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Modeling of unrest signals in heterogeneous hydrothermal systems

机译:非均质热液系统中动荡信号的建模

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Monitoring of quiescent volcanoes, such as Campi Flegrei (Italy), involves the measurement of geochemical and geophysical parameters that are expected to change as eruptive conditions approach. Some of these changes are associated with the hydrothermal activity that is driven by the release of heat and magmatic fluids. This work focuses on the properties of the porous medium and on their effects on the signals generated by the circulating fluids. The TOUGH2 porous media flow model is applied to simulate a shallow hydrothermal system fed by a source of magmatic fluids. The simulated activity of the source, with periods of increased fluid discharge, generates changes in gas composition, gravity, and ground deformation. The same boundary conditions and source activity were applied to simulate the evolution of homogeneous and heterogeneous systems, characterized by different rock properties. Phase distribution, fluid composition, and the related signals depend on the nature and properties of the rock sequence through which the fluids propagate.Results show that the distribution of porosity and permeability affects all the observable parameters, controlling the timing and the amplitude of their changes through space and time. Preferential pathways for fluid ascent favor a faster evolution, with larger changes near permeable channels. Slower changes over wider areas characterize less permeable systems. These results imply that monitoring signals do not simply reflect the evolution of the magmatic system: intervening rocks leave a marked signature that should be taken into account when monitoring data are used to infer system conditions at depth.
机译:监测静态火山,例如Campi Flegrei(意大利),涉及对地球化学和地球物理参数的测量,预计这些参数会随着爆发条件的临近而发生变化。其中一些变化与热和岩浆流体释放所驱动的水热活动有关。这项工作着眼于多孔介质的特性及其对循环流体产生的信号的影响。应用TOUGH2多孔介质流动模型来模拟由岩浆流体源供入的浅水热系统。随着流体排放量增加,源的模拟活动会产生气体成分,重力和地面变形的变化。相同的边界条件和源活动被用来模拟均质和非均质系统的演化,其特征是岩石性质不同。相分布,流体组成和相关信号取决于流体传播的岩石序列的性质和性质。结果表明,孔隙度和渗透率的分布会影响所有可观测参数,并控制其变化的时间和幅度。穿越时空。流体上升的优先途径有利于更快的演化,渗透通道附近的变化更大。较宽范围内较慢的变化是渗透性较差的系统的特征。这些结果表明,监测信号不能简单地反映岩浆系统的演化:中间的岩石会留下明显的特征,在使用监测数据推断深层系统状况时应予以考虑。

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