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Performance of Plugless Toe Stages and Non-Isolated Wellbore in Multi-Stage Hydraulic Fractured 10 Well Half Pad in the Canadian Shale Gas Horn River Basin

机译:在加拿大页岩气喇叭河流河流域的多级液压骨折10井半垫中的无源脚趾级和非隔热井筒的性能

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The current hydraulic fracturing industry paradigm is to isolate stimulation intervals. The casing is perforated, a hydraulic fracture treatment is pumped, and isolation is set 'above' the previously stimulated interval before the casing is perforated for the next interval. These steps are repeated as necessary to stimulate the entire lateral. Isolation is held as a fundamental requirement of completions under the belief that a lack of isolation between intervals will result in the loss of stimulation fluid through previously perforated intervals. In this paper, performance of plugless hydraulic fracturing process for horizontal stages and wellbores eliminating need for mechanical bridge plug diversion is estimated. The plugless process has been applied in horizontal wells that target one of three shale gas resource formations. Laterals in Nexen's Dilly Creek field currently target: Muskwa, Otter Park and Evie geological horizons. Recent applications of a plugless toe approach provides a solution for completing hydraulic fracturing stages beyond the reach of conventional coil tubing equipment. Elimination of drillable bridge plugs at these measured depths without compromising completion quality is key for enabling longer lateral lengths with significant cost saving during a low commodity price environment. Full plugless wellbores reduce cost even further and eliminates significant risk associated with mechanical isolation plug installation and removal. The scope of the work presented in this paper takes into account field production and completion data, original analysis of surveillance data, completion technology solution & advancement and computational work. Surveillance methods interpretation, pressure and rate transient analysis, advanced transient analysis such as deconvolution technique, Diagnostic Fracture Injection Test (DFIT) analysis and numerical simulation have been conducted to understand the plugless effect in unconventional shale gas reservoirs. The possible applications of the information provided in this paper are the determination of expected ultimate recovery, production performance and completion efficiency on a per stage basis. Evidence of the plugless effect thru surveillance response shows new deformation opposite new perforations and little deformation opposite previous fractured stage perforations. This paper will look at pore pressure, fracture conductivity and fracture dimensions as the main dials to obtain performance in hydraulic fracture stages in reservoir models. We stated specific conclusions of this case study and how these conclusions differ from previous work on the same subject. The significance of the subject matter is related with 3 major technical contributions in the area of design, completions and reservoir engineering in unconventional shale gas reservoirs. The additions to the technical knowledge base of the petroleum industry are numerous and insightful.
机译:目前的液压压裂行业范式是分离刺激间隔。壳体是穿孔的,泵送液压断裂处理,并且在壳体穿孔之前,将先前刺激的间隔设定为上述“上方”的“上方”。根据需要重复这些步骤以刺激整个横向。孤立被视为完成完成的基本要求,即间隔之间的孤立缺乏孤立将导致刺激流体通过以前穿孔的间隔丧失。本文估计了对水平阶段和井筒的无水液压压裂过程的性能,消除了无需机械桥接插头转移。无需熔接过程已应用于横井,其瞄准三个页岩气资源中的一个。目前Nexen的唐溪场的横向目标:Muskwa,水獭公园和evie地质视野。最近的无电趾脚趾方法的应用提供了超出传统线圈设备范围的液压压裂阶段的解决方案。在这些测量的深度处消除可钻桥插头而不会损害完成质量,是在低商品价格环境中实现更长的横向长度的关键,以实现更长的横向长度。完整的无电孔井筒进一步降低成本,并消除了与机械隔离插头安装和拆卸相关的重大风险。本文提出的工作范围考虑了现场生产和完成数据,对监控数据的原始分析,完成技术解决方案和进步和计算工作。监测方法的解释,压力和速度瞬态分析,先进瞬态分析如去卷积技术,诊断断裂注射测试(DFIT)分析和数值模拟已经进行了解非常规页岩气储层的plugless效果。本文提供的信息的可能应用是根据每阶段确定预期的最终恢复,生产性能和完成效率。无烯效效果的证据通过监测反应表明,新的穿孔相反的新变形,并且与先前的裂缝阶段穿孔相对的变形很小。本文将看孔隙压力,断裂电导率和断裂尺寸作为主要表盘,以获得储层模型中的液压断裂级的性能。我们对本案例研究的具体结论以及这些结论如何与以前的同一主题的工作不同。主题的重要性与非传统页岩气藏设计,完工和水库工程领域的3个主要技术贡献有关。石油工业技术知识库的补充是众多和富有洞察力的。

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