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Autonomous Inflow Control Valves-their Modelling and“Added Value”

机译:自动流入控制阀 - 它们的建模和“附加值”

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Wells equipped with inflow control devices(ICDs)are a proven method of improving sweep efficiency by passively controlling the influx of fluids into the well by the addition of a restriction to each completion joint.The application of ICDs is also essential to development of some oil fields previously found to be uneconomic.The ICD-completion design is a complex process requiring selection of the ICD restriction size,ICD type,and annular flow isolation(AFI).Several commercial ICD designs are now available,each of which react differently to the flowing fluid properties.This complicates the completion design process, which often requires the ICD completion to be specified against a poorly known reservoir and well performance prior to drilling the well.This adds a requirement for the ICD completion to improve oil recovery in a range of potential production scenarios. Unfortunately ICDs do not provide an optimal well design after breakthrough of the unwanted phases, despite their ability to balance the well inflow profile and achieve a uniform sweep towards a horizontal well in early years.Field experience has taught that ICD completions balance the well influx initially,but may not offer the optimal solution throughout the well’s life due to the changes in the inflow conditions as the well matures.The recently introduced Autonomous Inflow Control Device(AICD)aims to restrict unwanted phases(gas and water),(partially)overcoming the results of reservoir uncertainty at the well completion design stage. Autonomous Inflow Control Valves(AICVs)are the next generation of flow control technology,being designed to virtually shut-off unwanted fluid inflows at completion joints.This paper describes the first AICV modelling workflow for integrated well/reservoir simulators.Its application allows reservoir and well engineers to quantify the value added by the optimal use of this new,down-hole completion technology. The workflow has been used to compare the performance of advanced well completion options(AICVs and ICDs)in a synthetic,oil-rim reservoir model mimicking a larger North Sea field where production is dominated by gas-coning problems.Down-hole flow control with AICVs significantly increased oil recovery compared to ICDs and conventional wells employing wellhead choke control.Unwanted fluid production was also reduced by up to 80%;a result that combines higher oil recovery with more efficient use of reservoir energy by the AICV completion.
机译:配备有流入控制装置(ICD)的井是通过向每个完成关节添加限制来通过被动地控制井中的流体进入井中的扫描效率来提高扫描效率的经过验证的方法。ICDS的应用对于一些石油的发展也是必不可少的以前发现的字段是不经济的。ICD-Challialion设计是一种复杂的过程,需要选择ICD限制尺寸,ICD型和环形流动隔离(AFI)。赛马商业ICD设计现在可用,每个商业ICD设计都可以不同地反应流动的流体特性。这使得完成设计过程复杂化,这通常要求在钻井之前针对众所周知的水库和良好的性能指定ICD完成。这增加了ICD完成的要求,以改善一系列的石油回收潜在的生产方案。遗憾的是,在不需要的阶段的突破后,ICDS不提供最佳的井设计,尽管它们能够平衡井流入型材,并且在早些时者迈向水平井中实现均匀的扫描。菲尔德的完井最初平衡了井流量,但由于流入条件的变化作为井成熟的变化,可能不会在整个井生命中提供最佳解决方案。最近引入的自主流入控制装置(AICD)旨在限制不需要的阶段(气体和水),(部分)克服井完成设计阶段的水库不确定性的结果。自动流入控制阀(AICVS)是下一代流量控制技术,旨在在完成关节处几乎关闭不需要的流体流入。本文描述了集成井/储层模拟器的第一个AICV建模工作流程。应用允许水库和良好的工程师来量化通过这种新的下孔完成技术的最佳用途添加的值。工作流程已被用于比较在模仿较大的北海领域的合成,油轮储层模型中的高级井完成选项(AICV和ICDS)的性能,其中生产由气体引导问题为主.Down-Hole流量控制与ICDS和常规井相比,AICVS显着提高了利用井口扼流圈控制的常规井。不满的流体产量也降低了高达80%;结果结合了更高的石油回收,通过AICV完成更有效地利用储层能量。

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