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Time-dependent chamber and vent conditions during explosive caldera-forming eruptions

机译:爆炸性破火山口爆发期间随时间变化的腔室和通风口状况

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摘要

We use a modified version of the CPIUC model [Macedonio, G., Neri, A., Marti, J., Folch, A., 2005. Temporal evolution of flow conditions in sustained explosive eruptions, journal of Volcanology and Geothermal Research, 143,153-172] to simulate chamber and vent conditions during the different phases of a piston-like caldera-forming eruption. Our idealized caldera-forming scenario assumes an initial central-vent conduit that, after critical chamber decompression, migrates to a fissure-vent peripheral conduit(s). Further decompression leads to final piston-like subsidence which stops only after the virtual destruction of the magmatic reservoir. The simulations find that the pressure at the conduit entrance drops during the decompression phases at a rate depending on the conduit geometry, chamber volatile zonation and fragmentation threshold. The higher the volume contrast between the initial central-vent and the final peripheral fissure-vent conduits, the higher the pressure drop and the jump in the mass eruption rate. Pressure increases back to lithostatic during piston subsidence while some compressible magma remains within the chamber. Finally, during the later phase, pressure experiments a gentle increase or decrease depending on the balance between deposition of intra-caldera material and decrease in the contents of volatiles as deeper chamber levels are tapped.
机译:我们使用CPIUC模型的修改版[Macedonio,G.,Neri,A.,Marti,J.,Folch,A.,2005。持续爆炸爆发中流动条件的时间演变,《火山学和地热研究》,143,153 -172]以模拟在类似活塞状火山口形成喷发的不同阶段的腔室和通风口状况。我们理想的破火山口形成方案假定初始中央通风管道,该管道在关键的腔室减压后迁移到裂隙通风的外围管道。进一步的减压导致最终的活塞状沉陷,该沉陷只有在岩浆储层实际上被破坏之后才停止。模拟发现,在减压阶段,导管入口处的压力下降的速率取决于导管的几何形状,腔室挥发性分区和破碎阈值。初始中心通风口和最终外围裂口通风管道之间的体积对比度越高,压降和质量喷发速率的跳跃就越大。在活塞沉降期间,压力增加回到岩石静力学状态,而腔室内仍保留一些可压缩的岩浆。最后,在随后的阶段中,压力实验根据破火山口内物质的沉积与挥发物含量的减少之间的平衡而逐渐增加或减少,因为要挖掘更深的腔室水平。

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