地铁盾构隧道结构病害检测技术综述

A review of detection technology for structural diseases in metro shield tunnels

  • 摘要: 地铁盾构隧道结构健康直接关系城市运营安全。文中系统剖析渗水、裂缝和错台等病害的多维交互成因,并深度评述主流检测技术的局限,包括:光纤传感成本高且安装复杂;三维激光扫描难以探测内部缺陷;红外热成像对深层病害识别不足;地质雷达(GPR)解译高度依赖经验;基于动力特性的方法(VMD)易受环境噪声干扰;深度学习需海量标注数据且泛化能力有限等。核心瓶颈在于单一技术无法满足全生命周期、多维度病害的精准感知需求。突破关键在于构建多源异构数据融合框架。该框架旨在整合表观扫描(激光/红外)、内部探测、分布式响应(光纤)、整体动力特性(振动)及环境参数等数据,并通过统一时空基准来消除信息孤岛。通过同步发展物理机制与数据驱动耦合的智能决策模型(融合数字孪生与贝叶斯更新),实现从被动检测到主动预警,再到状态评估,最终到优化维护决策的三级跃升。多源感知与智能决策协同创新,是攻克隐蔽病害诊断难题、实现安全与运维效能双优化的根本路径。

     

    Abstract: The structural health of subway shield tunnels is directly related to the safety of urban operations. In this paper, we systematically analyze the multi-dimensional interactive causes of water seepage, cracks, misalignments, etc., and review the limitations of mainstream inspection techniques in depth: fiber optic sensing is expensive and complicated to install; 3D laser scanning is difficult to detect internal defects; infrared thermography is insufficient to identify the deep-seated defects; geo-radar (GPR) interpretation is highly dependent on experience; methods based on dynamical properties (VMD) are susceptible to interference from ambient noise; deep learning requires massive labeled data and has limited generalization capability. The core bottleneck is that a single technology cannot meet the demand for accurate sensing of the whole life cycle and multi-dimensional diseases. The breakthrough direction requires the construction of a multi-source heterogeneous data fusion framework-integrating apparent scanning (laser/infrared), internal detection, distributed response (fiber optic), overall dynamic characteristics (vibration) and environmental parameters, and eliminating information silos through a unified spatial and temporal reference. Synchronized development of intelligent decision-making models coupled with physical mechanisms and data-driven (fusion of digital twins and Bayesian updating), realizing a three-level leap from passive detection to active warning to condition assessment to optimized maintenance decision-making. The collaborative innovation of multi-source perception and intelligent decision-making is the fundamental path to overcome the problem of hidden disease diagnosis and realize the double optimization of safety and operation and maintenance efficiency.

     

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