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Study on Seismic Events Induced by Loss of Fault Confinement due to Rock Temperature Decrease in EGS Reservoirs

机译:EGS储层岩体温度下降引起的故障限制损失引起的地震事件研究

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Heat is extracted from geothermal reservoirs and the altered thermal conditions of rock perturb in-situ stresses and may induce slip (shear displacement discontinuity) on pre-existing faults. Noticeable seismic events may arise as a consequence of the thermally induced slip. This paper focuses on impacts of cooling on the loss of fault confinement and triggering a rupture (seismic slip). We simulate a preexisting, strike-slip fault and calibrate the dynamic rupture modeling by checking results against an analytical solution. The calibrated model is then used for simulating thermally induced rupture along faults with different initial stresses. We explore effects of cooling rock on triggering a seismic slip along the fault while the temperature of surrounding rock continuously decreases from 400 °C until slip occurs. We study fault models with which initial shear stresses on the fault are six different fractions of the fault peak shear strength. An energy-based numerical methodology, previously developed and verified by the authors, is employed to simulate the intensity of rupture through calculating radiated seismic energy from each fault model. Results show that the fault with initial shear stresses closer to the fault shear strength is activated by smaller disturbances in rock temperature and generates rupture with higher radiated seismic energy. The induced rupture generates less radiated seismic energy for faults that are not close to the brink of failure and thus require a higher thermal drawdown before activation.
机译:从地热储层中提取热量,岩石扰动原位应力的改变的热条件,并可能在预先存在的故障上诱导滑动(剪切位移不连续性)。由于热诱导的滑动,显着的地震事件可能出现。本文重点介绍了冷却对故障监禁损失的影响,并引发破裂(地震滑动)。我们模拟了预先存在的,滑行故障,并通过检查分析解决方案的结果来校准动态破裂建模。然后使用校准模型用于沿着具有不同初始应力的故障模拟热引起的破裂。我们探讨了冷却岩体对沿着故障触发地震滑动的影响,而周围岩石的温度从400°C连续降低直至滑动发生。我们研究故障模型,其中初始剪切应力是故障峰值剪切强度的六个不同的分数。以前由作者开发和验证的基于能量的数值方法,用于通过计算来自每个故障模型的辐射地震能量来模拟破裂的强度。结果表明,初始剪切应力更接近故障剪切强度的故障在岩石温度下较小的干扰激活,并产生具有更高辐射地震能量的破裂。诱导的破裂产生较少的辐射地震能量,用于不接近失败的边缘的故障,因此在激活之前需要更高的热缩小。

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