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The implications of gas slug ascent in a stratified magma for acoustic and ground deformation source mechanisms in Strombolian eruptions

机译:层状岩浆中瓦斯弹上升对Strombolian爆发中的声波和地面变形源机制的影响

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摘要

The interpretation of geophysical measurements at active volcanoes is vital for hazard assessment and for understanding fundamental processes such as magma degassing. For Strombolian activity, interpretations are currently underpinned by first-order fluid dynamic models which give relatively straightforward relationships between geophysical signals and gas and magma flow. However, recent petrological and high-speed video evidence has indicated the importance of rheological stratification within the conduit and, here, we show that under these conditions, the straightforward relationships break down. Using laboratory analogue experiments to represent a rheologically-stratified conduit we characterise the distinct variations in the shear stress exerted on the upper sections of the flow tube and in the gas pressures measured above the liquid surface, during different degassing flow configurations. These signals, generated by varying styles of gas ascent, expansion and burst, can reflect field infrasonic measurements and ground motion proximal to a vent. The shear stress signals exhibit timescales and trends in qualitative agreement with the near-vent inflation–deflation cycles identified at Stromboli. Therefore, shear stress along the uppermost conduit may represent a plausible source of near-vent tilt, and conduit shear contributions should be considered in the interpretation of ground deformation, which is usually attributed to pressure sources only. The same range of flow processes can produce different experimental infrasonic waveforms, even for similar masses of gas escape. The experimental data resembled infrasonic waveforms acquired from different vents at Stromboli associated with different eruptive styles. Accurate interpretation of near-vent ground deformation, infrasonic signal and eruptive style therefore requires detailed understanding of: a) spatiotemporal magma rheology in the shallow conduit, and b) shallow conduit geometry, as well as bubble overpressure and volume.
机译:活火山的地球物理测量结果的解释对于危险评估和理解基本过程(如岩浆脱气)至关重要。对于Strombolian活动,目前的解释是以一阶流体动力学模型为基础的,该模型提供了地球物理信号与气体和岩浆流之间相对直接的关系。但是,最近的岩石学和高速视频证据表明导管内流变分层的重要性,在这里,我们表明在这些条件下,直接关系破裂了。使用实验室模拟实验来表示流变分层的导管,我们可以表征在不同脱气流量配置下施加在流量管上部的切应力和在液体表面上方测得的气压的明显变化。这些信号是由各种样式的气体上升,膨胀和爆发产生的,它们可以反映出现场次声测量和通风口附近的地面运动。剪切应力信号显示了时间尺度和趋势,与在斯特隆博利(Stromboli)所确定的近乎通货膨胀-通缩周期定性一致。因此,沿最上层导管的剪切应力可能代表了近似通风口倾斜的合理来源,在解释地面变形时应考虑导管的剪切贡献,这通常仅归因于压力源。即使对于相似质量的气体逸出,相同范围的流动过程也可以产生不同的实验次声波形。实验数据类似于从Stromboli的不同喷口处获得的次声波波形,并伴有不同的喷发形式。因此,要准确解释近地层变形,次声信号和喷发型式,需要对以下方面有详细的了解:a)浅管道中的时空岩浆流变学,b)浅管道的几何形状以及气泡超压和体积。

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