Integrated Wireless Barrier Monitoring System Improves CO2 Well Intervention Efficiency

V. Azevedo, Firman Paluruan, Robert Skwara
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Abstract

An LNG plant in Australia was designed to maximize energy efficiency and minimize greenhouse gas emissions. In steady-state operations, its greenhouse gas emissions are lower than any in-country LNG project. Typically, gas supplied from two offshore fields contains CO2 (~14%) and high-volume operations run smoothly. At the time of this project, an injector well was found to have critically high CO2 levels (99%), and two other injector wells were shut-in due to pressure anomalies. A solution was needed to confirm casing isolation and detect leakage, while maintaining well barrier integrity and monitoring pressure/temperature below the tubing hanger plug. An innovative acoustic transmission platform served as a barrier assurance tool. A transmitter module (below the plug) has pressure/temperature sensors sending data through tubular/casing walls. A receiver module (above the plug) also houses pressure/temperature sensors. Once configured and deployed downhole, barrier installation is recorded, and barrier setting is verified before pressure testing. During the pressure test, sensors record pressure/temperature (in Wireline mode or fed live to surface) from either side of the barrier, confirming its integrity. The integrated wireless barrier monitoring solution exceeded customer expectations, with continuous acoustic and wireless communication maintained throughout the entire operation. Simultaneous monitoring of two wells for 500+ hours accurately documented the barrier integrity via pressure testing results. The system was run downhole in conjunction with a non-explosive slickline setting tool and retrievable bridge plug allowing to not only log the setting sequence for quality assurance but also record the pressure & temperature across the barrier. Conducted on-location, the customer was able to witness the plugs being successfully set. They then received positive confirmation of established well barrier, by continuous monitoring of the pressure between the two barriers and interpreting data from the wireless system in real time. This combined technology approach reduces time to troubleshoot and verify barriers, enabling quick evaluation of the leak source. Other benefits include significant time savings over traditional isolation methods, improving personnel safety in the well bay area by conducting real-time diagnostics, while also optimizing the suspension to allow efficient intervention or abandonment operations. The main objective of the operation was met, and verification of the shallow set plug was achieved. Barrier verification without the acoustic real-time wireless system would have been questionable. During well intervention for a major LNG plant operator in Western Australia, the novel wireless barrier monitoring solution delivered efficient, real-time pressure testing and verification to ensure success. This marks the first global installation of an integrated barrier system, combining retrievable bridge plug with wireless acoustic telemetry in supercritical CO2 disposal well. It not only allows a shallow bridge plug to be verified as a leak-free barrier, but it also enables efficient evaluation of the entire well barrier envelope.
集成无线屏障监测系统提高CO2井干预效率
澳大利亚的液化天然气工厂旨在最大限度地提高能源效率并减少温室气体排放。在稳态运行中,其温室气体排放量低于任何国内液化天然气项目。通常情况下,两个海上油田供应的天然气含有二氧化碳(~14%),并且大批量作业顺利进行。在该项目中,发现一口注入井的二氧化碳含量极高(99%),另外两口注入井由于压力异常而关闭。需要一种解决方案来确认套管隔离并检测泄漏,同时保持井眼屏障的完整性并监测油管悬挂器塞下的压力/温度。一种创新的声传输平台作为屏障保障工具。传输模块(塞下)有压力/温度传感器,通过管/套管壁发送数据。接收器模块(在插头上方)也容纳压力/温度传感器。一旦配置并部署到井下,就会记录封隔器的安装情况,并在压力测试前验证封隔器的设置。在压力测试过程中,传感器从屏障的两侧记录压力/温度(在电缆模式下或现场馈送到地面),确认其完整性。集成的无线屏障监测解决方案超出了客户的期望,在整个作业过程中保持了持续的声学和无线通信。同时监测两口井500多个小时,通过压力测试结果准确记录了屏障的完整性。该系统与非爆炸性钢丝绳坐封工具和可回收桥塞一起下入井下,不仅可以记录坐封顺序以保证质量,还可以记录隔层的压力和温度。在现场作业时,客户见证了桥塞的成功坐封。然后,通过持续监测两个屏障之间的压力,并实时解释来自无线系统的数据,他们得到了已建立的井屏障的积极确认。这种组合技术方法减少了故障排除和验证屏障的时间,能够快速评估泄漏源。与传统的隔离方法相比,该方法的其他优点还包括节省了大量时间,通过实时诊断提高了井湾区域人员的安全性,同时还优化了暂停,实现了高效的干预或弃井作业。实现了作业的主要目标,并对浅坐封桥塞进行了验证。如果没有声学实时无线系统,屏障验证将是有问题的。在西澳大利亚一家大型LNG工厂的修井作业中,新型无线屏障监测解决方案提供了高效、实时的压力测试和验证,以确保成功。这标志着全球首次安装了综合屏障系统,该系统将可回收桥塞与无线声波遥测技术结合在超临界CO2处理井中。它不仅可以验证浅桥塞是无泄漏的屏障,还可以有效地评估整个井的屏障。
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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