Nonlinear Stress-Free-State Forward Analysis Method of Long-Span Cable-Stayed Bridges Constructed in Stages

被引:4
作者
Wei, Shaoyang [1 ]
Gong, Wenfeng [2 ]
Wu, Xiaoguang [3 ]
Zhang, Zhaohui [1 ]
机构
[1] Yangling Vocat & Tech Coll, Sch Transportat & Geomat Engn, Yangling 712100, Peoples R China
[2] Changsha Planning & Design Inst Co Ltd, Changsha 410007, Peoples R China
[3] Changan Univ, Sch Highway, Xian 710064, Peoples R China
关键词
cable-stayed bridge; staged construction; geometrically nonlinear behavior; stress-free-state variables; the stress-free-state forward analysis; CANTILEVER;
D O I
10.3390/buildings13071735
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Structural analysis and construction control of staged-construction processes are major subjects in the context of modern long-span bridges. Although the forward and backward analysis methods are able to simulate situations, their main disadvantage is that they usually apply the stage superposition principle. In the actual construction process, due to changes made to the plan, the construction process needs to be adjusted at any time, and it is difficult to implement the construction process in complete accordance with the established plan. As a result, the existing simulation method based on the incremental structural analysis of each construction stage has poor adaptability to such adjustments. In this study, considering the strong geometric nonlinear behavior of the long-span cable-stayed bridge construction process, the geometrically nonlinear mechanical equations of the staged-construction bar system structure were derived. The minimum potential energy theorem was used by introducing the concept of the stress-free-state variable of the structural elements. The equation reflects the influence of the change in the stress-free-state variables of structural elements on the completion state of the structure. From the analysis of the geometrical condition that the equilibrium equation holds, the stress-free installation condition of the closing section of the planar beam element structure was obtained. A new simulation method for long-span cable-stayed bridge construction has been proposed, which is called the stress-free-state forward analysis. This method can directly obtain the intermediate process state of cable-stayed bridge construction without performing stage-by-stage demolition calculations, and causing the internal force and deformation of the completion state to reach the design target state. This method can realize the simulation of multi-process parallel operation in construction, and solves the problem of automatic filtering of temporary loads. To illustrate the application of the method, a long-span cable-stayed bridge was analyzed.
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页数:19
相关论文
共 37 条
[1]   Condition monitoring of bridges with non-contact testing technologies [J].
Abu Dabous, Saleh ;
Feroz, Sainab .
AUTOMATION IN CONSTRUCTION, 2020, 116
[2]   A SUBSTRUCTURE FRONTAL TECHNIQUE FOR CANTILEVER ERECTION ANALYSIS OF CABLE-STAYED BRIDGES [J].
BEHIN, Z ;
MURRAY, DW .
COMPUTERS & STRUCTURES, 1992, 42 (02) :145-157
[3]  
Behin Z., 1990, THESIS U ALBERTA EDM
[4]   Influence of corrosion effects on the seismic capacity of existing RC bridges [J].
Crespi, Pietro ;
Zucca, Marco ;
Valente, Marco ;
Longarini, Nicola .
ENGINEERING FAILURE ANALYSIS, 2022, 140
[5]   Direct simulation of the tensioning process of cable-stayed bridge cantilever construction [J].
Farre-Checa, J. ;
Komarizadehasl, S. ;
Ma, Haiying ;
Lozano-Galant, J. A. ;
Turmo, J. .
AUTOMATION IN CONSTRUCTION, 2022, 137
[6]  
Farre-Checa J., 2017, THESIS KTH STOCKHOLM
[7]   A non-linear symmetric G1-conforming Bezier finite element formulation for the analysis of Kirchhoff beam assemblies [J].
Greco, L. ;
Scrofani, A. ;
Cuomo, M. .
COMPUTER METHODS IN APPLIED MECHANICS AND ENGINEERING, 2021, 387
[8]   An updated Lagrangian Bézier finite element formulation for the analysis of slender beams [J].
Greco L. ;
Cuomo M. ;
Castello D. ;
Scrofani A. .
Mathematics and Mechanics of Solids, 2022, 27 (10) :2110-2138
[9]   Inspection of surface defects on stay cables using a robot and transfer learning [J].
Hou, Shitong ;
Dong, Bin ;
Wang, Haochen ;
Wu, Gang .
AUTOMATION IN CONSTRUCTION, 2020, 119
[10]   A Good Practice for the Proof Testing of Cable-Stayed Bridges [J].
Innocenzi, Raoul Davide ;
Nicoletti, Vanni ;
Arezzo, Davide ;
Carbonari, Sandro ;
Gara, Fabrizio ;
Dezi, Luigino .
APPLIED SCIENCES-BASEL, 2022, 12 (07)