期刊文献+

设计荷载作用下大跨度铁路悬索桥的梁端变位特征 被引量:14

Displacement Characteristics at Girder End of Long Span Railway Suspension Bridge Under Design Loads
下载PDF
导出
摘要 以连(云港)镇(江)铁路五峰山长江大桥为工程背景,基于有限元分析,研究该桥在基础不均匀沉降、温度荷载、风荷载、竖向活载及制动力作用下的梁端变位特征及荷载组合效应。结果表明:梁端纵向位移主要影响因素为温度荷载和竖向活载,其次为纵向风荷载、基础沉降和列车制动力;梁端竖向转角受竖向活载和基础不均匀沉降影响最大;横向极限风荷载和温度荷载对梁端横向位移和转角存在一定影响;主、引桥之间的横向位移差引起梁端横向折角。除考虑梁端纵向位移和竖向转角外,铁路悬索桥在设计时也应关注梁端横向位移和横向折角,可通过结构约束体系、端横梁局部合理设计及主、引桥支座位置优化等措施满足梁端空间变位要求,从而为大位移梁端伸缩装置的设计和梁端区域行车的安全平稳提供有利条件。 Taking Wufengshan Yangtze River Bridge of Lianyungang-Zhenjiang railway as engineering background,the displacement characteristics at girder end and load combination effects of the bridge under the actions of uneven settlement of foundation,temperature load,wind load,vertical live load and braking force were studied based on the finite element analysis.The results show that the main factors affecting the longitudinal displacement at girder end are temperature load and vertical live load,followed by longitudinal wind load,foundation settlement and train braking force.The vertical rotation angle at girder end is most affected by vertical live load and uneven settlement of foundation.The transverse ultimate wind load and temperature load have certain influence on the transverse displacement and rotation angle at girder end.In addition to considering the longitudinal displacement and vertical rotation angle at girder end,the transverse displacement and transverse bending angle at girder end should also be paid attention to in the design of railway suspension bridges.The requirements of spatial displacement at girder end can be satisf ied by means of structural restraint system,local rational design at girder end and optimization the locations of the main and approach bridge bearing.It provides favorable conditions for the design of expansion device with large displacement at girder end,and the safe and stable driving at girder end.
作者 郭辉 苏朋飞 赵欣欣 刘晓光 乐思韬 GUO Hui;SU Pengfei;ZHAO Xinxin;LIU Xiaoguang;LE Sitao(Railway Engineering Research Institute,China Academy of Railway Sciences Group Co.Ltd.,Beijing 100081,China;State Key Laboratory for Track Technology of High-speed Railway,Beijing 100081,China)
出处 《铁道建筑》 北大核心 2019年第1期14-19,共6页 Railway Engineering
基金 中国铁路总公司科技研究开发计划(2016G002-K 2015G002-A)
关键词 铁路悬索桥 梁端变位 设计荷载 横向位移 横向折角 结构约束体系 Railway suspension bridge Displacement at girder end Design load Transverse displacement Transverse angle of rotation Structural restraint system
  • 相关文献

参考文献8

二级参考文献47

  • 1肖海珠,梅新咏,高宗余,杨进.千米斜拉桥设计关键技术探讨[J].桥梁建设,2006,36(A02):1-4. 被引量:10
  • 2秦顺全,高宗余,潘东发.武汉天兴洲公铁两用长江大桥关键技术研究[J].桥梁建设,2007,37(1):1-4. 被引量:55
  • 3中华人民共和国铁道部.TB10621-2009高速铁路设计规范(试行)[S].北京:中国铁道出版社,2009. 被引量:55
  • 4CHATTERJEE P K, DATTA T K, SURANA C S. Vibration of Continuous Bridges under Moving Vehicles[J]. Journal of Sound and Vibration, 1994, 169 (5): 619-632. 被引量:1
  • 5MARCHESIELLO S, FASANA A, Garibaldi L, et al. Dynamic of Multi-Span Continuous Straight Bridges Subject to Multi-Degrees of Freedom Moving Vehicle Excitation [J]. Journal of Sound and Vibration, 1999, 224 (3): 541- 561. 被引量:1
  • 6鲍达尔.铁路桥梁与机车车辆的相互作用[z].胡人礼,译.北京:铁道部专业设计院工程建设标准规范管理处,1987. 被引量:1
  • 7LI Yongle, QIANG Shizhong, LIAO Haili, et al. Dynamics of Wind Rail Vehicle-Bridge Systems[J]. Journal of Wind Engineering and Industrial Aerodynamics, 2005, 93 :483-507. 被引量:1
  • 8DONG Renguang. Vertical Dynamics of Railway Vehicle-Tracksystem [D]. Montreal: Concordia University Doctor of Philosophy Degree Dissertation, 1994. 被引量:1
  • 9ZHAI Wanming, WANG Kaiyun, CAI Chengbiao. Fundamentals of Vehicle-Track Coupled Dynamics[J]. Vehicle System Dynamics, 2009, 47 (11) : 1349-1376. 被引量:1
  • 10DAN D F, IMAI K. Reliability of Long Span Bridges Based on Design Experience with the Honshu-Shikoku Bridges[J]. Journal of Constructional Steel Research, 2004, 60 (3) : 373-392. 被引量:1

共引文献84

同被引文献142

引证文献14

二级引证文献69

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部