期刊文献+

大跨度城市轨道交通斜拉桥主梁气动特性CFD研究 被引量:2

Aerodynamic characteristics of decks of long span urban rail transit cable-stayed bridges by CFD method
下载PDF
导出
摘要 以某大跨度斜拉桥为背景,采用大型商用软件CFD进行数值风洞模拟,得到了斜拉桥主梁截面三种形式的气动特性参数,即三分力系数、车桥组合下的三分力系数以及颤振导数,讨论了其随攻角和风速变化的规律及原因,考查了车辆存在对主梁断面气动特性的影响,并进一步由升力系数功率谱曲线分析了主梁的涡振性能,通过三种主梁截面的气动特性对比研究,可进一步对主梁截面进行优化设计,所得结论对大跨高墩轨道交通斜拉桥的主梁截面形式选取具有一定指导意义。 A long span cable-stayed bridge is regarded as the engineering example in this paper,using commercial analysis software CFD for the numerical wind tunnel simulation,the aerodynamics parameter of three different sections are obtained,which included aerostatic coefficients,flutter derivatives,aerostatic coefficients of train-bridge system.The effects of wind attack angle,wind speed are investigated,and aerodynamics parameters under the condition of train-existing on deck are discussed.The vortex-induced vibration of deck are analysed by the power spectrum of lift coefficient curve.With the comparison of aerodynamics parameters of three sections,the design of deck section can be more reasonable.The obtained conclusion has some significance for the long span and high pier rail transit cable-stayed bridge.
出处 《四川建筑科学研究》 北大核心 2011年第4期60-64,共5页 Sichuan Building Science
基金 国家自然科学基金资助项目(90915006) 教育部新世纪优秀人才支持计划(NCET-06-0802) 四川省杰出青年学科带头人计划(2009-15-406)
关键词 CFD 斜拉桥 气动特性 气动系数 颤振导数 涡激振 CFD cable-stayed bridge aerodynamic characteristics aerodynamic coefficients flutter derivatives vortex-induced vibration
  • 相关文献

参考文献5

二级参考文献15

  • 1邓文,葛耀君,曹丰产.桥梁闭口箱梁三分力数值识别中的湍流模型比选[J].上海公路,2006(4):36-40. 被引量:11
  • 2瞿伟廉,刘琳娜.基于CFD的桥梁三分力系数识别的数值研究[J].武汉理工大学学报,2007,29(7):85-88. 被引量:29
  • 3袁礼.球形Taylor-Couette流分叉的数值模拟及二维Euler方程非结构网络计算技术的研究.中国科学院力学研究所博士学位论文[M].,1995..
  • 4Larsen A, Walthcr J. Aeroelastic analysis of bridge girder sections based on discrete vortex simulations [J]. Journal of Wind Engineering and Industrial Aerodynamics, 1997, 67&68: 253-265.
  • 5Vairo G. A numerical model for wind loads simulation on long-span bridges [J]. Simulation Modelling Practice and Theory, 2003, 11(5-6): 315-351.
  • 6Selvam R.P, Govindaswamy S, Bosch H. Aeroelastic analysis of bridges using FEM and moving grids [J]. Wind and Structures, 2002, 5(2-4): 257-266.
  • 7Frandsen J B, McRobie F A. Computational aeroelastie modeling to guide long-span bridge cross-section design [C]. Copenhagen: Proceedings of 10th International Conference of Wind Engineering, 1999.
  • 8Theodorsen T. General theory of aerodynamic instability and the mechanism of flutter [R]. NACA Report No.496. U.S, National Advisory Committee for Aeronautics. langley, VA, 1935.
  • 9费详麟.高等流体力学[M].西安:西安交通大学出版社,1989.
  • 10Schulz E,The 7th ISCFD,1997年,15页

共引文献193

同被引文献21

引证文献2

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