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Using Geomechanics to Reveal the Production Controlling Factors of the Tectonically Stressed Jurassic Tight Gas Reservoir in Western China

机译:利用地质力学揭示中国西部构造强调侏罗纪紧煤气藏的生产控制因素

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Located at the foothills of Tianshan mountains,western China,the Dibei tight gas reservoir has become one of the key exploration areas in last decade because of its large gas reserve potential.The previous exploration effort yielded mixed results with large variations of the production rates from these exploration wells and many rates are too low to be deemed as discovery wells.Petrophysical properties were excluded as controlling factors because these properties for most exploration wells are very similar.Under the large tectonic stress,heterogeneous natural fracture systems are induced and unevenly distributed in the reservoir,which might be the controlling factor for production.However,due to the limitation of the seismic data quality,quantitative fracture modeling with seismic is not possible for this field.A new method predicting the 3D occurrence of the natural fractures in the reservoir is needed.In this study,geomechanics-based methods were used to predict the natural fracture systems in the reservoir.The methods started from classification of natural fracture systems based on borehole image and core data into either fold-related and/or fault-related fractures.Geomechanics-based structure restoration was conducted to compute the deformation and the perturbed stress field from the restoration of complex geological structures through time.A correlation was established between the fold-related perturbated stress field and the occurrence of fold-related fractures from wells to predict the 3D occurrence of this type of natural fractures.Meanwhile,the computation of the perturbed stress field around 3D discontinuities (i.e.faults) for one or more tectonic events was conducted by the Boundary Element Method (BEM) until a good match was achieved between the fault-related perturbed stresses and observed fault-related fractures from the wellbore.By using the output from the two methods,the discrete fracture network (DFN) model was constructed to explicitly represent the occurrence and geometry of the natural fracture system in the reservoir in a geological model.A geomechanical model was constructed based on an integrated workflow from 1D to 3D.The fracture stability was then calculated based on the 3D geomechnical model.Detailed analysis was conducted among the DFN model,the geological model of the reservoir and productivity of the exploration wells,and very good correlation was revealed between the productivity of the exploration wells and the occurrence and geometry of the natural fractures and the structural position of the reservoir.This study shows that geomechanics-based methods efficiently capture the occurrence of natural fracture systems and reveal the production-controlling factors of the tight gas reservoir.It demonstrates that geomechanics is a powerful tool to support successful exploration of the tight gas reservoir in tectonically stressed environments.
机译:位于中国西部天山山脉的山脚下,Dibei Light Gas Caploir成为过去十年的关键探索地区之一,因为其大型煤气预备用潜力。以前的勘探工作产生了混合结果,生产率大的差异这些勘探井和许多费率太低,无法被视为发现井。作为控制因素被排除为控制因素,因为大多数勘探井的这些性质非常相似。在大规模的构造应力下,诱导和不均匀分布的异质天然骨折系统该储层可能是生产的控制因素。然而,由于地震数据质量的限制,该领域不可能与地震的定量骨折建模。该领域不可能预测水库中自然骨折的3D发生的新方法需要。本研究中,基于地质力学的方法用于预测自然骨折储存中的系统。该方法从基于钻孔图像和核心数据的自然骨折系统分类到折叠相关和/或故障相关的骨折。进行了基于机构的结构修复以计算变形和扰动应力场通过时间通过时间恢复复杂的地质结构。在折叠相关的扰动应力场与从井中的折叠相关骨折的发生以预测这种类型的自然骨折的3D发生。偶像的相关性,计算对于一个或多个构造事件的3D不连续性(IeFaults)的扰动应力场由边界元素方法(BEM)进行,直到在与井筒的故障相关的扰动应力和观察到的故障相关的骨折之间实现了良好的比赛.by使用来自两种方法的输出,构建离散裂缝网络(DFN)模型以明确表示T.地质模型中储库中的天然骨折系统的发生和几何形状。基于1D到3D的集成工作流程构建了地质力学模型。然后基于3D地质技术模型计算断裂稳定性。在进行中进行了预测分析DFN模型,勘探井的储层地质模型以及勘探井的生产力,探讨了勘探井的生产率与自然裂缝的发生和几何形状与储层的结构位置之间的生产率与储层的发生与几何形状。本研究表明基于地质力学的方法有效地捕捉自然断裂系统的出现,并揭示了致密气reservoir.It的生产控制因素表明,地质力学是一个强大的工具来支持致密气藏的成功探索在构造上强调环境。

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