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分布式光纤传感技术在地下储气井实时监测中的大规模实验验证
Large-Scale Experimental Validation of Real-Time Monitoring in Underground Gas Storage Wells Using Distributed Fiber Optic Sensing
| 作者 | Linqing Luo · Diana Abdulhameed · Gang Tao · Tianchen Xu · Jiangnan Wang · David Xu |
| 期刊 | IEEE Access |
| 出版日期 | 2025年1月 |
| 技术分类 | 储能系统技术 |
| 技术标签 | 储能系统 |
| 相关度评分 | ★★★★ 4.0 / 5.0 |
| 关键词 | 地下储气库 分布式光纤传感 井筒完整性监测 气体泄漏检测 实时管理 |
语言:
中文摘要
地下储气库UGS对平衡天然气供需至关重要,但面临井变形和气体泄漏等多重风险。现有井检测方法常需暂停运营,导致检测频率低且延迟问题发现。本研究探索分布式光纤传感DFOS技术,集成分布式温度DTS和应变DSS传感,实现不干扰井运行的完整性监测。由于在运行井引入风险不切实际,进行了实验室模拟井筒测试,包括温度变化、气体泄漏检测和加速循环压力测试。设计新型井下光纤电缆用单根光纤测量温度和应变。结果显示DFOS系统可识别注气和采气运营的热事件、旧井套管泄漏,以及新建井套管后水泥泄漏,最低检测泄漏率1.5升/分钟。仿真压力循环中,系统检测到微小应变变化和管柱变形,显示早期检测管柱失效的潜力。
English Abstract
Underground gas storage (UGS) is essential for balancing the natural gas supply and demand, but faces multiple risk factors, including well deformation and gas leaks. Current well investigation methods often require suspending operations, resulting in infrequent inspections and delayed detection of potential issues. This study investigated the sensitivity of distributed fiber optic sensing (DFOS) that integrates distributed temperature (DTS) and strain sensing (DSS) for well integrity monitoring without disturbing the well operations. Due to the impracticality of introducing risks to operational wells, laboratory simulated wellbore tests were conducted to simulate gas leak events and pressure cycles. These tests included temperature variation, gas leak detection, and accelerated cyclic pressure testing to simulate various UGS well operation environments and signals associated with leak events. To measure temperature and strain using a single optical fiber cable for installation simplicity, a new downhole optical fiber cable was designed. The results showed that the DFOS system could identify thermal events from gas injection and withdrawal operations, and leaks at tubing in old boreholes. It also successfully detected gas leaks through the cement behind the casing for newly constructed borehole, with a minimum leak rate of 1.5 LPM (Liter Per Minute). During simulated pressure cycles, the DFOS system detected small strain changes and minor tubing deformations, highlighting its potential for early detection of tubing failure. Additionally, the optical fiber remained intact after 500 pressure cycles demonstrating the robustness of the proposed installation method. These findings validate a new methodology for proactive real-time UGS well integrity management.
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SunView 深度解读
该光纤传感技术对阳光电源压缩空气储能和氢能系统具有重要应用价值。阳光在新型储能领域布局压缩空气储能和绿氢项目,需要可靠的气体泄漏监测技术。该DFOS系统的分布式温度和应变监测能力可应用于阳光储能系统的管道和容器监测,实现实时泄漏检测和结构健康评估。结合阳光储能变流器的边缘计算能力,该技术可集成到智慧能源管理平台,提供预测性维护功能,提升系统安全性,降低运维成本,支持大规模储能系统的长期稳定运行。