The thermal responses of composite box girder bridges with corrugated steel webs under solar radiation

被引:1
作者
Cai, Chenzhi [1 ,2 ]
Xu, Ming [1 ]
He, Xuhui [1 ,2 ]
Zou, Yunfeng
Huang, Shiji [1 ]
机构
[1] Cent South Univ, Sch Civil Engn, Railway campus, Changsha 410083, Peoples R China
[2] Hunan Prov Key Lab Disaster Prevent & Mitigat Rail, Changsha, Peoples R China
基金
中国国家自然科学基金;
关键词
Composite bridge; corrugated steel web; solar radiation; thermal responses; experimental girder model; TEMPERATURE-GRADIENTS; BEHAVIOR; FIELD;
D O I
10.1177/13694332241281548
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Owing to the direct exposure to complex atmospheric environments, the temperature field of composite box girder bridge with corrugated steel webs (CBGB-CSW) is likely non-uniformly distributed. Whereas, the current researches regarding the thermal responses of CBGB-CSW are insufficient, and the thermal responses of CBGB-CSW under solar radiation are still unknown. Therefore, this paper conducted a long-term temperature experiment on a scaled model to explore the temperature distribution characteristics in CBGB-CSW. Meanwhile, a three-dimensional thermal-mechanical coupling Finite Element (FE) model is established to simulate the temperature field in the experiment girder. The accuracy and effectiveness of the developed FE model has been verified by the measured temperature data. Therewith, the thermal responses (i.e., stress and displacement) of a full-scale continuous CBGB-CSW with a span of 150 m are numerically investigated. The results indicate that the maximum stresses always occur at the midspan section (with a depth of 5 m) of the continuous CBGB-CSW, and considerable concentrations of stress are observed in the steel-concrete junction. The maximum longitudinal tensile and compressive normal stresses within 0.4 m of the upper junction can reach 5.55 MPa and -8.46 MPa respectively, and those of the lower junction can reach 6.96 MPa and -7.05 MPa respectively. Besides, owing to the impacts of vertical and horizontal temperature gradients, significant displacements of the whole bridge can also be observed. The maximum vertical displacement (5.33 mm) of the CBGB-CSW is estimated at the top plate in the midspan, while the maximum horizontal displacement (0.74 mm) is estimated at the trough of the southern corrugated steel web in the midspan. Notably, the outcomes of this paper can provide some useful references for engineers and scholars to understand the thermal responses of the CBGB-CSW.
引用
收藏
页码:2644 / 2663
页数:20
相关论文
共 42 条
[21]   Experimental study on bridge-track system temperature actions for Chinese high-speed railway [J].
Lou, Ping ;
Zhu, Junpu ;
Dai, Gonglian ;
Yan, Bin .
ARCHIVES OF CIVIL AND MECHANICAL ENGINEERING, 2018, 18 (02) :451-464
[22]   Analysis of Sunshine Temperature Field of Steel Box Girder Based on Monitoring Data [J].
Lu, Hailin ;
Hao, Jing ;
Zhong, Jiwei ;
Wang, Yafei ;
Yang, Hongyin .
ADVANCES IN CIVIL ENGINEERING, 2020, 2020
[23]   Temperature monitoring and analysis of a long-span cable-stayed bridge during construction period [J].
Mei, Xiudao ;
Lu, Yiyan ;
Shi, Jing .
STRUCTURAL MONITORING AND MAINTENANCE, 2021, 8 (02) :203-220
[24]  
Mussa F., 2020, IOP C SERIES MAT SCI, V888, P012074
[25]   Long-Term Impacts of Temperature Gradients on a Concrete-Encased Steel I-Girder Experiment-Field-Monitored Data [J].
Narayanan, Sabarigirivasan Lakshmi ;
Nambiappan, Umamaheswari .
BUILDINGS, 2023, 13 (03)
[26]   Experimental and finite element parametric investigations of the thermal behavior of CBGB [J].
Numan, Hesham A. ;
Taysi, Nildim ;
Ozakca, Mustafa .
STEEL AND COMPOSITE STRUCTURES, 2016, 20 (04) :813-832
[27]   Temperature behavior of cable-stayed bridges. Part II - temperature actions by using unified analysis [J].
Shan, Yushi ;
Jing, Qiang ;
Li, Lingfang ;
Gao, Wenbo ;
Xia, Zili ;
Xia, Yong .
ADVANCES IN STRUCTURAL ENGINEERING, 2023, 26 (09) :1600-1620
[28]   Temperature behavior of cable-stayed bridges. Part I - Global 3D temperature distribution by integrating heat-transfer analysis and field monitoring data [J].
Shan, Yushi ;
Li, Lingfang ;
Xia, Qi ;
Gao, Wenbo ;
Jing, Qiang ;
Xia, Yong .
ADVANCES IN STRUCTURAL ENGINEERING, 2023, 26 (09) :1579-1599
[29]   Time-varying solar radiation-induced non-uniform temperature distribution of steel-concrete composite box girder-ballastless track system [J].
Sheng, Xingwang ;
Chen, Zoujie ;
Zheng, Weiqi ;
Xu, Hongyi .
CASE STUDIES IN THERMAL ENGINEERING, 2023, 43
[30]  
Viktor A., 2012, Concrete Cracks in Composite Bridges