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Estimating Peak Inelastic Displacement of Steel SMRF Structures Subjected to a Single or Series of Strong Ground Motions with Scaled Response Spectra

机译:估计具有比例响应谱的单个或一系列强地震动作用下的钢SMRF结构的峰值非弹性位移

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The peak inelastic displacement of a building during a strong ground motion correlates with the elastic period of the structure. Algan (1976) observed this while subjecting laboratory scale reinforced concrete building structures to dynamic base excitations. Later, Lepage (1996) expressed the relationship in a simple form after carrying out regression analysis on dynamic response data from a wide range of buildings. Both Algan and Lepage focused on reinforced concrete buildings. In this study, the presence of a similar correlation between peak inelastic displacement and initial, elastic period in steel special moment resisting frame (SMRF) type building structures is investigated. Two sets of GMs are used in response simulation of 3-story and 9-story SMRFs using OpenSEES. The uniaxial Giuffre-Menegotto-Pinto model with isotropic strain hardening and uniaxial bilinear behaviors are considered as the two steel material properties of the structures. The structures are subjected to a series of ground motions with ascending peak ground accelerations. The results are compared with the corresponding responses from non-deteriorated (pristine) structural systems subjected to the highest intensity ground motion from the mentioned ground motion series. Each ground motion is scaled to a target spectral acceleration with respect to the first period of the structure. It is found that a simple empirical expression could be used to estimate the peak inelastic displacement. The source of this rather unexpected behavior is investigated through extensive high-performance computational simulations of how fundamental dynamic characteristics relate to damage and/or softening in a building structural system, including damage accumulation.
机译:在强烈的地面运动过程中,建筑物的最大非弹性位移与结构的弹性周期相关。 Algan(1976)在对实验室规模的钢筋混凝土建筑结构进行动力基础激励时观察到了这一点。后来,Lepage(1996)在对来自各种建筑物的动力响应数据进行回归分析之后,以一种简单的形式表达了这种关系。 Algan和Lepage都专注于钢筋混凝土建筑。在这项研究中,研究了钢制特殊抗弯框架(SMRF)型建筑结构中峰值非弹性位移与初始弹性周期之间存在相似的相关性。在使用OpenSEES的3层和9层SMRF的响应仿真中,使用了两组GM。具有各向同性应变硬化和单轴双线性行为的单轴Giuffre-Menegotto-Pinto模型被视为结构的两种钢材特性。这些结构经受一系列的地面运动,并且地面加速度达到峰值。将结果与来自所述地面运动序列中承受最高强度地面运动的未退化(原始)结构系统的相应响应进行比较。相对于结构的第一周期,每个地面运动都按比例缩放到目标频谱加速度。发现可以使用简单的经验表达式来估计峰值非弹性位移。通过广泛的高性能计算模拟研究了这种相当意外的行为的根源,这些模拟模拟了基本动态特性与建筑结构系统中的破坏和/或软化(包括破坏累积)之间的关系。

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