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Modeling Interwell Fracture Interference and Huff-N-Puff Pressure Containment in Eagle Ford Using EDFM

机译:使用EDFM模拟Interwell断裂干扰和鹰福特的Huff-N-Puff压力储存

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Optimizing spacing of infill wells and fractures can lead to large rewards for shale field operators, and these considerations have influences on primary and tertiary development of the field. Although several studies have been employed to show the existence of well interference, few models have also implemented Huff-n-Puff and injection containment methods to optimize further hydraulic fracture designs and pressure containment to improve the efficiency of Enhanced Oil Recovery (EOR). This study has performed a rigorous workflow for estimating the impacts of spatial variations in fracture conductivity and complexity on fracture geometries of interwell interference. Furthermore, we applied a non-intrusive embedded discrete fracture model (EDFM) method in conjunction with a commercial compositional reservoir simulator to investigate the impact of well interference through connecting fractures by multi-well history matching to propose profitable opportunities for Huff-n-Puff application. First, based on a robust understanding of fracture properties, updated production data and multi-pad wellbore image logging data from Eagle Ford, the model was constructed to perform nine wells sector model history matching. Later, inter-well connecting fractures were employed for enhanced history matching where results varied significantly from unmeasured fracture sensitivities. The result is the implementation of Huff-n-Puff models that capture interwell interference seen in the field and their affordable impact sensitivities focused on variable injection rates/ locations and multi-point water injection to mimic pressure barriers. The simulation results strengthened the understanding of modeling complex fracture geometries with robust history matching and support the need to incorporate containment strategies. Moreover, the simulation outcomes show that well interference is present and reduces effectiveness of the fracture hits when connecting natural fractures. As a result of the inter-well long fractures, the bottom hole pressure behavior of the parent wells tends to equalize, and the pressure does not recover fast enough. Furthermore, the EDFM application is strongly supported by complex fracture propagation interpretation and ductility to be represented in the reservoir. Through this study, multiple containment scenarios were proposed to contain the pressure in the area of interest. The model has become a valuable template to inform the impacts on well location and spacing, completion design, initial huff-n-puff decisions, subsequent containment strategies (e.g. to improve cycle timing and efficiency), and to expand to other areas of the field. The simulation results and understandings afforded have been applied to the field satisfactorily to support pressure containment benefits that lead to increased pressure build, reduced gas communication, reduced offset shut-in volumes, and ultimately, improvements in net utilization and capital efficiency.
机译:优化填充井和骨折的间距可导致页岩现场运营商的大量奖励,这些考虑因素对该领域的主要和三级开发产生了影响。虽然已经采用了几项研究表明存在良好的干扰,但很少有型号也已经实施了Huff-N-Puff和注射储存方法,以优化进一步的液压骨折设计和压力遏制,以提高增强型油回收(EOR)的效率。本研究执行了严格的工作流程,用于估计空间变化在裂缝导电性和复杂性对间隙干扰的裂缝几何形状的影响。此外,我们与商业成分储层模拟器一起应用了非侵入式嵌入的离散裂缝模型(EDFM)方法,以研究通过多井历史匹配的骨折来探讨井干扰的影响,以提出Huff-N-Puff的有利机会应用。首先,基于对骨折性能的强大了解,更新的生产数据和来自Eagle Ford的多垫井眼图像测井数据,该模型被构造成执行九个井扇区模型历史匹配。后来,采用良好的连接骨折用于增强历史匹配,其中导致未测量的骨折敏感性显着变化。结果是实施捕获在现场中看到的间隙干扰的Huff-N-Puff模型及其专注于可变喷射速率/位置和多点注水以模拟压力屏障的经济实际冲击敏感性。仿真结果加强了对具有稳健历史匹配的复杂骨折几何形状的理解,并支持融合遏制策略的需要。此外,模拟结果表明,在连接自然骨折时,存在良好的干扰并降低骨折击中的有效性。由于间隙间骨折间隙,父母孔的底部孔压力行为趋于均衡,并且压力不会足够快地恢复。此外,通过复杂的断裂传播解释和延展性强烈地支持EDFM应用,以在储库中表示。通过这项研究,提出了多种遏制方案来遏制感兴趣区域的压力。该模型已成为一个有价值的模板,可通知对井位置和间距,完成设计,初始Huff-N-Puff决策,随后的遏制策略(例如改善周期时序和效率)的影响,并扩展到该领域的其他地区。仿制的仿真结果和谅解良好的应用已经令人满意地应用于支持压力遏制效益,导致压力构建,降低气体通信,减少抵消,最终,净利用和资本效率的提高。

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