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Thermomechanical controls on magma supply and volcanic deformation: application to Aira caldera Japan

机译:岩浆供应和火山变形的热力学控制:在日本Aira破火山口的应用

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摘要

Ground deformation often precedes volcanic eruptions, and results from complex interactions between source processes and the thermomechanical behaviour of surrounding rocks. Previous models aiming to constrain source processes were unable to include realistic mechanical and thermal rock properties, and the role of thermomechanical heterogeneity in magma accumulation was unclear. Here we show how spatio-temporal deformation and magma reservoir evolution are fundamentally controlled by three-dimensional thermomechanical heterogeneity. Using the example of continued inflation at Aira caldera, Japan, we demonstrate that magma is accumulating faster than it can be erupted, and the current uplift is approaching the level inferred prior to the violent 1914 Plinian eruption. Magma storage conditions coincide with estimates for the caldera-forming reservoir ~29,000 years ago, and the inferred magma supply rate indicates a ~130-year timeframe to amass enough magma to feed a future 1914-sized eruption. These new inferences are important for eruption forecasting and risk mitigation, and have significant implications for the interpretations of volcanic deformation worldwide.
机译:地面变形通常发生在火山喷发之前,是源过程与围岩的热力学行为之间复杂的相互作用导致的。以前旨在限制震源过程的模型无法包含现实的机械和热岩石性质,并且热机械非均质性在岩浆堆积中的作用尚不清楚。在这里,我们展示了三维热机械非均质性如何从根本上控制时空变形和岩浆储集层演化。以日本Aira破火山口持续的通货膨胀为例,我们证明了岩浆的堆积速度比其爆发速度要快,并且当前的隆升已接近1914年普利尼亚火山爆发之前推断的水平。岩浆的储存条件与大约29000年前形成火山口的储层的估计值相吻合,并且推断的岩浆供应率表明,大约130年的时间范围内会积聚足够的岩浆,以养活未来1914年大小的喷发。这些新的推论对于喷发预测和减轻风险非常重要,并且对全球火山形变的解释具有重要意义。

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