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

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. Thr...

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Main Authors: Tianyong Jiang, Yue Hong, Junbo Zheng, Lei Wang, Haichang Gu
Format: Article
Language:English
Published: MDPI AG 2019-04-01
Series:Sensors
Subjects:
Online Access:https://www.mdpi.com/1424-8220/19/9/1979
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spelling doaj-67d8e07ee79e44969e754c14f94dc5232020-11-25T00:52:33ZengMDPI AGSensors1424-82202019-04-01199197910.3390/s19091979s19091979Crack Detection of FRP-Reinforced Concrete Beam Using Embedded Piezoceramic Smart AggregatesTianyong Jiang0Yue Hong1Junbo Zheng2Lei Wang3Haichang Gu4School of Civil Engineering, Changsha University of Science and Technology, Changsha 410114, ChinaSchool of Civil Engineering, Changsha University of Science and Technology, Changsha 410114, ChinaCentral-Southern Safety & Environment Technology Institute Co., Ltd., Wuhan 430051, ChinaSchool of Civil Engineering, Changsha University of Science and Technology, Changsha 410114, ChinaDepartment of Mechanical Engineering, University of Houston, Houston, TX 77204, USAIn 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.https://www.mdpi.com/1424-8220/19/9/1979fiber-reinforced polymer (FRP) reinforced concrete beampiezoceramic transducersmart aggregates (SAs)concrete crack damagewavelet packet energy
collection DOAJ
language English
format Article
sources DOAJ
author Tianyong Jiang
Yue Hong
Junbo Zheng
Lei Wang
Haichang Gu
spellingShingle Tianyong Jiang
Yue Hong
Junbo Zheng
Lei Wang
Haichang Gu
Crack Detection of FRP-Reinforced Concrete Beam Using Embedded Piezoceramic Smart Aggregates
Sensors
fiber-reinforced polymer (FRP) reinforced concrete beam
piezoceramic transducer
smart aggregates (SAs)
concrete crack damage
wavelet packet energy
author_facet Tianyong Jiang
Yue Hong
Junbo Zheng
Lei Wang
Haichang Gu
author_sort Tianyong Jiang
title Crack Detection of FRP-Reinforced Concrete Beam Using Embedded Piezoceramic Smart Aggregates
title_short Crack Detection of FRP-Reinforced Concrete Beam Using Embedded Piezoceramic Smart Aggregates
title_full Crack Detection of FRP-Reinforced Concrete Beam Using Embedded Piezoceramic Smart Aggregates
title_fullStr Crack Detection of FRP-Reinforced Concrete Beam Using Embedded Piezoceramic Smart Aggregates
title_full_unstemmed Crack Detection of FRP-Reinforced Concrete Beam Using Embedded Piezoceramic Smart Aggregates
title_sort crack detection of frp-reinforced concrete beam using embedded piezoceramic smart aggregates
publisher MDPI AG
series Sensors
issn 1424-8220
publishDate 2019-04-01
description 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.
topic fiber-reinforced polymer (FRP) reinforced concrete beam
piezoceramic transducer
smart aggregates (SAs)
concrete crack damage
wavelet packet energy
url https://www.mdpi.com/1424-8220/19/9/1979
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AT yuehong crackdetectionoffrpreinforcedconcretebeamusingembeddedpiezoceramicsmartaggregates
AT junbozheng crackdetectionoffrpreinforcedconcretebeamusingembeddedpiezoceramicsmartaggregates
AT leiwang crackdetectionoffrpreinforcedconcretebeamusingembeddedpiezoceramicsmartaggregates
AT haichanggu crackdetectionoffrpreinforcedconcretebeamusingembeddedpiezoceramicsmartaggregates
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