Dynamic analysis and modal test of long-span cable-stayed bridge based on ambient excitation

被引:0
|
作者
Chang-song Chen
Dong-huang Yan
机构
[1] Changsha University of Science and Technology,School of Bridge and Structure Engineering
[2] Central South University,School of Civil and Architectural Engineering
关键词
bridge engineering; cable-stayed bridge; dynamic finite element method; ambient excitation; modal test;
D O I
暂无
中图分类号
学科分类号
摘要
To study the stiffness distribution of girder and the method to identify modal parameters of cable-stayed bridge, a simplified dynamical finite element method model named three beams model was established for the girder with double ribs. Based on the simplified model four stiffness formulae were deduced according to Hamilton principle. These formulae reflect well the contribution of the flexural, shearing, free torsion and restricted torsion deformation, respectively. An identification method about modal parameters was put forward by combining method of peak value and power spectral density according to modal test under ambient excitation. The dynamic finite element method analysis and modal test were carried out in a long-span concrete cable-stayed bridge. The results show that the errors of frequencies between theoretical analysis and test results are less than 10% mostly, and the most important modal parameters for cable-stayed bridge are determined to be the longitudinal floating mode, the first vertical flexural mode and the first torsional mode, which demonstrate that the method of stiffness distribution for three beams model is accurate and method to identify modal parameters is effective under ambient excitation modal test.
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页码:135 / 139
页数:4
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