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OTC 21910--Selection Methodology for Passive, Active, and Hybrid Inflow Control Completions

机译:OTC 21910 - 用于被动,主动,混合流入控制完成的选择方法

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Well completions with downhole inflow control technologies are used to defer and control water or gas breakthrough thereby maximizing recovery. Active and passive inflow control devices dominate this technology. The paper presents the performance of these technologies in different well conditions and provides recommendations on their selection. Passive inflow control devices (ICDs), combined with compartmentalization of the wellbore, balance inflow along the wellbore by creating a desired pressure regulation and prevent high-permeability sections from dominating the inflow. ICDs delay water and gas breakthrough and extend well life. Active inflow-control completions consist of well equipment with multiple downhole packers and valves that segment the wellbore into multiple sections. The valves can be operated during the life of the well to regulate or shut off inflow from the section(s) that experience water or gas breakthrough while producing the remaining sections. The active valves may range from conventional sliding side doors to intelligent completions with remotely operated downhole valves and sensors. Hybrid Completions integrate active control features with passive device systems within a single wellbore to leverage the value for both technologies to enhance well performance. Simple static wellbore analysis and advanced transient analysis coupling of reservoir simulators to wellbore models was performed to review the performance of different completion technologies. The simulations cover different completion options from a base design of screens in barefoot completions to more advanced passive, active, and Hybrid Completions. Different reservoir and well conditions were simulated to analyze the performance of the completion systems. The proposed methodology will help in selecting a fit-for-purpose completion design for the life of the well ensuring that the performance objectives will not only be achieved, but also that the completion type selected has not been “over-designed” for its intended purpose.
机译:利用井下流入控制技术的完井用于推迟和控制水或气体突破,从而最大化恢复。主动和无源流入控制设备主导了这项技术。本文介绍了这些技术在不同井条件下的表现,并提供了关于他们的选择的建议。无源流入控制装置(ICD),与井筒的划分化相结合,通过产生所需的压力调节并防止高渗透性部分来平衡井筒的流入。 ICDS推迟水和天然气突破,延长井寿命。主动流入控制完成由带有多个井下封装机和阀门的井设备组成,该阀门将井筒分段为多个部分。阀门可以在井的寿命期间进行操作,以调节或关闭在产生水或气体突破的部分中的流入,同时产生剩余部分。活性阀可以从传统的滑动侧门到智能完成,与远程操作的井下阀和传感器。混合完成将主动控制功能与单个井筒中的无源设备系统集成,以利用两种技术的价值来提高井的性能。简单的静态井筒分析和储层模拟器对井筒模型的先进瞬态分析耦合,审查了不同完成技术的性能。仿真从赤脚完成到更先进的被动,活动和混合完成的屏幕基础设计中涵盖了不同的完成选项。模拟不同的水库和井条件以分析完成系统的性能。拟议的方法将有助于为良好的生活选择适合的完成设计,确保不仅可以实现性能目标,而且选择的完整类型尚未为其预期“过度设计”目的。

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