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Injection-Triggered Seismicity: An Investigation of Porothermoelastic Effects Using a Rate-and-State Earthquake Model

机译:注射触发的地震性:利用速率和状态地震模型对Porothermo弹性效应的研究

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Physical processes associated with injection-triggered seismicity were investigated through the use of a numerical model. We investigated the role of the following physical mechanisms on causing triggered earthquake events: fluid pressurization within the fault zone, poroelastically-induced stress due to fluid leakoff into the rock surrounding the fault, and thermoelastically-induced stress due to cooling of the reservoir rock. A model of a fault that had a direct hydraulic connection to an injection well was used to develop a numerical experiment. In the model, relatively cold fluid was injected into the fault for a period of one day, and then the well was shut-in. A rate-and-state friction framework was used to model the earthquake nucleation, rupture, and arrest processes. Four simulations were performed in order to isolate the effects of the different physical mechanisms. We observed that, depending on which physical mechanisms were active, the overall behavior in seismicity differed significantly between the four cases. For the reservoir and fault parameters used in this study, it was observed that the poroelastic and thermoelastic stresses were of the same order of magnitude as the change in fluid pressure within the fault zone. Of particular interest, the thermoelastic stresses introduced significant levels of heterogeneity in the distribution of effective stress along the fault, which ultimately led to a markedly distinct character in the individual earthquake events and overall seismic pattern. This study demonstrated that the physical mechanisms investigated herein have the potential to control behavior during injection-triggered seismicity. However, it should be clearly stated that the results presented in this paper cannot generally be extended to all scenarios related to injection-triggered seismicity, and further parametric studies must be performed in order to classify the range of geological and operational settings over which each physical mechanism may be important.
机译:通过使用数值模型研究了与注射触发地震性相关的物理过程。我们调查了以下物理机制对引发触发地震事件的作用:断层区域内的流体加压,由于流体泄漏到围绕故障的岩石而导致的旋流引起的应力,并且由于水库岩体的冷却而导致的热引起的应力。使用与喷射井的直接液压连接的故障模型用于开发数值实验。在模型中,将相对冷的流体注入故障一天,然后井被关闭。利率和状态摩擦框架用于模拟地震成核,破裂和逮捕过程。进行四种模拟以隔离不同物理机制的影响。我们观察到,根据哪种物理机制有效,在四种情况下,地震性的整体行为显着不同。对于本研究中使用的储层和故障参数,观察到多孔弹性和热弹性应力与断层区域内的流体压力的变化相同的数量级。特别感兴趣的是,热弹性应力在沿着故障的有效应力分布中引入了显着的异质性,这最终导致各个地震事件和整体地震模式中明显不同的特征。本研究表明,本文研究的物理机制具有在注射触发的地震期间控制行为的可能性。但是,应该清楚地说明本文所呈现的结果通常不能扩展到与注射触发的地震性相关的所有场景,并且必须进行进一步的参数研究,以便对每个物理的地质和操作设置的范围进行分类机制可能很重要。

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