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A Procedure for the Configuration of an Inflow Control Device Completion Using Reservoir Modelling and Simulation in the North Amethyst Pool

机译:使用北方紫水晶池中使用储层建模和仿真配置流入控制设备完成的过程

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This paper outlines an approach to simultaneously reduce gas and water production through the design and implementation of an inflow control device (ICD) completion for a horizontal production well in the North Amethyst pool. The procedure uses Schlumberger’s Petrel modelling software, Schlumberger’s reservoir simulator, ECLIPSE, and a multi-segmented well (MSW) model to optimally configure an ICD completion within a reservoir model. This approach utilizes the reservoir model to generate ternary plots (oil, gas and water) that represent three-phase movement within the reservoir. The use of MSW enables the dynamic display of a virtual production logging tool (PLT) plot, representing the expected three-phase inflow performance along the wellbore. Both ternary and PLT plots identify the locations of high gas and high water inflow zones along the wellbore. With these zones identified, various configurations of ICD completions are designed to control these breakthrough zones and are then simulated. ICD equipment options, such as reduced nozzle sizes and blank zones, are considered in the design. The simulation results of the various ICD configurations are compared to determine the optimal design. The design objectives are to optimize oil inflow, oil rate, and ultimate recovery by delaying and reducing gas and water production. The produced liquid rate was also optimized with rate sensitivities for each ICD configuration which led to a design that further reduces gas and water production.
机译:本文概述了一种通过设计和实施流入控制装置(ICD)完成,在北紫水晶池中的水平生产井的设计和实施,可以同时降低气体和水资源的方法。该过程使用Schlumberger的Petrel模型软件,Schlumberger的水库模拟器,Eclipse和多分段井(MSW)模型,以在储库模型中进行最佳地配置ICD完成。该方法利用储层模型产生三元图(石油,天然气和水),该图在储层内代表三相运动。 MSW的使用使虚拟生产测井工具(PLT)绘图的动态显示,代表沿井筒的预期三相流入性能。三元和PLT图均识别沿井筒的高气体和高水位流入区域的位置。通过识别出这些区域,设计了ICD完成的各种配置来控制这些突破区,然后模拟。设计中的ICD设备选项如减少的喷嘴尺寸和空白区域。比较各种ICD配置的仿真结果,以确定最佳设计。设计目标是通过延迟和降低天然气和水生产来优化石油流入,油速和最终恢复。产生的液体速率也用每个ICD配置的速率灵敏度进行了优化,这导致了进一步降低气体和水生产的设计。

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