冷虹, 胡隽. 0: 水力压裂活化断层多场耦合数值模拟研究——以加拿大Fox Creek地区诱发地震为例. 地震学报. DOI: 10.11939/jass.20230070
引用本文: 冷虹, 胡隽. 0: 水力压裂活化断层多场耦合数值模拟研究——以加拿大Fox Creek地区诱发地震为例. 地震学报. DOI: 10.11939/jass.20230070
Hong LENG, Jun HU. 0: A Couple fluid-geomechanics Numerical Simulation Study of Hydraulic Fracturing-Induced Fault Activation: A Case Study of Induced Seismicity in the Fox Creek Area, Canada. Acta Seismologica Sinica. DOI: 10.11939/jass.20230070
Citation: Hong LENG, Jun HU. 0: A Couple fluid-geomechanics Numerical Simulation Study of Hydraulic Fracturing-Induced Fault Activation: A Case Study of Induced Seismicity in the Fox Creek Area, Canada. Acta Seismologica Sinica. DOI: 10.11939/jass.20230070

水力压裂活化断层多场耦合数值模拟研究——以加拿大Fox Creek地区诱发地震为例

A Couple fluid-geomechanics Numerical Simulation Study of Hydraulic Fracturing-Induced Fault Activation: A Case Study of Induced Seismicity in the Fox Creek Area, Canada

  • 摘要: 加拿大西部盆地的Fox Creek页岩气开采区自压裂开采以来,地震频度急剧增加,引发工业界和科学界的广泛关注。目前一些典型诱发地震案例的断层活化动力学机制尚未完全弄清。本文以2014年初Fox Creek地区Duvernay地层附近发生的地震群及构造为研究对象,开展地下断层受流体扰动而活化的多场耦合数值模拟研究。首先,基于PKN模型计算注入流体的应力扰动输入项,根据地震数据识别出断层的具体位置,结合地层和构造信息建立二维地质模型。然后,耦合固体力学、流体渗流定律、断层阀门理论搭建多孔弹性介质内的断层活化数值仿真模型。最后,采用有限元方法数值模拟水力压裂活化断层的全过程,通过计算库伦应力改变量的值来确定断层被激活的位置和时间,分析断层附近的流固耦合场和应力应变场的演化过程。结果表明,不论是否存在东侧断层,西断层阀门开启并活化的时间都相同,活化趋势也大体一致,但是上下盘的∆CFS区值和孔隙压力值存在差异。此外,断层位错产生的正∆CFS区域与诱发地震位置高度吻合。本文的数值模拟研究重现了水力压裂活化断层的物理过程,相关机制的正演分析若能事先开展,将为地震危害性预测提供科学依据。

     

    Abstract: Since the commencement of hydraulic fracturing operations in the Fox Creek shale gas extraction area in the Western Canadian Basin, there has been a significant increase in seismic activity, which has attracted widespread attention from both the industry and the scientific community. The dynamic mechanisms responsible for the activation of faulting in some typical induced seismic cases in the area are not yet fully understood. In this study, we focus on the seismic sequence and structures that occurred in the Duvernay formation in the Fox Creek region in early 2014. We conduct a multi-field coupled numerical simulation study to investigate the activation of existing faults due to fluid perturbations. Firstly, the fault locations are identified based on seismic data, and the stress perturbation input from fluid injection is calculated using the PKN model. A two-dimensional geological model is then constructed by incorporating formation and structural information. Subsequently, a numerical simulation model is developed to simulate fault activation within a porous elastic medium, integrating solid mechanics, fluid flow laws, and fault valve theory. Finally, the entire process of hydraulic fracturing-induced fault activation is numerically simulated using the finite element method, and the activation locations and timing of faults are determined by calculating the change in Coulomb stress. The evolution of the coupled fluid-solid field and stress-strain field near the faults is analyzed. The results show that regardless of the presence of the eastern fault, the activation of the western fault valve occurs at the same time, and the activation trend is generally consistent, although there are differences in the ∆CFS (Coulomb failure stress) and pore pressure values between the upper and lower plates. Additionally, the regions with positive ∆CFS values generated by fault displacement coincide closely with the locations of induced earthquakes. The numerical simulation study in this paper reproduces the physical processes of hydraulic fracturing-induced fault activation, and if prospective forward analysis of related mechanisms is conducted, it will provide a scientific basis for earthquake hazard prediction.

     

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