阿曼高压高温深气井首个套管后光纤装置

Sultan Salim Al Shoaibi, J. Florez, S. Farsi, A. Hinai, Alvaro Nunez, Petrus In ‘T Panhuis, A. Taha, Melis Van der Horst, Derrick Melanson, M. Wojtaszek, Evert Moes, K. Mccoy
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引用次数: 0

摘要

本文讨论了在阿曼PDO的一口垂直高压高温深气井中首次安装光纤(FO)。在生产套管后成功安装并固井了特殊设计的光纤电缆,随后在不损坏电缆的情况下进行定向射孔。本文还介绍了随后如何使用光纤电缆获取分布式声学传感(DAS)和分布式温度传感(DTS)数据,用于水力压裂诊断。光纤监测在油井和油藏监测中越来越重要。光纤安装的复杂性会影响到井的设计,这是需要重点关注的因素之一,特别是当光纤安装在套管后面时。对套管设计、井口设计、射孔策略和测井要求的影响都将被讨论。为了很好地完成与一个永久的光纤电缆,需要遵循几个关键程序,包括:修改井口的设计包括引线电缆端口;优化水泥设计,实施严格的程序,确保电缆安装在套管不困;改变穿孔逐步以避免损坏电缆;映射的位置面向电缆允许枪字符串的电缆。光纤电缆本身需要设计成在安装和完井(射孔/压裂)过程中不会被损坏的保护方式。此外,还对电缆进行了优化,以提高其可探测性,以帮助定向射孔。与常规浅水注水井或采油井相比,深井气井的完整性问题更应受到重视。具体来说,应该避免任何与不必要的气体泄漏有关的风险,无论是通过控制线,劣质水泥还是由于其他设计错误。在深气井中,高温高压也会对电缆的预期寿命产生很大影响。最后,采用“桥塞射孔”技术,分四个阶段对该井进行水力压裂,在此期间,连续获取DAS和DTS数据,并覆盖井的所有深度。这些数据为每个压裂段的有效性提供了有价值的信息,可用于分析筛出和检测层外注入,并可为未来水力压裂设计的优化提供建议。光纤数据还与其他裸眼数据相结合,以更好地了解储层动态。下一步将获取重复的延时DAS和DTS数据进行生产分析,以更深入地了解水力压裂作业对长期生产性能的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The First Behind-Casing Fiber-Optic Installation in a High-Pressure High-Temperature Deep Gas Well in Oman
This paper discusses the first fiber-optic (FO) installation in a vertical high-pressure high-temperature deep gas well in PDO, Oman. A specially designed fiber-optic cable was successfully installed and cemented behind the production casing, which was subsequently perforated in an oriented manner without damaging the cable. This paper also describes how the fiber-optic cable was used afterwards to acquire Distributed Acoustic Sensing (DAS) and Distributed Temperature Sensing (DTS) data for the purpose of hydraulic fracturing diagnostics. Fiber-optic surveillance is becoming an increasingly important activity for well and reservoir surveillance. The added complexity of the fiber-optic installation will affect the well design, which is one of the elements that requires focused attention, especially when the fiber is installed behind casing. The impact on casing design, wellhead design, perforation strategy, and logging requirements will all be discussed. In order for a well to be completed with a permanent fiber-optic cable, a few critical procedures need to be followed, including: –modifying the wellhead design to include feedthrough ports for the cable;–optimizing the cement design;–imposing strict procedures to ensure the cable is installed behind the casing without getting stuck;–changing the perforation phasing to avoid damaging the cable;–mapping the location of the cable to allow the gun string to be oriented away from the cable. The fiber-optic cable itself needed to be designed to be protected in such a way that it would not be damaged during installation and completion (perf/frac) activities. Furthermore, the cable was also optimized to improve its detectability, to aid the oriented perforation. In deep gas wells, much more than in conventional shallow water injectors or oil producers, the well integrity aspect should be given special attention. Specifically, any risks related to unwanted gas leaks, either through the control line, poor cement, or because of other design errors should be avoided. In deep gas wells, high temperature and pressure will also play a big role in the expected lifespan of the cable. Finally, the well was hydraulically fractured in four stages, using the "plug-and-perf" technique, during which DAS and DTS data were acquired continuously and across all depths of the well. The data provided valuable information on the effectiveness of each of the frac stages, it could be used to analyze screen-outs and detect out-of-zone injection, and recommendations for the optimizations of future hydraulic frac designs could be derived. The fiber-optic data were also integrated with other open-hole data for improved understanding of the reservoir performance. The next step will be to acquire repeated time-lapse DAS and DTS data for production profiling, to gain more insights of how the long-term production performance is affected by the hydraulic frac operations.
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