A Novel Slip Sensory System for Interfacial Condition Monitoring of Steel-Concrete Composite Bridges

Steel-concrete composite (SCC) beams are widely employed in bridge decks. The interfacial shear transfer between the top concrete slab and the supporting steel beams significantly affects the overall load carrying capacity and performance of a bridge deck. The inaccessibility of the connection syste...

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Main Authors: Faraz Sadeghi, Xinqun Zhu, Jianchun Li, Maria Rashidi
Format: Article
Language:English
Published: MDPI AG 2021-08-01
Series:Remote Sensing
Subjects:
Online Access:https://www.mdpi.com/2072-4292/13/17/3377
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spelling doaj-eb4c1ab48062416391f905b3eb5ca4532021-09-09T13:55:05ZengMDPI AGRemote Sensing2072-42922021-08-01133377337710.3390/rs13173377A Novel Slip Sensory System for Interfacial Condition Monitoring of Steel-Concrete Composite BridgesFaraz Sadeghi0Xinqun Zhu1Jianchun Li2Maria Rashidi3School of Civil and Environmental Engineering, Faculty of Engineering and Information Technology, University of Technology Sydney, Ultimo, NSW 2007, AustraliaSchool of Civil and Environmental Engineering, Faculty of Engineering and Information Technology, University of Technology Sydney, Ultimo, NSW 2007, AustraliaSchool of Civil and Environmental Engineering, Faculty of Engineering and Information Technology, University of Technology Sydney, Ultimo, NSW 2007, AustraliaCentre for Infrastructure Engineering, School of Engineering, Design and Built Environment, Western Sydney University, Penrith, NSW 2751, AustraliaSteel-concrete composite (SCC) beams are widely employed in bridge decks. The interfacial shear transfer between the top concrete slab and the supporting steel beams significantly affects the overall load carrying capacity and performance of a bridge deck. The inaccessibility of the connection system makes the visual inspection difficult, and the traditional vibration-based methods are insensitive to this type of local damage. In this study, a novel interlayer slip monitoring system has been developed for interfacial condition assessment of SCC beams. The monitoring system is mainly based on the Ultra-flat Industrial Potentiometer Membrane (UIPM). The sensor film that is glued on a steel base is mounted on the concrete slab, and the wiper is installed on the steel beam. The interlayer slip between the concrete slab and steel beam is monitored by the relative displacement between the sensor film and the wiper. An experimental study has been carried out on a 6-m long composite bridge model in the laboratory. In the model, the concrete slab and the steel beams are bolt-connected, and the bolts could be loosened to simulate the defects in the shear connection system. Seven slip sensors are evenly installed along the bridge model. The sensors are calibrated using the testing machine before they are installed on the bridge model. Three damage scenarios are simulated by loosening bolts at different locations. Different loadings are also applied on the bridge to simulate the operational conditions. Undamaged and damaged scenarios have been considered within load increments, and data are collected and interpreted to find out how the slip changes. The results show that this system is reliable and efficient to monitor the interlayer slip for assessing the interface condition of composite structures.https://www.mdpi.com/2072-4292/13/17/3377slip sensory systemsteel-concrete composite bridgesinterface condition monitoringexperimental study
collection DOAJ
language English
format Article
sources DOAJ
author Faraz Sadeghi
Xinqun Zhu
Jianchun Li
Maria Rashidi
spellingShingle Faraz Sadeghi
Xinqun Zhu
Jianchun Li
Maria Rashidi
A Novel Slip Sensory System for Interfacial Condition Monitoring of Steel-Concrete Composite Bridges
Remote Sensing
slip sensory system
steel-concrete composite bridges
interface condition monitoring
experimental study
author_facet Faraz Sadeghi
Xinqun Zhu
Jianchun Li
Maria Rashidi
author_sort Faraz Sadeghi
title A Novel Slip Sensory System for Interfacial Condition Monitoring of Steel-Concrete Composite Bridges
title_short A Novel Slip Sensory System for Interfacial Condition Monitoring of Steel-Concrete Composite Bridges
title_full A Novel Slip Sensory System for Interfacial Condition Monitoring of Steel-Concrete Composite Bridges
title_fullStr A Novel Slip Sensory System for Interfacial Condition Monitoring of Steel-Concrete Composite Bridges
title_full_unstemmed A Novel Slip Sensory System for Interfacial Condition Monitoring of Steel-Concrete Composite Bridges
title_sort novel slip sensory system for interfacial condition monitoring of steel-concrete composite bridges
publisher MDPI AG
series Remote Sensing
issn 2072-4292
publishDate 2021-08-01
description Steel-concrete composite (SCC) beams are widely employed in bridge decks. The interfacial shear transfer between the top concrete slab and the supporting steel beams significantly affects the overall load carrying capacity and performance of a bridge deck. The inaccessibility of the connection system makes the visual inspection difficult, and the traditional vibration-based methods are insensitive to this type of local damage. In this study, a novel interlayer slip monitoring system has been developed for interfacial condition assessment of SCC beams. The monitoring system is mainly based on the Ultra-flat Industrial Potentiometer Membrane (UIPM). The sensor film that is glued on a steel base is mounted on the concrete slab, and the wiper is installed on the steel beam. The interlayer slip between the concrete slab and steel beam is monitored by the relative displacement between the sensor film and the wiper. An experimental study has been carried out on a 6-m long composite bridge model in the laboratory. In the model, the concrete slab and the steel beams are bolt-connected, and the bolts could be loosened to simulate the defects in the shear connection system. Seven slip sensors are evenly installed along the bridge model. The sensors are calibrated using the testing machine before they are installed on the bridge model. Three damage scenarios are simulated by loosening bolts at different locations. Different loadings are also applied on the bridge to simulate the operational conditions. Undamaged and damaged scenarios have been considered within load increments, and data are collected and interpreted to find out how the slip changes. The results show that this system is reliable and efficient to monitor the interlayer slip for assessing the interface condition of composite structures.
topic slip sensory system
steel-concrete composite bridges
interface condition monitoring
experimental study
url https://www.mdpi.com/2072-4292/13/17/3377
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