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System-based probabilistic evaluation of longitudinal seismic control for a cable-stayed bridge with three super-tall towers

机译:基于系统的三个超高塔轴承桥纵向防治的概率评价

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摘要

The system fragility method was used to evaluate the seismic structural systems and seismic mitigation devices for a cable-stayed bridge with three super-tall towers. Firstly, a three-dimensional numerical model of a four-span cable-stayed bridge with middle-tower height of 332 m was simulated using OpenSEES, which accounted for the material and geometric nonlinearities; 80 actual ground motions were chosen for conducting time history analysis. Secondly, the fragility curves of the components and the system were derived using general fragility theory and Product of the Conditional Marginal theory, respectively. Then, three longitudinal seismic structural systems were evaluated. Finally, under the optimal seismic structural system, the optimal parameters of the longitudinal fluid viscous damper and cable restrainer were obtained using the response surface method, and the mitigation effects of the fluid viscous damper and the cable restrainer with optimal parameters were compared using fragility curves. The results show that different structural systems and mitigation devices have significant influence on the damage control of displacement and stay cable force. The super-tall tower cable-stayed bridge with a partial constraint system of the consolidated middle tower and floating side towers has the lowest damage probability; and the longitudinal fluid viscous damper and cable restrainer can achieve a certain mitigation effect, however, the fluid viscous damper has better effect. Therefore, the partial constraint system and fluid viscous damper should be used in the longitudinal direction of the multiple super-tall-tower cable-stayed bridge.
机译:使用该系统的脆弱性方法来评估地震结构的系统和减震装置用于斜拉桥具有三个超高层塔。首先,四跨斜拉桥与332米中间塔高度的三维数字模型是使用OpenSEES的,它占物料和几何非线性模拟; 80实际的地面运动被选为进行时程分析。其次,部件的脆弱性曲线和系统使用的有条件边际理论的一般理论脆性和产品分别衍生。然后,三个纵向的地震结构体系进行了评价。最后,最佳地震结构体系下,使用响应表面的方法获得的纵向流体粘滞阻尼器和电缆限制器的最佳参数,并且使用脆性曲线进行比较的流体粘滞阻尼器和与最佳参数电缆限制器的减轻效果。结果表明,不同的结构的系统和缓解装置对的位移和拉索力的损害控制显著影响。在超高层塔斜拉桥与合并的中间塔的局部约束系统和浮动侧塔具有最低的损坏概率;和纵向流体粘滞阻尼器和电缆限制器可以达到一定缓解作用,然而,粘滞流体阻尼器具有更好的效果。因此,部分约束系统和流体粘滞阻尼器应在多个超高层塔斜拉桥的纵向方向被使用。

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