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外部粘贴纤维增强复合材料(FRP)混凝土结构的无损检测:全面综述

Nondestructive Testing of Externally Bonded FRP Concrete Structures: A Comprehensive Review.

作者信息

Alsuhaibani Eyad

机构信息

Department of Civil Engineering, College of Engineering, Qassim University, Buraidah 52571, Saudi Arabia.

出版信息

Polymers (Basel). 2025 May 7;17(9):1284. doi: 10.3390/polym17091284.

Abstract

The growing application of Fiber-Reinforced Polymer (FRP) composites in rehabilitating deteriorating concrete infrastructure underscores the need for reliable, cost-effective, and automated nondestructive testing (NDT) methods. This review provides a comprehensive analysis of existing and emerging NDT techniques used to assess externally bonded FRP (EB-FRP) systems, emphasizing their accuracy, limitations, and practicality. Various NDT methods, including Ground-Penetrating Radar (GPR), Phased Array Ultrasonic Testing (PAUT), Infrared Thermography (IRT), Acoustic Emission (AE), and Impact-Echo (IE), are critically evaluated in terms of their effectiveness in detecting debonding, voids, delaminations, and other defects. Recent technological advancements, particularly the integration of artificial intelligence (AI) and machine learning (ML) in NDT applications, have significantly improved defect characterization, automated inspections, and real-time data analysis. This review highlights AI-driven NDT approaches such as automated crack detection, hybrid NDT frameworks, and drone-assisted thermographic inspections, which enhance accuracy and efficiency in large-scale infrastructure assessments. Additionally, economic considerations and cost-performance trade-offs are analyzed, addressing the feasibility of different NDT methods in real-world FRP-strengthened structures. Finally, the review identifies key research gaps, including the need for standardization in FRP-NDT applications, AI-enhanced defect quantification, and hybrid inspection techniques. By consolidating state-of-the-art research and emerging innovations, this paper serves as a valuable resource for engineers, researchers, and practitioners involved in the assessment, monitoring, and maintenance of FRP-strengthened concrete structures.

摘要

纤维增强聚合物(FRP)复合材料在修复日益恶化的混凝土基础设施中的应用不断增加,这凸显了对可靠、经济高效且自动化的无损检测(NDT)方法的需求。本综述对用于评估外部粘结FRP(EB-FRP)系统的现有和新兴无损检测技术进行了全面分析,强调了它们的准确性、局限性和实用性。对各种无损检测方法,包括探地雷达(GPR)、相控阵超声检测(PAUT)、红外热成像(IRT)、声发射(AE)和冲击回波(IE),在检测脱粘、空隙、分层和其他缺陷方面的有效性进行了严格评估。最近的技术进步,特别是人工智能(AI)和机器学习(ML)在无损检测应用中的集成,显著改善了缺陷表征、自动检测和实时数据分析。本综述重点介绍了人工智能驱动的无损检测方法,如自动裂纹检测、混合无损检测框架和无人机辅助热成像检测,这些方法提高了大规模基础设施评估的准确性和效率。此外,还分析了经济因素和成本效益权衡,探讨了不同无损检测方法在实际FRP加固结构中的可行性。最后,综述确定了关键的研究差距,包括FRP无损检测应用中的标准化需求、人工智能增强的缺陷量化以及混合检测技术。通过整合最新研究和新兴创新,本文为参与FRP加固混凝土结构评估、监测和维护的工程师、研究人员和从业人员提供了宝贵的资源。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f8e4/12073467/2a0c7db7e7bd/polymers-17-01284-g002a.jpg

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