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The Effect of Varying Fluid Injection Activities on Induced Earthquakes through Joint-Enriched Finite Element Analyses

机译:通过富集联合有限元分析,流体注入活动的变化对诱发地震的影响

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Subsurface fluid injection into sedimentary reservoirs is potentially responsible for the sharply rising number of seismic events in oil and gas production regions. To assess the effects of fluid injection activities on fault reactivation and slip, we construct a hydro-mechanical joint-enriched finite element model, comprised of a multi-layer sequence embedded with a favorably-oriented normal fault. We consider six injection scenarios to address the effects of anthropogenic parameters including injection rate and injection volume on the stability of seismogenic fault. Simulation results demonstrate that maximum excess pore pressure and stress perturbation are highly dependent on the injection strategy. The injection program with faster initial rate may induce early fault reactivation. Higher injection volume also could result in a higher potential of fault reactivation and slip. The incorporation of joint elements into the model allows the capture of progressive fault damage under hydro-mechanical couplings. This study highlights the importance of appropriately-designed injection well operations in minimizing the likelihood of induced seismic events.
机译:地下流体注入沉积储层可能是导致油气生产区地震事件急剧增加的原因。为了评估注水活动对断层再活化和滑动的影响,我们构建了一个富液压机械联合的有限元模型,该模型由嵌入优先定向正断层的多层层序组成。我们考虑了六种注入方案,以解决人为参数的影响,包括注入速率和注入量对地震断层稳定性的影响。仿真结果表明,最大过剩孔隙压力和应力扰动高度依赖于注入策略。初始速率更快的注入程序可能会导致早期故障重新激活。较高的注入量也可能导致故障重新激活和打滑的可能性更高。将关节​​元素合并到模型中,可以捕获在水力耦合作用下的渐进式断层破坏。这项研究强调了设计合理的注入井作业对最大程度地减少诱发地震事件的可能性的重要性。

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