Well Integrity Leak Diagnostic Using Fiber-Optic Distributed Temperature Sensing and Production Logging

Joerg Abeling, U. Bartels, Kamaljeet Singh, Shaktim Dutta, Gaurav Agrawal, Apoorva Kumar
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Abstract

Fiber optics has many applications in the oil and gas industry. In recent years, fiber optics has found usefulness in leak detection. The leaks can be efficiently identified using fiber-optic distributed temperature sensing measurement, thereby mitigating the health, safety, and environmental (HSE) risk associated with well integrity. Further, a production log can be used to gain more insight and finalize a way ahead to resolve well integrity issues. An innovative solution-driven approach was defined, with fiber-optic distributed measurement playing a key role. Multiple leaks were suspected in the well completion, and a fiber-optic cable was run to identify possible areas of the leak path. After the fiber-optic data acquisition, a production log was recorded across selective depths to provide an insight on leak paths. After identifying leak depths, a definitive decision between tubular patching and production system overhaul was decided based on combined outputs of the fiber-optic acquisition and production log. Results are presented for a well where multiple leaks were successfully identified using the novel operational approach. Further, operational time was reduced from 3 days (conventional slickline memory or e-line logging performed during daylight operation) to 1 day (a combination of fiber-optic distributed temperature sensing and production log in a single run). The diagnosis of production system issues was completed in one shut-in and one flowing condition, thereby reducing the risk of HSE exposure with multiple flowing conditions (to simulate the leak while the conventional production logging tool is moved to different depths in the well). Additional insight on leak quantification was confirmed from the production log data, where one leak was noted at the tubing collar while the other leak was noted a few meters above the tubing collar. This observation was substantial in deciding whether to proceed with tubing patch or replace the entire production tubing. The novel operational approach affirms fiber-optic distributed temperature measurement's versatility in solving critical issues of operation time and reducing HSE exposure while delivering decisive information on production system issues. The paper serves as a staging area for other applications of similar nature to unlock even wider horizons for distributed temperature sensing measurement.
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利用光纤分布式温度传感和生产测井进行油井完整性泄漏诊断
光纤在石油和天然气工业中有许多应用。近年来,光纤在泄漏检测中发挥了重要作用。使用光纤分布式温度传感测量可以有效地识别泄漏,从而降低与井完整性相关的健康、安全和环境(HSE)风险。此外,生产测井可以获得更多的信息,并确定解决井完整性问题的方法。定义了一种创新的解决方案驱动方法,其中光纤分布式测量发挥了关键作用。在完井过程中发现了多处泄漏,并使用光纤电缆来确定可能的泄漏路径区域。在光纤数据采集后,在选择的深度记录生产日志,以提供对泄漏路径的洞察。在确定泄漏深度后,根据光纤采集和生产日志的综合输出,确定油管修补和生产系统检修之间的最终决定。最后给出了使用新型操作方法成功识别多处泄漏的井的结果。此外,作业时间从3天(传统的钢丝绳记忆或白天作业时进行的e-line测井)减少到1天(光纤分布式温度传感和生产测井在一次作业中结合)。生产系统问题的诊断在一次关井和一次流动条件下完成,从而降低了多种流动条件下的HSE暴露风险(在常规生产测井工具移动到井中不同深度时模拟泄漏)。生产测井数据证实了对泄漏量化的进一步了解,其中一次泄漏发生在油管接箍处,而另一次泄漏发生在油管接箍上方几米处。这一观察结果对于决定是继续使用油管补丁还是更换整个生产油管具有重要意义。这种新颖的操作方法证实了光纤分布式温度测量在解决关键操作时间问题和减少HSE暴露方面的多功能性,同时提供有关生产系统问题的决定性信息。本文为其他类似性质的应用提供了一个阶段,为分布式温度传感测量打开了更广阔的视野。
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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