|本期目录/Table of Contents|

[1]周建伟,李帅,王力,等.高速铁路连续刚构-拱组合桥梁墩-梁-拱结合部受力行为分析*[J].中国安全生产科学技术,2023,19(12):102-108.[doi:10.11731/j.issn.1673-193x.2023.12.013]
 ZHOU Jianwei,LI Shuai,WANG Li,et al.Stress behavior analysis on pier-girder-arch conjunction of continuous rigid frame-arch composite bridge on high-speed railway[J].JOURNAL OF SAFETY SCIENCE AND TECHNOLOGY,2023,19(12):102-108.[doi:10.11731/j.issn.1673-193x.2023.12.013]
点击复制

高速铁路连续刚构-拱组合桥梁墩-梁-拱结合部受力行为分析*
分享到:

《中国安全生产科学技术》[ISSN:1673-193X/CN:11-5335/TB]

卷:
19
期数:
2023年12期
页码:
102-108
栏目:
职业安全卫生管理与技术
出版日期:
2023-12-31

文章信息/Info

Title:
Stress behavior analysis on pier-girder-arch conjunction of continuous rigid frame-arch composite bridge on high-speed railway
文章编号:
1673-193X(2023)-12-0102-07
作者:
周建伟李帅王力李子奇虞庐松李抱
(1.兰州交通大学 土木工程学院,甘肃 兰州 730070;
2.中铁建大桥工程局集团第三工程有限公司,辽宁 沈阳 110043;
3.甘肃公航旅建设集团有限公司,甘肃 兰州 730030)
Author(s):
ZHOU Jianwei LI Shuai WANG Li LI Ziqi YU Lusong LI Bao
(1.School of Civil Engineering,Lanzhou Jiaotong University,Lanzhou Gansu 730070,China;
2.The 3rd Engineering Co.,Ltd.of China Railway Construction Bridge Engineering Bureau Group,Shenyang Liaoning 110043,China;
3.Gansu Gonghang Travel Construction Group Co.,Ltd.,Lanzhou Gansu 730030,China)
关键词:
连续刚构-拱组合结构桥梁墩-梁-拱结合部位拱脚应力界面滑移
Keywords:
continuous rigid frame-arch composite bridge pier-girder-arch conjunction arch foot stress interface slip
分类号:
X947;U441+.5
DOI:
10.11731/j.issn.1673-193x.2023.12.013
文献标志码:
A
摘要:
为分析高速铁路连续刚构-拱组合桥梁墩-梁-拱结合部位在施工与运营过程中的应力状态,采用建立施工全过程杆系有限元模型,计算施工及运营阶段内力与位移,同时考虑钢管与管内核心混凝土、管外拱脚混凝土接触面双重滑移效应,建立墩-梁-拱结合部位实体有限元模型并通过现场实测应力验证模型准确性的方法,探究结合部位的钢-混凝土界面滑移规律与空间应力分布状态。研究结果表明:拱肋钢管与拱脚混凝土、核心混凝土间最大相对位移值分别为1.1,1.2 mm,在设计时宜增加隔板或剪力钉以改善钢与混凝土协同受力;结合部位应力基本处于规范限值内,在过人洞处出现应力集中,倒角处最大拉应力达3.81 MPa,可设置必要的构造钢筋抑制斜向裂缝的发展;拱脚顶面混凝土出现应力集中,且远超规范限值,建议将拱脚混凝土替换为钢纤维混凝土。研究结果可为连续刚构-拱组合桥施工安全提供参考。
Abstract:
In order to analyze the stress state of the pier-girder-arch conjunction of the continuous rigid frame-arch composite bridge on high-speed railway in the process of construction and operation,a finite element model of the whole construction process was established to calculate the internal force and displacement in the construction and operation stages.At the same time,considering the double slip effect of the contact surface between the steel pipe and the core concrete in the pipe and the concrete at the arch foot outside the pipe,the solid finite element model of the pier-girder-arch conjunction was established,and the accuracy of the model was verified by the measured stress in the field.The slip law and spatial stress distribution of the steel-concrete interface at the conjunction were explored.The results show that the maximum relative displacement between the arch rib steel pipe and the arch foot concrete and the core concrete is 1.1 mm and 1.2 mm,respectively.In the design,the clapboard or shear stud should be added to improve the synergistic force between steel and concrete.The stress of conjunction is basically within the standard limit,and the stress concentration occurs at the human hole.The maximum tensile stress at the chamfer is 3.81 MPa,and the necessary structural reinforcement can be set to suppress the development of oblique cracks.The stress concentration occurs on the concrete at the top surface of arch foot,which is far beyond the specification limit.It is recommended to replace the arch foot concrete with steel fiber reinforced concrete.The research results can provide reference for the construction safety of continuous rigid frame-arch composite bridge.

参考文献/References:

[1]罗春林.高速铁路大跨连续刚构柔性拱组合桥梁设计[J].铁道工程学报,2020,37(6):53-57,69. LUO Chunlin.Design on high-speed railway long-span composite bridge of continuous rigid frame and flexible arch[J].Journal of Railway Engineering Society,2020,37(6):53-57,69.
[2]熊敏,胡峰强,邱衍坚,等.PC连续箱梁桥0号块受力性能的影响参数分析[J].世界桥梁,2016,44(2):47-52. XIONG Min,HU Fengqiang,QIU Yanjian,et al.Study of parameters influencing load bearing performance of No.0 block in PC continuous box girder bridge[J].World Bridge,2016,44(2):47-52.
[3]夏勇,裴若娟.广珠准高速铁路东海西江大桥0号块空间分析[J].桥梁建设,1997(4):74-77. XIE Yong,PEI Ruojuan.Spatial analysis of segment No.0 of Donghai Xijiang river bridge of Guangzhou-Zhuhai Quasi-High-Speed railway [J].Bridge Construction,1997(4):74-77.
[4]刘金春,宋子轩,梁栋.单箱三室连续梁桥在横向温度梯度与汽车偏载下的空间效应分析[J].重庆交通大学学报(自然科学版),2021,40(6):80-86. LIU Jinchun,SONG Zixuan,LIANG Dong.Spatial effect analysis of sinale box three chambers continuous girder bridge under transverse temperature gradient and eccentric vehicle load [J].Journal of Chongqing Jiaotong University (Natural Science),2021,40(6):80-86.
[5]宫玉明.连续刚构桥0号块空间应力分析[J].公路交通科技,2016,33(6):83-87,94. GONG Yuming.Analysis on space stress of block No.0 of continuous rigid frame bridge[J].Journal of Highway and Transportation Research and Development,2016,33(6):83-87,94.
[6]张飞,黄福云,王燕.V型墩连续刚构桥0号块空间应力分析及优化设计[J].公路交通科技,2019,36(11):59-67. ZHANG Fei,HUANG Fuyun,WANG Yan.Spatial stress analysis on spatial stress and optimal design of block No.0 of continuous rigid frame bridge with V-shaped piers[J].Journal of Highway and Transportation Research and Development,2019,36(11):59-67.
[7]虞庐松,朱东生.部分斜拉桥塔梁墩固结点局部应力分析[J].桥梁建设,2008(1):54-57. YU Lusong,ZHU Dongsheng.Local stress analysis of rigid fixity joint of pylon,girder and pier of an extra-dosed bridge[J].Bridge Construction,2008(1):54-57.
[8]《中国公路学报》编辑部.中国桥梁工程学术研究综述·2021[J].中国公路学报,2021,34(2):1-97. Editorial Department of China Journal of Highway and Transport.Review on china’s bridge engineering research:2021[J].China Journal of Highway and Transport,2021,34(2):1-97.
[9]陈宝春,韦建刚,周俊,等.我国钢管混凝土拱桥应用现状与展望[J].土木工程学报,2017,50(6):50-61. CHEN Baochun,WEI Jian’gang,ZHOU Jun,et al.Application of concrete-filled steel tube arch bridges in china:current status and prospects[J].China Civil Engineering Journal,2017,50(6):50-61.
[10]韩林海.钢管混凝土结构:理论与实践[M].第三版.北京:科学出版社,2016.
[11]冯莉,樊燕燕,王力,等.基于F-R-M法的刚构-连续梁桥施工期结构强度风险分析[J].中国安全生产科学技术,2019,15(9):135-140. FENG Li,FAN Yanyan,WANG Li,et al.Risk analysis on structural strength of rigid frame-continuous beam bridge during construction based on F-R-M method[J].Journal of Safety Science and Technology,2019,15(9):135-140.
[12]国家铁路局.铁路桥涵设计规范:TB 10002—2017 [S].北京:中国铁道出版社,2017.

相似文献/References:

备注/Memo

备注/Memo:
收稿日期: 2023-07-10
* 基金项目: 国家自然科学基金项目(52268027);甘肃省自然科学基金项目(20JR10RA237);兰州交通大学甘肃省重点实验室开放课题(2022055)
作者简介: 周建伟,硕士研究生,主要研究方向为组合结构桥梁理论。
通信作者: 王力,博士,副教授,主要研究方向为钢-混凝土组合结构桥梁理论。
更新日期/Last Update: 2024-01-07