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Vortex-Induced Vibration Performance and Suppression Mechanism for a Long Suspension Bridge with Wide Twin-Box Girder

机译:宽双箱梁长悬索桥的涡激振动性能及抑制机理

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This study investigates the vortex-induced vibration (VIV) behavior of a twin-box girder bridge by means of aerodynamic sectional wind tunnel test and particle image velocimetry (PIV) measurements. The effect of grid plates on suppressing the VIV of twin-box girder model is examined and the influence of four design parameters of grid plates [porosity, flat plate width (FPW) ratio, composition type, and installation position] is studied. The primary causes of VIV and the suppression mechanism of grid plates are discussed in detail. It is found that torsional VIV is more vulnerable to the change in wind attack angle than is vertical VIV. The installation of grid plates noticeably suppresses the VIV of test model and its effect depends on the variation of different design parameters. For the porosity and FPW ratio, there is an optimal range in which the improvement of VIV suppression is more significant; the optimal value of porosity is about 42%-67%, and the optimal value of FPW ratio is about 0.042-0.167. Moreover, the uniform distribution of grid plates is more preferable in terms of suppressing VIV than is nonuniform distribution, whereas the installation of grid plates on the upper side leads to better performance of VIV suppression than does installation on the lower side. The primary cause of VIV of the twin-box girder is closely related to the formation of large-scale vortex shedding at the tail of the upstream box girder. The generation of large-scale vortex can be eliminated by appropriate selection of the design parameters of grid plates.
机译:本研究通过气动截面风洞试验和粒子图像测速(PIV)测量研究了双箱梁桥的涡激振动(VIV)行为。研究了格栅板对双箱梁模型VIV的抑制作用,并研究了格栅板的四个设计参数[孔隙率,平板宽度(FPW)比率,成分类型和安装位置]的影响。详细讨论了VIV的主要原因和格栅板的抑制机理。发现扭转VIV比垂直VIV更容易受到风侵角的改变。格栅板的安装显着抑制了测试模型的VIV,其效果取决于不同设计参数的变化。对于孔隙率和FPW比,存在一个最佳范围,其中VIV抑制的改善更为显着;孔隙率的最佳值约为42%-67%,FPW比的最佳值约为0.042-0.167。此外,就抑制VIV而言,格栅板的均匀分布比非均匀分布更优选,而在上侧安装格栅板比在下侧安装格栅板具有更好的VIV抑制性能。双箱梁VIV的主要原因与上游箱梁尾部大规模涡旋脱落的形成密切相关。可以通过适当选择格栅板的设计参数来消除大规模涡旋的产生。

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