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Coupled fluid flow and geomechanical modeling for understanding the mechanisms of depletion-induced reservoir compaction and its impact on hydrocarbon production

机译:耦合流体流动和地质力学建模,了解耗尽储存储层压实的机制及其对碳氢化合物生产的影响

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The coupled fluid flow and geomechanical simulator TOUGH-FLAC was employed to study the mechanisms of depletion-induced reservoir compaction and its impact on hydrocarbon gas production. For consideration of compaction-drive in the sequential coupling between fluid flow and geomechanics, we developed and applied a new alternative approach of linking volumetric strain to the fluid mass balance through a correction of rock compressibility in the fluid flow simulator. Using this approach, we conducted model simulations for understanding the impact of porosity change on deformation and gas production, including sensitivity studies with regard to material properties and operation parameters for the optimization of gas production. The model simulations showed that the reservoir compaction can increase or decrease the gas recovery depending on the specific porosity and the permeability changes in the reservoir. This result shows that the interaction between fluid flow and geomechanics should be considered for optimal reservoir management and TOUGH-FLAC with the implemented coupling approach can be an effective tool for such analysis.
机译:采用耦合的流体流动和地质力学模拟器韧带突破性地研究了耗尽诱导的储层压实的机制及其对烃类气体生产的影响。为了考虑流体流动和地理学之间的顺序耦合中的压实驱动,我们开发并应用了通过校正流体流模拟器中的岩石可压缩来将体积应变与流体质量平衡连接的新替代方法。使用这种方法,我们进行了模拟模拟,以了解孔隙度变化对变形和天然气生产的影响,包括关于材料性能和运行参数的敏感性研究,用于优化天然气生产。模型模拟表明,根据具体孔隙率和储存器中的渗透率变化,储存器压缩可以增加或降低气体回收。该结果表明,应考虑流体流动与地理学之间的相互作用,以获得最佳的储层管理和硬盘,具有实施的耦合方法可以是这种分析的有效工具。

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