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April 12, 2026Energies0 citationsOpen Access

Applications of Distributed Optical Fiber Sensing Technology in Wellbore Leakage Monitoring and Its Integrity Analysis of Underground Gas Storage

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ZLZhentao LiXZXianjian ZouPWPengtao Wu

Key Points

  • The research aims to enhance wellbore integrity monitoring in underground gas storage facilities by utilizing advanced sensing technology.
  • Developed a real-time monitoring framework using distributed fiber optic sensing technology.
  • Integrated distributed temperature sensing (DTS) for identifying temperature anomalies.
  • Utilized distributed acoustic sensing (DAS) to detect acoustic signatures of gas leakage.
  • Conducted field trials to evaluate the effectiveness of the monitoring system.
  • Achieved leakage localization accuracy within 1.0 m.
  • Successfully distinguished normal operational signals from abnormal leakage characteristics.
  • No wellbore integrity compromise detected during monitoring; only minor noise from surface construction.

Abstract

With the exponential growth of natural gas reserves and utilization scale in China, underground gas storage (UGS) facilities—critical infrastructure within the natural gas production-supply-storage-sales system—have entered a phase of rapid expansion. As the core component connecting subsurface reservoirs with surface systems, wellbore integrity directly influences operational safety and service lifespan of UGS facilities. However, current leakage detection and integrity analysis methodologies for gas storage wellbores remain deficient in effective real-time monitoring capabilities. Traditional methods, however, are constrained by limited spatial coverage and insufficient precision, rendering them inadequate for comprehensive, continuous safety monitoring requirements. To address this industry challenge, this study proposes a real-time wellbore integrity monitoring framework based on distributed fiber optic sensing technology, integrating distributed temperature sensing (DTS) and distributed acoustic sensing (DAS) devices into a synergistic monitoring system. The DTS component enables preliminary localization of potential leakage points through detection of minute temperature anomalies along the wellbore, while the DAS unit accurately identifies acoustic signatures caused by gas leakage within casings via monitoring of acoustic vibration signals propagating along the optical fiber. Through joint analysis of DTS and DAS data streams, real-time diagnosis of wellbore leakage events and integrity status can be achieved. Field trials demonstrated that this hybrid monitoring system achieved leakage localization accuracy within 1.0 m, effectively distinguishing normal operational signals from abnormal leakage characteristics. During actual monitoring operations, no indications of wellbore integrity compromise were detected; only minor noise and interference signals originating from surface construction activities were observed.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/69db37774fe01fead37c56f5https://doi.org/10.3390/en19081859
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