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Structural health monitoring of long-span suspension bridges using wavelet packet analysis 被引量:8

Structural health monitoring of long-span suspension bridges using wavelet packet analysis
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摘要 During the service life of civil engineering structures such as long-span bridges, local damage at key positions may continually accumulate, and may finally result in their sudden failure. One core issue of global vibration-based health monitoring methods is to seek some damage indices that are sensitive to structural damage, This paper proposes an online structural health monitoring method for long-span suspension bridges using wavelet packet transform (WPT). The WPT- based method is based on the energy variations of structural ambient vibration responses decomposed using wavelet packet analysis. The main feature of this method is that the proposed wavelet packet energy spectrum (WPES) has the ability to detect structural damage from ambient vibration tests of a long-span suspension bridge. As an example application, the WPES-based health monitoring system is used on the Runyang Suspension Bridge under daily environmental conditions. The analysis reveals that changes in environmental temperature have a long-term influence on the WPES, while the effect of traffic loadings on the measured WPES of the bridge presents instantaneous changes because of the nonstationary properties of the loadings. The condition indication indices VD reflect the influences of environmental temperature on the dynamic properties of the Runyang Suspension Bridge. The field tests demonstrate that the proposed WPES-based condition indication index VD is a good candidate index for health monitoring of long-span suspension bridges under ambient excitations. During the service life of civil engineering structures such as long-span bridges, local damage at key positions may continually accumulate, and may finally result in their sudden failure. One core issue of global vibration-based health monitoring methods is to seek some damage indices that are sensitive to structural damage, This paper proposes an online structural health monitoring method for long-span suspension bridges using wavelet packet transform (WPT). The WPT- based method is based on the energy variations of structural ambient vibration responses decomposed using wavelet packet analysis. The main feature of this method is that the proposed wavelet packet energy spectrum (WPES) has the ability to detect structural damage from ambient vibration tests of a long-span suspension bridge. As an example application, the WPES-based health monitoring system is used on the Runyang Suspension Bridge under daily environmental conditions. The analysis reveals that changes in environmental temperature have a long-term influence on the WPES, while the effect of traffic loadings on the measured WPES of the bridge presents instantaneous changes because of the nonstationary properties of the loadings. The condition indication indices VD reflect the influences of environmental temperature on the dynamic properties of the Runyang Suspension Bridge. The field tests demonstrate that the proposed WPES-based condition indication index VD is a good candidate index for health monitoring of long-span suspension bridges under ambient excitations.
出处 《Earthquake Engineering and Engineering Vibration》 SCIE EI CSCD 2007年第3期289-294,共6页 地震工程与工程振动(英文刊)
基金 National Hi-Tech Research and Development Program of China (863 Program) (No. 2006AA04Z416) the National Natural Science Foundation of China Under Grant No. 50538020
关键词 structural health monitoring wavelet packet analysis wavelet packet energy spectrum ambient vibration test long-span suspension bridge structural health monitoring wavelet packet analysis wavelet packet energy spectrum ambient vibration test long-span suspension bridge
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  • 1丁幼亮,李爱群,缪长青.基于小波包能量谱的结构损伤预警方法研究[J].工程力学,2006,23(8):42-48. 被引量:80
  • 2[1]Housner G W,Bergman L A,Caughey T K,et al.Structural control: past,present,and future[J].Journal of Engrg Mech,ASCE,1997,123(9): 897-971.
  • 3[2]Bakht B,Jaeger L G.Bridge testing--a surprise every time[J].Journal of Struct Engrg,ASCE,1990,116(5): 605-611.
  • 4[3]Kennedy J B,Grace N F.Prestressed continuous composite bridges under dynamic load[J].Journal of Struct Engrg,ASCE,1990,116(6): 1 660-1 678.
  • 5[4]Mazurek D F,DeWolf J T.Experimental study of bridge monitoring technique[J].Journal of Struct Engrg,ASCE,1990,116(9): 2 532-2 549.
  • 6[5]Hearn G,Testa R B.Modal analysis for damage detection in structures[J].Journal of Struct Engrg,ASCE,1991,117(10): 3 042-3 063.
  • 7[6]Houge T D,Aktan A E,Hoyos A.Localized identification of constructed facilities[J].Journal of Struct Engrg,ASCE,1991,117(1): 128-148.
  • 8[7]Aktan A E,Farhey D N,Helmicki D J,et al.Structural identification for condition assessment: experimental arts[J].Journal of Struct Engrg,ASCE,1997,123(12): 1 674-1 684.
  • 9[8]Aktan A E,Catbas F N,Turer A,et al.Structural identification,analytical aspect[J].Journal of Struct Engrg,ASCE,1998,124(7): 817-829.
  • 10[9]Aktan A E,Tsikos C J,Catbas F N,et al.Challenge and opportunities in bridge health monitoring[A].Proceedings of the 2nd international workshop on structural health monitoring[C].Standford: Standford University,1999.461-473.

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