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Monitoring transient changes within overpressured regions of subduction zones using ambient seismic noise

机译:使用环境地震噪声监测俯冲带超压区域内的瞬态变化

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In subduction zones, elevated pore fluid pressure, generally linked to metamorphic dehydration reactions, has a profound influence on the mechanical behavior of the plate interface and forearc crust through its control on effective stress. We use seismic noise–based monitoring to characterize seismic velocity variations following the 2012 Nicoya Peninsula, Costa Rica earthquake [Mw (moment magnitude) 7.6] that we attribute to the presence of pressurized pore fluids. Our study reveals a strong velocity reduction (~0.6%) in a region where previous work identified high forearc pore fluid pressure. The depth of this velocity reduction is constrained to be below 5 km and therefore not the result of near-surface damage due to strong ground motions; rather, we posit that it is caused by fracturing of the fluid-pressurized weakened crust due to dynamic stresses. Although pressurized fluids have been implicated in causing coseismic velocity reductions beneath the Japanese volcanic arc, this is the first report of a similar phenomenon in a subduction zone setting. It demonstrates the potential to identify pressurized fluids in subduction zones using temporal variations of seismic velocity inferred from ambient seismic noise correlations.
机译:在俯冲带,通常与变质脱水反应有关的孔隙流体压力升高,通过控制有效应力而对板界面和前臂地壳的力学行为产生了深远的影响。我们使用基于地震噪声的监测来表征2012年哥斯达黎加尼科亚半岛地震[M (矩震级)7.6]后的地震速度变化,这归因于存在压力孔隙流体。我们的研究表明,在以前的工作发现前臂孔隙流体压力较高的区域,速度有很强的降低(〜0.6%)。该速度降低的深度被限制在5 km以下,因此不是强地面运动造成的近地表破坏的结果。相反,我们认为这是由于动态应力导致流体加压的弱壳破裂所致。尽管在日本火山弧之下,高压流体已经引起同震速度降低,但这是俯冲带环境中类似现象的首次报道。它证明了利用从周围地震噪声相关性推断出的地震速度的时间变化来识别俯冲带中加压流体的潜力。

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