Stochastic analysis for bending capacity of precast prestressed concrete bridge piers using Monte-Carlo simulation and gradient boosted regression trees algorithm

被引:0
作者
Lai, Xiaopan [1 ]
Lu, Zhao [1 ]
Xu, Xinyu [1 ]
Yu, Chuanjin [2 ,3 ]
机构
[1] Railway Eryuan Engn Grp Co Ltd, Chengdu 610031, Sichuan, Peoples R China
[2] Southwest Jiaotong Univ, Wind Engn Key Lab Sichuan Prov, Chengdu 610031, Sichuan, Peoples R China
[3] Southwest Jiaotong Univ, Natl Key Lab Bridge Intelligent & Green Construct, Chengdu 611756, Sichuan, Peoples R China
来源
ADVANCES IN BRIDGE ENGINEERING | 2023年 / 4卷 / 01期
基金
中国博士后科学基金;
关键词
Prefabricated assembled; Prestressed concrete bridge piers; Stochastic simulation; Probability distribution characteristics; Influencing factors; BEHAVIOR;
D O I
10.1186/s43251-023-00094-1
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
The use of precast prestressed concrete bridge piers is rapidly evolving and widely applied. Nevertheless, the probabilistic behavior of the bending performance of precast prestressed concrete bridge piers has often been overlooked. This study aims to address this issue by utilizing actual precast bridge piers as the engineering context. Through the implementation of the Monte-Carlo simulation and Gradient Boosted Regression Trees (GBRT) algorithm, the stochastic distribution of the bending performance and their critical factors are identified. The results show that the normal distribution is the most suitable for the random distribution of bending performance indicators. The variability of the elastic modulus of ordinary steel bars, initial strain of prestressed steel hinge wires, and constant load axial force has little effect on the bending moment performance, while the yield stress of ordinary steel bars, elastic modulus of concrete, compressive strength of unrestrained concrete, and elastic modulus of prestressed steel hinge wires have a greater impact on the bending performance. Additionally, the compressive strength of unrestrained concrete has a significant influence on the equivalent bending moment of the cross-section that concerns designers.
引用
收藏
页数:14
相关论文
共 22 条
[11]  
Mehrsoroush A., 2017, Development of Earthquake-Resistant Precast Pier Systems for Accelerated Bridge Construction in Nevada
[12]  
Palermo A., 2016, Quasi-Static Testing of a 1/3 Scale Precast Concrete Bridge Utilising a Post-Tensioned Dissipative Controlled Rocking Pier
[13]   Investigation and verification on seismic behavior of precast concrete frame piers used in real bridge structures: Experimental and numerical study [J].
Qu, Hongya ;
Li, Tiantian ;
Wang, Zhiqiang ;
Wei, Hongyi ;
Shen, Jiawei ;
Wang, Hao .
ENGINEERING STRUCTURES, 2018, 154 :1-9
[14]   Target reliability analysis of bridge piers concerning the earthquake extreme event limit state [J].
Safari, Mohammad ;
Ghasemi, Seyed Hooman ;
Taghia, Seiyed Ali Haj Seiyed .
ENGINEERING STRUCTURES, 2021, 245
[15]  
Shanghai Tunnel Engineering & Rail Transit Design and Research Institute, 2021, DG/TJ 08-2345-2020 J 15506-2021
[16]   Behaviour of end-plate moment connections under earthquake loading [J].
Shi, Gang ;
Shi, Yongjiu ;
Wang, Yuanqing .
ENGINEERING STRUCTURES, 2007, 29 (05) :703-716
[17]   Numerical Simulation Analysis of the Seismic Performance of Precast Bridge Piers [J].
Wang, Jia ;
Li, Fangyuan .
MATHEMATICAL PROBLEMS IN ENGINEERING, 2022, 2022
[18]  
[王志强 WANG Zhiqiang], 2009, [地震工程与工程振动, Earthquake Engineering and Engineering Vibration], V29, P147
[19]   Quasi-Static Testing of Posttensioned Nonemulative Column-Footing Connections for Bridge Piers [J].
White, Samuel ;
Palermo, Alessandro .
JOURNAL OF BRIDGE ENGINEERING, 2016, 21 (06)
[20]   Shake table study on precast segmental concrete double-column piers [J].
Xia Zhanghua ;
Ge Jiping ;
Lin Youqin ;
Qiu Faqiang .
EARTHQUAKE ENGINEERING AND ENGINEERING VIBRATION, 2020, 19 (03) :705-723