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Repeatedly Increased Efficiency and Success Rate From a New Solids-Cleanout Process Using Coiled Tubing: A Review of Recent Achievements From Over 100 Operations

机译:使用盘管的新固体清洁过程反复提高效率和成功率:从100多个操作中审查最近的成就

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Solids-cleanouts using Coiled Tubing (CT) remain a major part of total activity in the CT industry. Due to the multitude of parameters that influence solids-transport, it can be very challenging to design and successfully execute solidscleanouts with CT in highly deviated, larger wellbores with e.g. 7” production tubing, or even larger tubulars installed. Numerous papers have been written about the development of wiper trip cleanout technology and associated engineering design tools, but this paper is instead focused on important practical issues that directly impact the effective implementation of wiper trip technology in the field. This paper presents the results and lessons learned based on a database, which was compiled from more than 100 solidscleanout operations using “wiper trip” methodologies. Results will be presented showing how the wiper trip cleanout methodology has improved cleanout efficiency and success rate. Examples are presented showing how the effectiveness of cleanout-bottom hole assemblies (BHA’s) involving positive displacement motors (PDMs) and mills has been improved, while simultaneously reducing stress on surface equipment during the operation. Circulation rates higher than specified maximum rates for the PDM are being used without danger of damaging the PDM while reducing the total volume pumped through the PDM during the cleanout by 80-90%. Larger outer diameter (OD) items in the BHA are kept clean of solids while wiper tripping, reducing the risk of stuck CT and protecting sensitive completion components from undesirable interactions with the PDM/mill-BHA. Multiple wiper trips can be performed in one run without the use of drop balls, while having the ability of using selected functions of critical BHA components and full-size drifting of the wellbore for subsequent operations. Field proven procedures are explained, allowing solids-loading in the annulus to be controlled and reduced when necessary, as well as estimates of solidsvolumes during the cleanout to be established, based on feedback from the cleanout BHA before any solids have actually reached surface.
机译:使用盘绕管(CT)的固体清洁仍然是CT行业总活动的主要部分。由于影响固体运输的众多参数,设计并成功地使用CT在高度偏差的较大井筒中成功执行固体切换非常具有挑战性。 7“安装管,甚至更大的管子安装。众多论文已经编写了关于刮水休闲洁净技术和相关工程设计工具的发展,但本文集中在重要的实际问题上,直接影响现场刮水器旅行技术的有效实施。本文介绍了基于数据库中学到的结果和经验教训,该数据库使用“刮水器跳闸”方法从100多个固体性能操作编译。将显示结果,展示了刮水器巡回清理方法如何提高清洁效率和成功率。提出了示出涉及正排量电动机(PDMS)和研磨机的清洁底孔组件(BHA)的有效性的实施例已经得到改善,同时在操作期间同时降低表面设备的应力。正在使用高于指定PDM的最大速率的循环速率,而不会损坏PDM的危险,同时减少在清洁期间通过PDM泵送的总体积达到80-90%。刮水器跳闸时,BHA中的较大外径(OD)物品在刮水器跳闸时保持干净的固体,从而从与PDM / MILL-BHA的不希望的相互作用降低卡住CT的风险并保护敏感性完成组分。可以在一个运行中执行多个刮水器,而无需使用下落球,同时具有使用临界BHA组件的所选功能和井筒的全尺寸漂移的能力进行后续操作。解释了现场经过验证的程序,允许在必要时控制和减少环状的固体加载,以及在任何固体实际达到表面之前的清除BHA的反馈期间确定在待遇期间的固体卷曲。

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