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Study on the Mechanical Behavior of Steel-hybrid Composite Beams Constructed by Suspension Bracing Method |
GUAN Xian, TANG Guo-hua |
1. Beijing Huahong Engineering Consultants Co., Ltd., Beijing 101101, China; 2. Chongqing Jiaotong University, Chongqing 400074, China |
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Abstract The construction process of steel-concrete composite girders is simulated by using 3D finite element model and suspension bracing method. The influences of multiple factors such as self-weight of suspension bracket, wind load, longitudinal spacing of suspension points, concrete deck slab thickness, concrete casting process and suspension bracket removal on the mechanical properties of the main steel girder and the composite girder are analyzed. The mechanical behavior of the steel-concrete composite girders during the construction process by suspension bracing method is revealed. The result shows that (1) The normal stress and displacement of the steel girder increase with the increase of the weight of the suspension bracket and they have relatively large impact on the increase. (2) The wind load during construction process will produce large transverse displacement of the main steel girder, the transverse wind load should be considered in the load combination analysis and necessary measures should be taken to limit the transverse displacement of the main steel girder during the deck casting process. (3) The displacement and stress of the main steel girder will show a parabolic change with the change of the longitudinal spacing of the suspension points, so the optimal value of the longitudinal spacing of the suspension points is recommended to be 4 m. (4) The maximum mid-span displacement and stress of the main steel girder increase with the increase of the deck slab thickness, and the weight of the deck slab occupies the main position in the whole system force. (5) In the process of casting deck slabs with the suspension bracing method, the stress and deformation of the main steel girder increase with the concrete construction stage of the deck slabs. In order to ensure that the geometric shape of the bridge at each stage is consistent with the theory result, the design elevation of each section should be pre-raised during the construction process according to the vertical displacement and deformation of the main steel girder caused by the construction of each casting stage. In addition, the upward rebound of the main steel girder caused by the removal of the suspension bracket must be fully considered when setting the pre-arch of the steel-concrete composite girder.
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Received: 22 August 2022
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[1] ZHENG Da-wei, LIU Yu. Study on Application of Steelconcrete Composite Beam in Engineering[J]. Engineering and Construction, 2022, 36(1):128-129. (in Chinese) [2] WEI Xing, XIAO Lin, WEN Zong-yi, et al. State-of-theart Review of Steel-concrete Composite Bridges in 2020[J]. Journal of Civil and Environmental Engineering, 2021, 43(S1):107-119. (in Chinese) [3] ZHANG Jing. Research Review of I-steel and Concrete Composite Beams[J]. Municipal Engineering Technology, 2014, 32(1):130-133, 141. (in Chinese) [4] GUO Pei-wen, GAI Xi-cai, DU Xing-long. Steel Structures and Application of Green Technology in Buildings[C]//Steel Structure and Green Building Technology Application. Beijing:[s.n.],2019:311-317.(in Chinese) [5] ZHANG Jian. Construction Technology of Temporary Bracket for Steel Concrete Composite Beam of Beijing-Qinhuangdao High Speed Trans-Chaobai River Large Bridge[J]. Architecture Technology, 2019, 50(2):165-168. (in Chinese) [6] ZHANG Peng-fei. Construction Monitoring and Analysis of I-beam-concrete Combination Continuous Beam[D]. Beijing:Beijing Jiaotong University, 2019.(in Chinese) [7] WU Zhi-fei, ZHANG Wen-qiang, SUN Wen-duo. Quality Control Technology of I-beam-concrete Combination Beam Construction[J]. Highway, 2020, 65(6):65-69.(in Chinese) [8] PAN Ben-jin, REN Wan-peng. Key Technology of Integral Cast-in-situ Construction of Steel-concrete Composite Box Girder and Bridge Deck[J]. Construction Technology, 2022, 51(12):42-45, 54.(in Chinese) [9] LIU Xue-feng, LI Dong. Research on Design and Construction Technology of New Type Steel-concrete Composite Girder Bridge Slab[J]. Urban Roads Bridges & Flood Control, 2021(10):91-94.(in Chinese) [10] ZHANG Wan-li. Installation of Concrete Deck Slabs for Steel-cement Combination Continuous Rigid Bridge[J]. Highway, 2019, 64(10):152-156.(in Chinese) [11] WANG Sheng-bin, WU Xiao-bo, TANG Guo-xi, et al. Study of Vehicle-bridge Coupled Vibration in Composite Girder Formed of Double I Steel Girders and Concrete Slabs[J]. World Bridges, 2019, 47(3):38-43.(in Chinese) [12] ZHANG Hao. Finite Element Analysis of Concrete Formwork for I-beam Steel-concrete Combination Structure[J]. Transpo World, 2020(3):56-58.(in Chinese) [13] LI Yang, REN Pei-qi, DING Jing-zhen, et al. Experimental Study and Numerical Simulation of Mechanical Properties of Double Composite Steel-concrete Beams[J]. Engineering Mechanics, 2020, 37(5):82-93.(in Chinese) [14] PENG Gang. Analysis of Bending Performance of I-beamconcrete Continuous Composite Beams and Calculation of Bearing Capacity in Negative Moment Zone[D]. Xiangtan:Xiangtan University, 2013.(in Chinese) [15] NIE Jian-guo, ZHU Li, PAN Jian-sheng, et al. Theory and Calculation of Beam-truss Model of Steel-concrete Composite Box-girder Bridge[J]. China Journal of Highway and Transport, 2014, 27(7):32-44.(in Chinese) [16] CHEN Fu-li. Finite Element Calculation Model Analysis of Prefabricated Steel-concrete Composite Girder[J]. Shanxi Construction, 2022, 48(4):141-143.(in Chinese) [17] WEI Guang-hua. Discussion on the Design and Construction of Steel-concrete Combined Girder Bridges[J]. Shanxi Architecture, 2007, 33(24):338-339.(in Chinese) [18] WANG Guo-wei, WANG He-xi. Cast-in-place Construction of Span Bridges with Restricted Headroom Using Suspended Formwork Support Method[J]. Railway Construction Technology, 2000, 78(5):24-26.(in Chinese) [19] LIU Bao-xin, WANG Jun. Construction Techniques of Suspension Scaffolding Method for High Frame Pier Continuous Girder of a Bridge[J]. Bridge Construction, 2012, 42(S1):107-111.(in Chinese) [20] YAO Hong-sheng, MA Qiu-guo, LIU Han-bin, et al. Research on Construction Technology of Suspension Stent Method for the Elevated Frame Pier Continuous Beam[J]. Journal of Shijiazhuang Railway University (Natural Science Edition), 2013, 26(1):14-17. (in Chinese) |
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