首页> 外文期刊>Journal of geophysical research. Solid earth: JGR >The effects of thermomechanical heterogeneities in island arc crust on time-dependent preeruptive stresses and the failure of an andesitic reservoir
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The effects of thermomechanical heterogeneities in island arc crust on time-dependent preeruptive stresses and the failure of an andesitic reservoir

机译:岛弧壳中热机械非均质性对随时间变化的喷发应力和安山油藏破坏的影响

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Using ground deformation data from Soufrière Hills volcano (SHV), we present results from numerical modeling of the temperature- and time-dependent stress evolution in a mechanically heterogeneous crust prior to reservoir failure and renewed eruptive activity. The best fit models do not allow us to discriminate between a magmatic plumbing system consisting of either a single vertically elongated reservoir or a series of stacked reservoirs. A prolate reservoir geometry with volumes between 50 and 100 km3, reservoir pressure changes between 4 and 7 MPa, and reservoir volume changes between 0.03 and 0.04 km3 with magma compressibility between 4 × 10~(?11) and 1 × 10~(?9) Pa~(?1) provide plausible thermomechanical model parameters to explain the deformation time series; around an order of magnitude less overpressure than is generally inferred from homogeneous, elastic crustal models. Reservoir failure is predicted to occur at the crest of the reservoir except for reservoirs with highly compressible magma (? 4 × 10~(?9) Pa) for which subhorizontal sill formation is predicted upon reservoir failure. Introducing a deep-crustal hot zone modulates the partitioning of strains into the hotter underlying crust and results in a further reduction in overpressure estimates to values of around 1–2 MPa upon reservoir failure. Deduced volume fluxes are consistent with constraints from thermal modeling of active subvolcanic systems and imply dynamic failure of a compressible magma mush column feeding eruptions at SHV. Our interpretation of the results is that the combined thermomechanical effects of a deep-crustal hot zone and hot encasing rocks around a midcrustal andesitic reservoir fundamentally alter the time-dependent subsurface stress and strain partitioning upon reservoir priming. These effects substantially influence surface strains recorded by volcano geodetic monitoring.
机译:利用来自SoufrièreHills火山(SHV)的地面变形数据,我们提供了数值模拟的结果,该模拟结果是在储层破坏和新的爆发活动之前,机械非均质地壳中温度和时间相关的应力演化的。最佳拟合模型不允许我们区分由单个垂直拉长的储层或一系列堆叠的储层组成的岩浆管道系统。储层几何形状呈扁平状,体积在50至100 km3之间,储层压力在4至7 MPa之间变化,储层体积在0.03至0.04 km3之间变化,岩浆压缩率在4×10〜(?11)和1×10〜(?9)之间)Pa〜(?1)提供了合理的热力学模型参数来解释变形时间序列;大约比均质弹性地壳模型通常推断的超压小一个数量级。除具有高度可压缩岩浆(?4×10〜(?9)Pa)的储层外,储层的顶峰预计会发生储层破坏,而在储层发生故障时,将预测其水平下基石的形成。引入深部地壳热区可调节应变分配到更热的下层地壳中,并在储层发生故障时将过压估算值进一步降低至1-2 MPa左右。推导出的体积通量与活跃的次火山岩系统的热模型约束相一致,并且暗示了可压缩岩浆糊状柱在SHV处喷发的动态破坏。我们对结果的解释是,深部地壳热区和中地壳安第斯山脉储层周围的热包裹岩的热力学效应从根本上改变了储层启动时随时间变化的地下应力和应变分配。这些影响大大影响了通过火山大地监测记录的表面应变。

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