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Seismic Response and Performance Evaluation of Self-Centering LRB Isolators Installed on the CBF Building under NF Ground Motions

机译:在NF地面运动下CBF建筑上安装自定心LRB隔离器的地震反应与性能评价

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This paper mainly treats the seismic behavior of lead-rubber bearing (LRB) isolation systems with superealstic shape memory alloy (SMA) bending bars functioning as damper and self-centering devices. The conventional LRB isolators that are usually installed at the column bases supply extra flexibility to the centrically braced frame (CBF) building with a view to elongate its vibration period, and thus make a contribution to mitigating seismic acceleration transferred from ground to structure. However, these base isolation systems are somehow susceptible to shear failure due to the lack of lateral resistance. In the construction site, they have been used to be integrated with displacement control dampers additionally withstanding lateral seismic forces. For this motivation, LRB isolation systems equipped with superelastic SMA bending bars, which possess not only excellent energy dissipation but also outstanding recentering capability, are proposed in this study. These reinforced and recentering LRB base isolators are modeled as nonlinear component springs, and then assigned into the bases of 2D frame models used for numerical simulation. Their seismic performance and capacity in the base-isolated frame building can be evaluated through nonlinear dynamic analyses conducted with historic ground motion data. After comparative study with analyses results, it is clearly shown that 2D frame models with proposed LRB isolators generally have smaller maximum displacements than those with conventional LRB isolators. Furthermore, the LRB isolation systems with superelastic SMA bending bars effectively reduce residual displacement as compared to those with steel bending bars because they provide more flexibility and recentering force to the entire building structure.
机译:本文主要用作阻尼器和自定心装置的高度形状记忆合金(SMA)弯曲杆的铅橡胶轴承(LRB)隔离系统的地震行为。通常安装在柱子的传统LRB隔离器基座为中心支撑框架(CBF)建筑提供了额外的柔韧性,以便伸长其振动周期,从而为减轻从地面转移到结构的地震加速度的贡献。然而,由于缺乏横向电阻,这些基本隔离系统以某种方式易于剪切故障。在施工现场,它们已被用于另外具有横向地震力的位移控制阻尼器。对于这种动机,在本研究中提出了具有超弹性SMA弯曲条的LRB隔离系统,该系统不仅具有出色的能量耗散,而且具有出色的能耗。这些增强和RESEMETION的LRB基础隔离器被建模为非线性分量弹簧,然后分配到用于数值模拟的2D帧模型的基础。可以通过与历史地面运动数据进行的非线性动态分析来评估基础隔离框架建筑物的地震性能和容量。在分析结果的比较研究之后,清楚地示出了具有所提出的LRB隔离器的2D帧模型通常具有比具有传统LRB隔离器的最大位移更小的最大位移。此外,与具有钢弯曲条的人相比,具有超弹性SMA弯曲杆的LRB隔离系统有效地降低了残余位移,因为它们为整个建筑物结构提供了更大的柔韧性和更新力。

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