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Uniform Fracture Growth from Horizontal Wells with Multistage Plug-and-Perf: An Application of Engineered Solid Particulate Diverters

机译:具有多级井的均匀骨折生长,具有多级井 - 和完善的井:工程固体颗粒分流器的应用

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To stimulate a reservoir efficiently, multistage plug-and-perf completion and fracturing technologies are widely utilized to create multiple hydraulic fractures along a horizontal wellbore. However, excessive field cases and lab tests evidenced that, the simultaneous initiation and propagation of multiple fractures within a stage could compete with each other, cause uneven fluid and proppant partition into each placed cluster. Resulting in low cluster efficiency and non-uniform fracture development. Solid particulate diverters can aid to influence the fluid distribution between open clusters to optimize stimulation efficiency. The objective of this study is to use numerical models to thoroughly investigate the functionality of particulate system in fracturing process and optimize the completion and stimulation strategy under specific downhole conditions. In this study, both CFD-DEM model and a 3D fracture simulator are employed to model fluid diversion and fracturing process for wells completed with plug-and-perf technique. For a field case study, sensitive analyses were performed to quantify the impact of completion design and pumping strategy on the resulted stimulation efficiency. The overall conductive reservoir volume is predicted to compare the cluster efficiency between different design scenarios. Thereafter, the stimulation efficiency of placed perforation clusters is analyzed and optimized with engineered solid particulate diverters. For the presented particulate diversion technique, both in-stage and inter-stage fluid diversion are operationally feasible. From our analysis, engineered solid particulate diverters can effectively plug the active perforation clusters and build-up enough pressure to divert fracturing fluid into non-active perforation clusters to create additional fractures. Proper number of diverter pills and adequate pumping schedule can boost the cluster efficiency and eventually increase the conductive reservoir volume. Through a field case study, the presented geomechanical analyses showed that the diverter design and operational parameters can be customized to enhance cluster efficiency. By adjusting completion design, the usage of particulate diverters can be optimized accordingly to maximize the stimulation efficiency. With the proposed efficient design, all the planned perforation clusters can develop and propagate hydraulic fractures and contribute to the overall production.
机译:为了有效地刺激储层,多级插头 - 完整和压裂技术被广泛利用沿水平井筒产生多个液压裂缝。然而,过量的现场情况和实验室测试证明了,舞台内的多个裂缝同时启动和传播可以彼此竞争,导致每个放置的簇中的不均匀的流体和支撑剂分区。导致集群效率低,不均匀的骨折开发。固体颗粒分子可以有助于影响开放簇之间的流体分布以优化刺激效率。本研究的目的是使用数值模型来彻底调查颗粒系统在压裂过程中的功能,并在特定的井下条件下优化完成和刺激策略。在该研究中,CFD-DEM模型和3D裂缝模拟器都采用了用插头和PET技术完成的井改变流体导流和压裂过程。对于现场案例研究,进行敏感分析以量化完成设计和泵送策略对所产生的刺激效率的影响。预计整体导电储层体积将比较不同设计方案之间的集群效率。此后,分析放置穿孔簇的刺激效率,并用工程固体颗粒分子器进行优化。对于所提出的颗粒导流技术,阶段和阶段间流体转移都是可操作的可行的。从我们的分析中,工程固体颗粒分流器可以有效地堵塞主动穿孔簇,并积聚足够的压力以将压裂液转移到非活动穿孔簇中以产生额外的裂缝。适当数量的分歧药丸和充足的泵送时间表可以提高集群效率,最终增加导电储层体积。通过一个现场案例研究,所提出的地质力学分析表明,可以定制分流器设计和操作参数以提高集群效率。通过调节完成设计,可以相应地优化颗粒层的使用,以最大化刺激效率。通过提出的高效设计,所有计划的穿孔簇都可以开发和繁殖液压骨折并有助于整体生产。

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