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Modelling stress and strain in coal seams during CO2 injection incorporating the rock-fluid interactions

机译:结合岩-流体相互作用模拟CO2注入过程中煤层的应力和应变

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摘要

To reduce the adverse effects of global warming, geological sequestration has been suggested, which includes capturing and pumping anthropogenic CO2 into deep underground formations, such as coalbeds. Despite the advantages of coalbed sequestration, its geomechanical aspects are not well studied. In particular, the coupling between geomechanical and reservoir/adsorption behaviours of coal seam has been largely neglected. This paper aims to address this shortcoming by developing a coupled chemo-poromechanical model that predicts the geomechanical performance of a coal seam in which CO2 is being injected. Recent studies have shown that the interaction of CO2 and coal results in changes in geomechanical properties of coal, namely elastic modulus and peak strength. In order to investigate the significance of these changes in the geomechanical response of the storage site, an analytical solution was found to predict the distribution of stress within an axisymmetric reservoir, considering the effect of sorption induced changes on mechanical behaviour. The analytical model was then coupled with a simplified dual porous reservoir simulation tool to study the effect of CO2 injection on reservoir and geomechanical performance of the coal seam. The results of the simulation showed that the changes in geomechanical properties of coal can significantly influence the stress and strain distributions within the formation, and therefore, the permeability distribution. Also, it was found that for the example simulated in this paper the adsorption induced reduction in strength did not influence the extent of the mechanical failure zone of the reservoir. (C) 2016 Elsevier Ltd. All rights reserved.
机译:为了减少全球变暖的不利影响,有人提出了地质隔离措施,其中包括将人为二氧化碳捕获并泵入深层地下结构(如煤层)中。尽管煤层气固存具有优势,但对其岩土力学方面的研究尚未深入。特别是,在很大程度上忽略了煤层的地质力学与储层/吸附行为之间的耦合。本文旨在通过开发一种化学-化学-力学耦合模型来预测这一缺点,该模型可预测注入CO2的煤层的地质力学性能。最近的研究表明,CO 2和煤的相互作用导致煤的地质力学性质发生变化,即弹性模量和峰值强度。为了研究这些变化对存储地点的地质力学响应的重要性,考虑到吸附引起的变化对机械性能的影响,找到了一种解析解决方案来预测轴对称储层内的应力分布。然后,将分析模型与简化的双孔储层模拟工具耦合,以研究注入二氧化碳对煤层的储层和地质力学性能的影响。模拟结果表明,煤岩力学特性的变化会显着影响地层内的应力和应变分布,进而影响渗透率分布。此外,对于本文模拟的示例,发现吸附引起的强度降低不会影响储层的机械失效区域的程度。 (C)2016 Elsevier Ltd.保留所有权利。

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