼模型来分析由不同流态产生的声波场。我们证明,声波波形很好地再现了与离散爆炸事件有关的亚音速流体注入的流动动力学。在低马赫数条件下,不同的体积流量可以解释观察到的对称和不对称波形。因此,非对称波形不一定与震源的冲击/超音速流体动力学有关。结果,我们在对火山声信号的一般解释中强调了对关键喷发源参数的检索中的模棱两可,这对于可靠的火山危害评估是必需的。

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