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Nonlinear flutter control of a long-span closed-box girder bridge with vertical stabilizers subjected to various turbulence flows

机译:具有各种湍流流动的垂直稳定器的长跨度闭合箱梁桥的非线性颤动控制

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This study investigated the influence of different heights of upward vertical central stabilizers (UVCS) in flutter performance of long-span suspension bridges through developing nonlinear three-dimensional Finite Element (FE) bridge model using large-deformation beam elements with 14 degrees of freedom (DOFs). Using Runyang Yangtze River Bridge as a case study, the developed FE model firstly incorporates a nonlinear aerodynamic force model of the 2D closed-box girder with various UVCS, and the model predicted critical flutter wind velocities of the bridges were validated using wind tunnel testing results. A series of parametric studies were then carried out to study the aerodynamic performance of the bridge under different vertical intensities of incoming turbulence flow (I-w) by developing multi-variable non-stationary stochastic wind fields. The numerical results show that the installation of UVCS could not only modify from first-order to second-order symmetrical vertical oscillation configuration, but also change the coupled oscillation from the stable condition to the unstable limit cycle of flutter divergence. Furthermore, UVCS mainly governs the vertical DOF partication in the coupled bending-torsional oscillation of the bridge, while the increase of the height of UVCS results in a higher critical flutter wind velocity but a lower torsional frequency, particularly for the 1.1 m UVCS when I-w is over 2.84%.
机译:本研究研究了向上垂直中心稳定器(UVC)不同高度的影响,通过使用具有14度的大变形梁元件的非线性三维有限元(Fe)桥模型来发展长跨度悬架桥的颤振性能。 DOF)。使用伦阳长江桥作为案例研究,开发的FE模型首先采用了具有各种UVC的2D闭合箱梁的非线性空气动力模型,使用风洞检测结果验证了桥梁的模型预测的临界颤动风速。然后通过开发多变量非平稳随机风电场,研究了一系列参数研究,以研究在输入湍流流(I-W)的不同垂直强度下的桥梁的空气动力学性能。数值结果表明,UVC的安装不仅可以从一流地修改到二阶对称垂直振荡配置,而且还可以将耦合振荡从稳定的条件改变为颤动分歧的不稳定限制循环。此外,UVC主要针对桥的耦合弯曲扭转振荡中的垂直DOF分配,而UVC的高度的增加导致较高的突出颤动风速,而是较低的扭转频率,特别是在IW时为1.1M UVC超过2.84%。

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