王还伟,马英文,蔡文军,等. 基于分布式光纤传感的油气井井筒完整性全生命周期监测综述[J]. 石油钻采工艺,2026,48(3):273-285. DOI: 10.13639/j.odpt.202511035
引用本文: 王还伟,马英文,蔡文军,等. 基于分布式光纤传感的油气井井筒完整性全生命周期监测综述[J]. 石油钻采工艺,2026,48(3):273-285. DOI: 10.13639/j.odpt.202511035
WANG Haiwei, MA Yingwen, CAI Wenjun, et al. A review of full life-cycle monitoring for oil and gas wellbore integrity based on distributed fiber optic sensing[J]. Oil Drilling & Production Technology, 2026, 48(3): 273-285. DOI: 10.13639/j.odpt.202511035
Citation: WANG Haiwei, MA Yingwen, CAI Wenjun, et al. A review of full life-cycle monitoring for oil and gas wellbore integrity based on distributed fiber optic sensing[J]. Oil Drilling & Production Technology, 2026, 48(3): 273-285. DOI: 10.13639/j.odpt.202511035

基于分布式光纤传感的油气井井筒完整性全生命周期监测综述

A review of full life-cycle monitoring for oil and gas wellbore integrity based on distributed fiber optic sensing

  • 摘要: 井筒完整性是油气井安全运行的核心保障,其失效可能引发严重的经济损失、环境风险与安全事故。随着油气勘探开发向深海、深层及非常规资源领域拓展,井下高温、高压与强腐蚀复杂环境条件对监测技术提出了更高要求。传统监测方法如噪声测井、水泥胶结测井等存在空间覆盖有限、实时性差等不足之处。分布式光纤传感(DFOS)技术凭借其全井段连续覆盖、高时空分辨率、抗电磁干扰及长期稳定性等优势,已成为井筒完整性监测领域的革命性工具。本文系统综述了分布式温度传感(DTS)、分布式声学传感(DAS)、分布式应变传感(DSS)与分布式温度-应变传感(DTSS)等关键光纤技术的原理及其在井筒泄漏检测、水泥环完整性评估、套管应力与变形监测、环空压力与流体窜流识别等方面的技术研究及应用进展。通过深入分析近十余年来的代表性研究,总结了DFOS技术在极端环境适应性、海量数据处理、部署成本与技术协同等方面面临的挑战,并展望了其未来发展方向,包括智能化解译算法、新型传感材料、多技术融合、标准化数据库建设以及低成本作业模式等。本综述旨在为科研人员与工程实践提供理论参考与应用指导,推动光纤传感技术在井筒完整性管理中的深化应用与创新发展。

     

    Abstract: Wellbore integrity serves as a critical guarantee for the safe operation of oil and gas wells, and its failure can lead to severe economic losses, environmental risks, and safety incidents. As hydrocarbon exploration and development extend into deep water, deep formation, and unconventional resources, the complex downhole environments characterized by high temperature, high pressure, and strong corrosion impose higher demands on monitoring technologies. Traditional monitoring methods, such as noise logging and cement bond logging, suffer from limitations including limited spatial coverage and poor real-time performance. Distributed Fiber Optic Sensing (DFOS) technology, leveraging its advantages of full-well continuous coverage, high spatio-temporal resolution, immunity to electromagnetic interference, and long-term stability, has emerged as a revolutionary tool for wellbore integrity monitoring. This paper systematically reviews the principles, research and application progress of key DFOS technologies—including Distributed Temperature Sensing (DTS), Distributed Acoustic Sensing (DAS), Distributed Strain Sensing (DSS), and Distributed Temperature and Strain Sensing (DTSS)—in areas such as wellbore leak detection, cement sheath integrity evaluation, casing stress and deformation monitoring, annular pressure and fluid channeling identification. By analyzing representative studies over the past decade, this review summarizes the challenges faced by DFOS technology in terms of adaptability to extreme environments, processing of massive datasets, deployment costs, and technical integration. Furthermore, it outlines future development directions, encompassing intelligent interpretation algorithms, novel sensing materials, multi-technology integration, standardized database establishment, and low-cost operation modes. This review aims to provide theoretical reference and practical guidance for researchers and engineers, promoting the deeper application and innovative development of fiber optic sensing technology in wellbore integrity management.

     

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