Mechanism and Control of Casing Deformation under Strike-Slip Fault Movement in Shale Gas Reservoirs

套管 地质学 打滑(空气动力学) 变形(气象学) 剪切(地质) 油页岩 岩土工程 计算机模拟 断层(地质) 变形机理 流离失所(心理学) 油田 石油工程 磁导率 机制(生物学) 机械 孔隙水压力 加速度 绊倒 结构工程 不连续变形分析 抗剪强度(土壤)
作者
yunzhong jia,Min Huang,Jiren Tang,Zhaohui Lu,Qi Cheng,Xiao Sun,Shengyao Cai
出处
期刊:Spe Journal [Society of Petroleum Engineers]
卷期号:: 1-14
标识
DOI:10.2118/231180-pa
摘要

Summary The effective development of shale gas is severely hampered by casing shear deformation issues, which commonly arise during the hydraulic-fracturing process. However, the actual morphology of such deformation and its relationship with fault-slip displacement remain poorly understood. To address this, we investigated casing shear deformation morphology and the variation of casing inner diameter under varying slip displacements by means of experiments and micro-computed tomography (CT) analysis. Experimental results were used to validate the reliability of our numerical simulation methodology. Subsequently, field-scale numerical simulations were performed to examine the influence of strike-slip faults with various orientations on casing cross-sectional shape and inner diameter. Our findings indicate that casing deformation severity is jointly determined by the fault-wellbore intersection angle in the slip direction and the fault-slip displacement. Based on this relationship, we derived a calculation formula for inner-diameter reduction to quantify casing deformation. The study also examined how different sensitivity factors affected the casing inner-diameter reduction and strain. Finally, by integrating fault-slip theory with the casing deformation formula, we proposed wellbore layout measures: avoiding long faults, avoiding faults with high-risk angles, and maintaining distance from fault centers. Additionally, controlling and preventing casing deformation effectively requires reducing fluid pressure on the fault during fracturing operations.

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