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首页> 外文期刊>Noise & vibration worldwide >Study on the damping efficiency of continuous beam bridge with constant cross-section applied by lead rubber bearings and fluid viscous dampers
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Study on the damping efficiency of continuous beam bridge with constant cross-section applied by lead rubber bearings and fluid viscous dampers

机译:铅橡胶轴承恒定横截面连续梁桥阻尼效率及流体粘液阻尼器

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摘要

Bridges are the lifelines of disasters in earthquake areas. Therefore, it is very necessary to ensure the safety and traffic function after earthquake. Seismic isolation refers to install external energy dissipation devices or external energy input devices in specific parts of engineering structures. There are certain differences in longitudinal and transverse seismic responses of multi-span continuous beam bridges by changing the seismic dynamic characteristics or dynamic effects of structures. It is difficult to achieve the purpose of seismic isolation in both horizontal directions using isolation devices alone. The rubber deformation ability of lead rubber bearings can effectively insulate, and the yield energy consumption ability of its lead core can effectively consume the seismic energy for damping. The horizontal resistance is very small under the creep load, and the stiffness decreases rapidly after yielding under the strong dynamic earthquake load; meanwhile, the seismic energy is dissipated by the hysteresis of bearing. Fluid viscous damper is a velocity-dependent energy dissipation device, which produces viscous damping force, provides strong restoring force for components, and has a good limit function. This process will also dissipate the seismic energy, so as to reduce the structural earthquake response. Using these two methods together, the horizontal seismic responses of multi-span continuous beam bridges can be effectively controlled at the same time. Based on this idea, this article takes a high-speed multi-span continuous beam bridge with equal section as the engineering background, and uses dynamic time history analysis method to discuss the seismic isolation effect of lead rubber bearings and fluid viscous dampers.
机译:桥梁是地震区灾害的生活。因此,在地震后确保安全和交通功能是非常必要的。地震隔离是指在工程结构的特定部件中安装外部能量耗散装置或外部能量输入装置。通过改变地震动态特性或结构的动态效果,多跨连续梁桥的纵向和横向抗震反应存在一定的差异。单独使用隔离装置难以达到两个水平方向上的地震隔离的目的。铅橡胶轴承的橡胶变形能力可以有效地隔离,其引线芯的产量能耗能力可以有效地消耗抗震能量来阻尼。在蠕变载荷下,水平电阻非常小,在强大的地震载荷下屈服后刚度会迅速降低;同时,地震能量被轴承滞后消散。流体粘性阻尼器是一种速度依赖性能量耗散装置,其产生粘性阻尼力,为部件提供强大的恢复力,并且具有良好的极限功能。该过程还将消散地震能量,从而减少结构地震响应。将这两种方法一起使用,可以同时有效地控制多跨连续梁桥的水平地震响应。基于这个思想,本文采用了一个高速多跨度连续梁桥,与工程背景相等,并采用动态时间历史分析方法讨论铅橡胶轴承和流体粘性阻尼器的地震隔离效果。

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