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Caldera unrest driven by CO 2 -induced drying of the deep hydrothermal system

机译:由CO 2引起的深层热液系统干燥驱动的破火山口动荡

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Interpreting volcanic unrest is a highly challenging and non-unique problem at calderas, since large hydrothermal systems may either hide or amplify the dynamics of buried magma(s). Here we use the exceptional ground displacement and geochemical datasets from the actively degassing Campi Flegrei caldera (Southern Italy) to show that ambiguities disappear when the thermal evolution of the deep hydrothermal system is accurately tracked. By using temperatures from the CO2-CH4 exchange of 13C and thermodynamic analysis of gas ascending in the crust, we demonstrate that after the last 1982–84 crisis the deep hydrothermal system evolved through supercritical conditions under the continuous isenthalpic inflow of hot CO2-rich gases released from the deep (~8?km) magma reservoir of regional size. This resulted in the drying of the base of the hot hydrothermal system, no more buffered along the liquid-vapour equilibrium, and excludes any shallow arrival of new magma, whose abundant steam degassing due to decompression would have restored liquid-vapour equilibrium. The consequent CO2-infiltration and progressive heating of the surrounding deforming rock volume cause the build-up of pore pressure in aquifers, and generate the striking temporal symmetry that characterizes the ongoing uplift and the post-1984 subsidence, both originated by the same but reversed deformation mechanism.
机译:解释火山爆发是火山口的一个极具挑战性和非唯一性的问题,因为大型热液系统可能掩盖或放大了地下岩浆的动力学。在这里,我们使用来自活跃脱气的Campi Flegrei火山口(意大利南部)的特殊地面位移和地球化学数据集,显示出当深层热液系统的热演化得到精确追踪时,歧义消失了。通过使用来自13 C的CO2-CH4交换的温度和地壳中上升的气体的热力学分析,我们证明,在上一次1982-84年危机之后,深的热液系统通过超临界条件在富含CO2的热气体连续等焓流入的条件下演化而来。从区域大小的深(约8公里)岩浆储层中释放出来。这导致热液系统底部干燥,不再沿液汽平衡缓冲,并且排除了新岩浆的任何浅层到达,由于减压,大量的蒸汽脱气将恢复液汽平衡。随之而来的CO2渗透和周围变形岩体的逐渐加热导致含水层中孔隙压力的增加,并产生了显着的时间对称性,其特征是持续的隆升和1984年后的沉降,两者都是由于相同的原因而又是相反的变形机制。

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