Wavelet Packet Singular Entropy-Based Method for Damage Identification in Curved Continuous Girder Bridges under Seismic Excitations

Curved continuous girder bridges (CCGBs) have been widely adopted in the civil engineering field in recent decades for complex interchanges and city viaducts. Unfortunately, compared to straight bridges, this type of bridge with horizontal curvature is relatively vulnerable to earthquakes characteri...

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Main Authors: Dayang Li, Maosen Cao, Tongfa Deng, Shixiang Zhang
Format: Article
Language:English
Published: MDPI AG 2019-10-01
Series:Sensors
Subjects:
Online Access:https://www.mdpi.com/1424-8220/19/19/4272
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spelling doaj-452b88a440954220902aeba664687bf02020-11-25T01:33:28ZengMDPI AGSensors1424-82202019-10-011919427210.3390/s19194272s19194272Wavelet Packet Singular Entropy-Based Method for Damage Identification in Curved Continuous Girder Bridges under Seismic ExcitationsDayang Li0Maosen Cao1Tongfa Deng2Shixiang Zhang3Department of Engineering Mechanics, Hohai University, Nanjing 210098, ChinaDepartment of Engineering Mechanics, Hohai University, Nanjing 210098, ChinaJiangxi Provincial Key Laboratory of Environmental Geotechnical Engineering and Disaster Control, Jiangxi University of Science and Technology, Ganzhou 341000, ChinaChina Design Group Co., Ltd., Nanjing 210014, ChinaCurved continuous girder bridges (CCGBs) have been widely adopted in the civil engineering field in recent decades for complex interchanges and city viaducts. Unfortunately, compared to straight bridges, this type of bridge with horizontal curvature is relatively vulnerable to earthquakes characterized by large energy and short duration. Seismic damage can degrade the performance of CCGBs, threatening their normal operation and even resulting in collapse. Detection of seismic damage in CCGBs is thus significantly important but is still not well resolved. To this end, a new method based on wavelet packet singular entropy (WPSE) is proposed to identify seismic damage by analyzing the dynamic responses of CCGBs to seismic excitation. This WPSE-based approach features characterizing damage using synergistic advantage of the wavelet packet transform, singular value decomposition, and information entropy. To testify the algorithm, a finite element model of a typical CCGB with two types of seismic damage is built, in which the seismic damage is individually modeled by stiffness reductions at the bottom of piers and at pier-girder connections. The displacement responses of the model to El Centro seismic excitation is used to identify the damage. The results show that damage indices in the WPSE-based approach can correctly locate the seismic damage in CCGBs. Furthermore, the WPSE-based method is competent to identify damage with higher accuracy in comparison with the wavelet packet energy based method, and has a strong immunity to noise revealed by robustness analysis. An array of responses used in this approach paves the way of developing practical technologies for detecting seismic damage using advanced distributed sensing techniques, typically the optical sensors.https://www.mdpi.com/1424-8220/19/19/4272wavelet packet singular entropystructural health monitoringseismic damagedamage identificationdynamic responsecurved continuous girder bridgeseismic excitation
collection DOAJ
language English
format Article
sources DOAJ
author Dayang Li
Maosen Cao
Tongfa Deng
Shixiang Zhang
spellingShingle Dayang Li
Maosen Cao
Tongfa Deng
Shixiang Zhang
Wavelet Packet Singular Entropy-Based Method for Damage Identification in Curved Continuous Girder Bridges under Seismic Excitations
Sensors
wavelet packet singular entropy
structural health monitoring
seismic damage
damage identification
dynamic response
curved continuous girder bridge
seismic excitation
author_facet Dayang Li
Maosen Cao
Tongfa Deng
Shixiang Zhang
author_sort Dayang Li
title Wavelet Packet Singular Entropy-Based Method for Damage Identification in Curved Continuous Girder Bridges under Seismic Excitations
title_short Wavelet Packet Singular Entropy-Based Method for Damage Identification in Curved Continuous Girder Bridges under Seismic Excitations
title_full Wavelet Packet Singular Entropy-Based Method for Damage Identification in Curved Continuous Girder Bridges under Seismic Excitations
title_fullStr Wavelet Packet Singular Entropy-Based Method for Damage Identification in Curved Continuous Girder Bridges under Seismic Excitations
title_full_unstemmed Wavelet Packet Singular Entropy-Based Method for Damage Identification in Curved Continuous Girder Bridges under Seismic Excitations
title_sort wavelet packet singular entropy-based method for damage identification in curved continuous girder bridges under seismic excitations
publisher MDPI AG
series Sensors
issn 1424-8220
publishDate 2019-10-01
description Curved continuous girder bridges (CCGBs) have been widely adopted in the civil engineering field in recent decades for complex interchanges and city viaducts. Unfortunately, compared to straight bridges, this type of bridge with horizontal curvature is relatively vulnerable to earthquakes characterized by large energy and short duration. Seismic damage can degrade the performance of CCGBs, threatening their normal operation and even resulting in collapse. Detection of seismic damage in CCGBs is thus significantly important but is still not well resolved. To this end, a new method based on wavelet packet singular entropy (WPSE) is proposed to identify seismic damage by analyzing the dynamic responses of CCGBs to seismic excitation. This WPSE-based approach features characterizing damage using synergistic advantage of the wavelet packet transform, singular value decomposition, and information entropy. To testify the algorithm, a finite element model of a typical CCGB with two types of seismic damage is built, in which the seismic damage is individually modeled by stiffness reductions at the bottom of piers and at pier-girder connections. The displacement responses of the model to El Centro seismic excitation is used to identify the damage. The results show that damage indices in the WPSE-based approach can correctly locate the seismic damage in CCGBs. Furthermore, the WPSE-based method is competent to identify damage with higher accuracy in comparison with the wavelet packet energy based method, and has a strong immunity to noise revealed by robustness analysis. An array of responses used in this approach paves the way of developing practical technologies for detecting seismic damage using advanced distributed sensing techniques, typically the optical sensors.
topic wavelet packet singular entropy
structural health monitoring
seismic damage
damage identification
dynamic response
curved continuous girder bridge
seismic excitation
url https://www.mdpi.com/1424-8220/19/19/4272
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AT maosencao waveletpacketsingularentropybasedmethodfordamageidentificationincurvedcontinuousgirderbridgesunderseismicexcitations
AT tongfadeng waveletpacketsingularentropybasedmethodfordamageidentificationincurvedcontinuousgirderbridgesunderseismicexcitations
AT shixiangzhang waveletpacketsingularentropybasedmethodfordamageidentificationincurvedcontinuousgirderbridgesunderseismicexcitations
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