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基于嵌入式压电陶瓷智能骨料的纤维增强塑料(FRP)加固混凝土梁裂缝检测

Crack Detection of FRP-Reinforced Concrete Beam Using Embedded Piezoceramic Smart Aggregates.

作者信息

Jiang Tianyong, Hong Yue, Zheng Junbo, Wang Lei, Gu Haichang

机构信息

School of Civil Engineering, Changsha University of Science and Technology, Changsha 410114, China.

Central-Southern Safety & Environment Technology Institute Co., Ltd., Wuhan 430051, China.

出版信息

Sensors (Basel). 2019 Apr 27;19(9):1979. doi: 10.3390/s19091979.

Abstract

In this paper, the authors present a stress wave-based active sensing method to detect the crack in FRP-reinforced concrete beams. The embedded smart aggregates (SAs), which utilize Lead Zirconate Titanate (PZT) as transducers, are employed in this research to generate and sense the stress wave. Three specimens are involved in the experimental program and each is made of concrete, longitudinal distributed reinforcement, steel stirrups, main bar (FRP bar or steel bar), and four SAs. A pair of SAs installed on the lower part of the main bar and the other pair of SAs mounted on the upper part of main bar are utilized to monitor the crack occurrence and development in the three test specimens. The signals received by the SA sensors are analyzed in both time domain and frequency domain. The wavelet packet energy is used to extract damage features. The applied load-vertical displacement curves of mid-span in the specimen are obtained. Experimental results show the test specimens experience crushing failure when the concrete compression exceeds its compressive strength. Increasing the contact area between FRP bar and concrete can effectively improve the cracking load of the FRP-reinforced concrete beam and reduce the cracking speed and depth of FRP-reinforced concrete beam; on the other hand, increasing the elastic modulus of the main bar can slow down the crack development of concrete on the upper side of the main bar and decrease the displacement of reinforced concrete beam during the loading test process. The research results show that the developed piezoceramic-based active sensing method, though low-cost, can monitor the crack-induced damage and estimate the process of damage degree in real-time, and has potentials to provide an early warning of crack occurrence and development for FRP-reinforced concrete beams.

摘要

在本文中,作者提出了一种基于应力波的主动传感方法来检测纤维增强塑料(FRP)加固混凝土梁中的裂缝。本研究采用以锆钛酸铅(PZT)作为换能器的嵌入式智能骨料(SA)来产生和感知应力波。试验方案涉及三个试件,每个试件均由混凝土、纵向分布钢筋、箍筋、主筋(FRP筋或钢筋)和四个SA组成。安装在主筋下部的一对SA和安装在主筋上部的另一对SA用于监测三个试件中裂缝的出现和发展。对SA传感器接收到的信号进行时域和频域分析。利用小波包能量提取损伤特征。得到了试件跨中处的施加荷载-竖向位移曲线。试验结果表明,当混凝土压应力超过其抗压强度时,试件发生压碎破坏。增加FRP筋与混凝土之间的接触面积可有效提高FRP加固混凝土梁的开裂荷载,降低FRP加固混凝土梁的开裂速度和深度;另一方面,提高主筋的弹性模量可减缓主筋上方混凝土的裂缝发展,并减小加载试验过程中钢筋混凝土梁的位移。研究结果表明,所开发的基于压电陶瓷的主动传感方法虽然成本低廉,但能够实时监测裂缝引起的损伤并估计损伤程度的发展过程,具有为FRP加固混凝土梁裂缝的出现和发展提供早期预警的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ac62/6539972/e3515fa91702/sensors-19-01979-g001.jpg

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