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PZT传感器网络不同配置在反复加载下纤维增强混凝土棱柱体损伤检测中的效能

Efficacy of PZT Sensors Network Different Configurations in Damage Detection of Fiber-Reinforced Concrete Prisms under Repeated Loading.

作者信息

Naoum Maria C, Papadopoulos Nikos A, Sapidis George M, Voutetaki Maristella E

机构信息

Laboratory of Reinforced Concrete and Seismic Design of Structures, Civil Engineering Department, School of Engineering, Democritus University of Thrace, 67100 Xanthi, Greece.

Architectural Engineering Department, School of Engineering, Democritus University of Thrace, 67100 Xanthi, Greece.

出版信息

Sensors (Basel). 2024 Aug 30;24(17):5660. doi: 10.3390/s24175660.

Abstract

Real-time structural health monitoring (SHM) and accurate diagnosis of imminent damage are critical to ensure the structural safety of conventional reinforced concrete (RC) and fiber-reinforced concrete (FRC) structures. Implementations of a piezoelectric lead zirconate titanate (PZT) sensor network in the critical areas of structural members can identify the damage level. This study uses a recently developed PZT-enabled Electro-Mechanical Impedance (EMI)-based, real-time, wireless, and portable SHM and damage detection system in prismatic specimens subjected to flexural repeated loading plain concrete (PC) and FRC. Furthermore, this research examined the efficacy of the proposed SHM methodology for FRC cracking identification of the specimens at various loading levels with different sensor layouts. Additionally, damage quantification using values of statistical damage indices is included. For this reason, the well-known conventional static metric of the Root Mean Square Deviation (RMSD) and the Mean Absolute Percentage Deviation (MAPD) were used and compared. This paper addresses a reliable monitoring experimental methodology in FRC to diagnose damage and predict the forthcoming flexural failure at early damage stages, such as at the onset of cracking. Test results indicated that damage assessment is successfully achieved using RMSD and MAPD indices of a strategically placed network of PZT sensors. Furthermore, the Upper Control Limit (UCL) index was adopted as a threshold for further sifting the scalar damage indices. Additionally, the proposed PZT-enable SHM method for prompt damage level is first established, providing the relationship between the voltage frequency response of the 32 PZT sensors and the crack propagation of the FRC prisms due to the step-by-step increased imposed load. In conclusion, damage diagnosis through continuous monitoring of PZTs responses of FRC due to flexural loading is a quantitative, reliable, and promising application.

摘要

实时结构健康监测(SHM)以及对即将发生的损伤进行准确诊断对于确保传统钢筋混凝土(RC)和纤维增强混凝土(FRC)结构的结构安全至关重要。在结构构件的关键区域实施压电锆钛酸铅(PZT)传感器网络可以识别损伤程度。本研究在承受弯曲反复荷载的棱柱形素混凝土(PC)和FRC试件中,使用了一种最近开发的基于PZT的机电阻抗(EMI)、实时、无线且便携式的SHM和损伤检测系统。此外,本研究还考察了所提出的SHM方法在不同加载水平和不同传感器布局下对FRC试件裂缝识别的有效性。此外,还包括使用统计损伤指数值进行损伤量化。为此,使用并比较了著名的传统均方根偏差(RMSD)和平均绝对百分比偏差(MAPD)静态指标。本文提出了一种在FRC中可靠的监测实验方法,用于诊断损伤并预测早期损伤阶段(如开裂开始时)即将发生的弯曲破坏。试验结果表明,使用精心布置的PZT传感器网络的RMSD和MAPD指数能够成功实现损伤评估。此外,采用上控制限(UCL)指数作为进一步筛选标量损伤指数的阈值。此外,首次建立了所提出的用于快速确定损伤水平的PZT启用SHM方法,给出了32个PZT传感器的电压频率响应与由于逐步增加的施加荷载导致的FRC棱柱体裂缝扩展之间的关系。总之,通过连续监测FRC在弯曲荷载作用下PZT的响应来进行损伤诊断是一种定量、可靠且有前景的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/02f7/11398003/250e944bec6d/sensors-24-05660-g001.jpg

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