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Effect of Different Constraint Systems on the Seismic Response of Double-deck Curved Girder Bridges |
GUO Wei-zuo1, LU Guan-ya1,2, LIU Li-juan3, WANG Ke-hai1,2 |
1. Research Institute of Highway, Ministry of Transport, Beijing 100088, China;
2. School of Transportation, Southeast University, Nanjing Jiangsu 210096, China;
3. Taiyuan Municipal Engineering Design and Research Institute, Taiyuan Shanxi 030002, China |
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Abstract Double-deck curved girder bridges can achieve large climb in a short distance, and their seismic response differs from that of regular bridges due to their special structural form. The constraint system of bridges, which consists of bearings and shear keys, has a key influence on the seismic response of the bridge structure. Accordingly, this research aims to develop a reasonable constraint system for double-deck curved girder bridges. A finite element simulation of a double-layer curved steel box girder bridge is also conducted to compare some indexes,which are the displacement of bearings with the curvature of the pier section. The shear bolt is selected as the limit device to study the influence of shear bolts and different bearings on the seismic response of the double-deck curved girder bridge structure. Under the influence of ground motion, the displacement of the upper bearings of double-layer curved girder bridges is generally larger than that of the lower bearings. The double-layer constraint system makes the section curvature and ductility in the middle of the pier smaller than that at the top and bottom of the pier. The spherical steel bearings have a small displacement, whereas the pier has a large internal force. After setting the shear bolts, the displacement of the spherical steel bearings decreases, whereas the damage to bridge piers does not show obvious changes. When the displacement of elastomeric pad bearings increases, sliding occurs under a low ground motion intensity, thereby reducing the degree of damage to the bridge pier. Moreover, the application of shear bolts limits the displacement of bearings and subsequently increases the seismic force being transmitted to the pier whose damage is the most serious. However, the displacement of pot bearings is relatively small, and the displacements of the upper and lower layers are close. In addition, the seismic inertial force of the superstructure is relatively uniform, thereby protecting the piers to a certain extent. After setting the shear bolts, the deformation falls within an allowable range, whereas the damage to the bridge piers slightly increases. Therefore, combining pot bearings with shear bolts creates a reasonable constraint system for double-deck curved girder bridges.
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Received: 12 August 2019
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Corresponding Authors:
GUO Wei-zuo
E-mail: 303902184@qq.com
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[1] WANG Ke-hai, WEI Han, LI Qian, et al. Philosophies on seismic design of highway bridges of small or medium spans[J]. China Civil Engineering Journal, 2012, 45(9):115-121. (in Chinese)
[2] SUN Zhi-guo, WANG Dong-sheng, GUO Xun, et al. Damage investigation of Huilan Interchange in Mianzhu after Wenchuan earthquake[J]. Journal of Earthquake Engineering and Engineering Vibration, 2009, 29(04):132-138. (in Chinese)
[3] FANG Shi-sheng, XIAO Bing, ZHANG Ji-shuo, et al. Impact of Bearing Arrangement on Mechanical Behavior of Curved Girder Bridge[J]. World Bridges, 2011(4):49-52. (in Chinese)
[4] PAN Sheng-shan, XU Wen-jun, ZHUANG Nian, et al. Impact of Bearing Arrangement on Seismic Performance of Double-Layer Bridge[J]. Journal of Disaster Prevention and Mitigation Engineering, 2010, 30(S1):160-163. (in Chinese)
[5] WANG Ke-hai, LI Chong, LI Yue. Problems in Chinese Highway Bridge Seismic Specifications and Suggestions for Improvement[J]. Journal of Architecture and Civil Engineering, 2013,30(2):95-103.(in Chinese)
[6] WU Gang, WANG Quan-lu, WANG Ke-hai, et al. Transverse Seismic Response Analysis for Bridges Considering Performance Degradation of Bearings and Stoppers[J]. Journal of Vibration and Shock, 2018, 37(2):189-196.(in Chinese)
[7] LI Zheng-ying, JIANG Lin-jun, LI Zheng-liang. Effect of Bearing Model on the Seismic Response of Curved Continuous Girder Bridge[J]. Journal of Vibration and Shock, 2015, 34(2):182-186.(in Chinese)
[8] GALINDO C M, BELDA J G, HAYASHIKAWA T. Non-linear Seismic Dynamic Response of Curved Steel Bridges Equipped with LRB Supports[J]. Steel Construction, 2010, 3(1):34-41.
[9] ZHOU Xu-hong, DAI Peng, DI Jin. Nonlinear Analysis of Curved Prestressed Concrete Box Girder Bridge with Seismic Isolation System[J]. China Journal of Highway and Transport, 2008,21(1):65-71. (in Chinese)
[10] SAMAAN M, SENNAH K, KENNEDY J B. Positioning of Bearings for Curved Continuous Spread-box Girder Bridges[J]. Canadian Journal of Civil Engineering, 2002, 29(5):641-652.
[11] NIE Li-ying, LI Jian-zhong, HU Shi-de, et al. The Effects of Antiseismic Bolt on Seismic Estimation of Heteromorphic Bridge and its Simulation[J]. Journal of Earthquake Engineering & Engineering Vibration, 2008,28(2):108-113. (in Chinese)
[12] NIE Li-Ying, LI Jian-zhong, HU Shi-de, et al. Nonlinear Analysis and Seismic Estimation on Curved Beam Bridge[J]. Journal of Tongji University, 2004,32(10):1360-1364. (in Chinese)
[13] HE Bin. Seismic Performance and Application in Civil Engineering of Large Tonnage Spherical Bearing[D]. Shanghai:Tongji University, 2005. (in Chinese)
[14] PENG Tian-bo, LI Jian-zhong, FAN Li-chu. Development and Application of Double Spherical Aseismic Bearing[J]. Journal of Tongji University:Natural Science, 2007, 35(2):176-180. (in Chinese)
[15] WANG Jin. Finite Element Method Analysis and Experimental Research of Spherical Bearing Considering Contact Surface Character[D]. Shanghai:Tongji University, 2007. (in Chinese)
[16] CUI Yu-ting. Study on The Seismic Performance of Large-Span RC Continuous Girder Bridge of High Speed Railway and Reasonable Reinforcement Level of Piers[D]. Beijing:Beijing Jiaotong University, 2015. (in Chinese)
[17] CUI Yu-ting, JIANG Hui, ZHAO Song-tao, et al. Comparison of Seismic Damage Performance for Large-span Continuous Girder Bridge of High Speed Railway Under Different Mechanical Behaviors[J]. Earthquake Engineering and Engineering Dynamics, 2014.
[18] XIANG Nai-liang, CUI Xia-xia, Li Jian-zhong. Experimental Study on Sliding Friction Behavior of Laminated Rubber Bearing and Its Mechanical Model[J]. Journal of Tongji University, 2016, 44(12):1828-1834. (in Chinese)
[19] JTG/T B02-01-2008. Guidelines for Seismic Design of Highway Bridges[S].(in Chinese)
[20] QUAN Wei, LI Hong-nan. Research on Critical Angle of Curved Bridge in Multi-Dimensional Earthquake Time History Analysis[J]. Journal of Vibration and Shock, 2008, 27(8):20-24. (in Chinese)
[21] WANG Ke-hai. Bridge Seismic Research[M]. 2nd ed. Beijing:China Railway Publishing House, 2015. (in Chinese)
[22] TANG Hu, LI Jian-zhong, SHAO Chang-yu. Seismic Performance of Small and Medium Span Girder Bridges with Plate Type Elastomeric Pad Bearings in the Transverse Direction[J]. China Journal of Highway and Transport, 2016, 29(3):55-65.(in Chinese) |
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