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首页> 外文期刊>Journal of intelligent material systems and structures >Adaptive base isolation system to achieve structural resiliency under both short- and long-period earthquake ground motions
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Adaptive base isolation system to achieve structural resiliency under both short- and long-period earthquake ground motions

机译:自适应基础隔离系统,可在短期和长期地震地震动下实现结构弹性

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摘要

Base isolation system is widely used to protect important and essential buildings from seismic hazards. The use of high damping is effective in reducing the resonance effect under long-period earthquake ground motions. However, high damping increases the acceleration demand under short-period ground motions, leading to a higher risk of damage of nonstructural components. Actually, low damping is beneficial to reduce the acceleration demand under short-period ground motions, suggesting the use of adaptive damping control, that is, high damping under long-period motions and low damping under short-period motions. In order to implement this concept, a semi-actively controlled base isolation system is provided in this article along with a new control law based on the transmissibility theory. Unlike existing studies, the proposed method enables a systematic design procedure for base isolated structures with semi-active dampers, which is called the simplified design procedure in this article. The performance of the proposed system is evaluated with numerical simulations for a base isolated three-story building with magneto-rheological dampers. It was shown that the proposed system achieves a high level of performance under long-period ground motions, while maintaining the exceptional performance of a conventional base isolation system with low damping under short-period ground motions.
机译:基础隔离系统被广泛用于保护重要和重要建筑物免受地震危害。高阻尼的使用可有效降低长期地震地面运动下的共振效应。但是,高阻尼增加了短时地面运动下的加速度需求,导致损坏非结构部件的风险更高。实际上,低阻尼有利于减少短时地面运动下的加速度需求,这建议使用自适应阻尼控制,即长时运动下的高阻尼和短时运动下的低阻尼。为了实现这个概念,本文提供了一种半主动控制的基础隔离系统,以及基于透射率理论的新控制律。与现有研究不同,该方法使具有半主动阻尼器的基础隔震结构的系统设计过程成为可能,在本文中称为简化设计过程。拟议系统的性能通过数值模拟对带有磁流变阻尼器的基础隔离三层建筑进行了数值模拟评估。结果表明,所提出的系统在长时期的地面运动下能达到较高的性能,同时在短时期的地面运动下仍能保持传统的基本隔振系统在低阻尼下的出色性能。

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