地震活动性的耦合正演模拟:裂缝的粘滑模型和瞬态地质力学

Z. Han, G. Ren, R. Younis
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引用次数: 1

摘要

孔隙弹性介质中的地震变形可由多种物理事件触发,包括裂缝中的粘滑摩擦失稳。虽然在模拟辅助工程的背景下,为了减轻诱发地震活动的风险,能够使用准静态假设来解决地震滑动的开始就足够了,但涉及微地震活动的应用需要在整个预期的操作活动中使用惯性模型。在这项工作中,我们开发了一个全动态(惯性)、时间自适应、耦合的数值模型,该模型结合了裂缝性油藏的瞬态孔隙力学和多相流。该模型用于同时吸收井动态和动态地震事件序列,从而了解因果事件动力学。首先,我们将混合XFEM-EDFM数值格式扩展到时间相关力学。提出了一种稳定的二阶隐式Newark方法。采用拉格朗日乘子约束处理裂缝中压力相关的接触力,并提出了一种多项式投影法来稳定接触牵引力的计算。提出了一种时间自适应指标来解决震前触发和同震自发破裂问题。该模型经过经验验证(准确性、一致性和计算效率)。通过数值算例对比拟静态方法的预测结果,对所提出的动态模型进行了比较。特别地,证明了计算波形可以不同于一阶。在注水模拟试验例中,探测到同震破裂和微震信号,观察到地应力偏移。我们概述了统一工具链和工作流程的意义,以结合地球物理、完井设计和油藏动态分析。
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Coupled Forward Simulation of Seismicity: a Stick-Slip Model for Fractures and Transient Geomechanics
Summary Seismic deformation in poroelastic media may be triggered by a variety of physical events including stick-slip frictional instabilities in fracture. While in the context of simulation-aided engineering to mitigate the risks of induced-seismicity, it is sufficient to be able to resolve the onset of seismic slip using quasi-static assumptions, applications involving microseismicity require inertial models throughout the intended operational activity. In this work, we develop a fully-dynamic (inertial), time-adaptive, and coupled numerical model incorporating transient poromechanics and multiphase flow in fractured reservoirs. The model is applied to simultaneously assimilate well-performance and dynamic seismic event sequences, thereby informing about the causal event dynamics. First, we extend the mixed XFEM-EDFM numerical scheme to time-dependent mechanics. A stable and second-order implicit Newark method is developed in time. The pressure-dependent contact forces in fracture are treated using Lagrange multiplier constraints, and a Polynomial Projection Method is developed to stabilize the computation of contact traction. A temporal adaptivity indicators is developed to resolve preseismic triggering and coseismic spontaneous rupture. The model is validated empirically (for accuracy, consistency, and computational efficiency). Numerical examples are presented to benchmark the proposed dynamic model relative to predictions from a quasi-static approach. In particular, it is demonstrated that computed waveforms can differ to first-order. Furthermore, in simulation test cases with water injection, coseismic rupture and microseismic signals are detected and in-situ stress migration is observed. We outline implications towards unifying toolchains and workflows for combined geophysical, well completions design, and reservoir performance analysis.
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