Carbon Composite Technologies Combine with the Latest High Performance Downhole Tractor to Gather Production Data from Deeper than Ever Before, Logging 32 Compartments Over 25,000ft Horizontally to a Total Depth of 40,600ft

D. Troup, Gladwin Correia, S. Murchie, Stian Løvås, K. Nasr
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Abstract

The ability to intervene in extreme extended reach wells using conventional technology has lagged behind the ability to drill and complete them. This paper intends to describe how the physical properties inherent in carbon composite materials provide a means of deploying logging tools into such a well in combination with a high-performance tractor, and to document a case study where a total depth of 40,600 feet (ft) was achieved against a production flow of 6,500 barrels of oil per day (BOPD). Extending the distance that a toolstring may be conveyed into a horizontal well by means of tractoring devices is well established. The medium for the conveyance becomes the critical component of the system to both maximise the ultimate depth achievable and to ensure safe retrieval. Low friction, low weight and high strength of the rod all combine to reduce required tractor loading and ensure safe recovery. The rod rigidity confers exceptional depth accuracy and removes the potential of tool-lift at high production rates, allowing logging under conditions that are truly representative of commercial well operation. A well that was drilled to a depth in excess of 40,000ft measured depth, with a trajectory designed to maximise the contact between wellbore and reservoir, was completed with a limited entry liner. A total of 37 compartments with lengths between 700ft and 900ft were separated with swell packer assemblies along a horizontal section of 25,000ft. Critical information about the production flow, including toe/heel balance, had been unavailable because of the limitations imposed by the available intervention methods. The intervention was designed to fully exploit the physical properties of the carbon composite rod in combination with the most efficient in-well controlled tractoring technology available, and aimed to reach deeper than 40,000ft. Simulations based on previous experience showed that this depth would be achievable with the tractor chosen and further that this could be achieved even with the well flowing at rates of over 5,000BOPD. This meant that deferred production could be minimised along with waiting periods for flow stabilisation. The intervention was successfully concluded in a single operation, gathering production data from as deep as 40,600ft. Performance of both rod and tractor aligned with planning simulations with significant margin, indicating further performance enhancements in reach being readily achievable. Drilling of such extended reach wells from existing islands will reduce well counts, accelerate development and increase oil recovery by unlocking reserves from the tight rock and areas that are currently unreachable from existing islands and wellhead platforms. Technology solutions like carbon composite rod and high-performance tractors enable the operators to acquire production logs & perform well services effectively to maintain the life cycle of extended reach wells inaccessible with conventional solutions.
碳复合材料技术与最新的高性能井下爬行器相结合,可以从前所未有的深度收集生产数据,在水平深度超过25,000英尺,总深度为40,600英尺,测量了32个隔室
使用常规技术对大位移井进行干预的能力落后于钻井和完井的能力。本文旨在描述碳复合材料固有的物理特性如何提供一种将测井工具与高性能牵引器结合使用的方法,并记录了一个案例研究,该案例研究的总深度为40600英尺(ft),生产流量为6500桶/天(BOPD)。通过牵引装置延长工具串进入水平井的距离已经得到了很好的验证。传输介质成为系统的关键组成部分,既可以最大限度地实现最终深度,又可以确保安全回收。低摩擦、低重量和高强度的抽油杆结合在一起,减少了牵引车所需的载荷,确保了安全回收。杆的刚性提供了卓越的深度精度,并消除了在高产量下工具举升的潜力,允许在真正代表商业井作业的条件下进行测井。一口井的测量深度超过40000英尺,其轨迹设计旨在最大限度地扩大井筒与油藏之间的接触,并使用有限的尾管完成。在2.5万英尺的水平段,通过膨胀封隔器组合将37个长度在700英尺到900英尺之间的隔室分开。由于现有修井方法的限制,无法获得有关生产流程的关键信息,包括脚趾/脚跟平衡。该修井作业旨在充分利用碳复合杆的物理特性,结合最有效的井内控制牵引技术,目标是达到40000英尺以上的深度。基于以往经验的模拟表明,选择牵引器可以达到这个深度,并且即使井的流量超过5000桶/天,也可以达到这个深度。这意味着可以最大限度地减少延迟生产以及流量稳定的等待时间。修井作业在一次作业中成功完成,收集了深度达40,600英尺的生产数据。抽油杆和牵引器的性能与规划模拟结果一致,且有很大的差距,这表明进一步的性能提升是可以实现的。在现有岛屿上钻探这种大位移井将减少井数,加速开发,并通过释放致密岩石和现有岛屿和井口平台目前无法到达的区域的储量来提高石油采收率。碳复合杆和高性能牵引车等技术解决方案使作业者能够获取生产测井数据,并有效地进行油井服务,以维持常规解决方案无法实现的大位移井的生命周期。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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