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Effects of pulse period of near-field ground motions on the seismic demands of soil-MDOF structure systems using mathematical pulse models

机译:使用数学脉冲模型的近场地震动脉冲周期对土壤-MDOF结构系统地震需求的影响

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In this paper, the effects of pulse period associated with near-field ground motions on the seismic demands of soil-MDOF structure systems are investigated by using mathematical pulse models. Three non-dimensional parameters are employed as the crucial parameters, which govern the responses of soil-structure systems: (1) non-dimensional frequency as the structure-to-soil stiffness ratio; (2) aspect ratio of the superstructure; and (3) structural target ductility ratio. The soil beneath the superstructure is simulated on the basis of the Cone model concept. The superstructure is modeled as a nonlinear shear building. Interstory drift ratio is selected as the main engineering demand parameter for soil-structure systems. It is demonstrated that the contribution of higher modes to the response of soil-structure system depends on the pulse-to-interacting system period ratio instead of pulse-to-fixed-base structure period ratio. Furthermore, results of the MDOF superstructures demonstrate that increasing structural target ductility ratio results in the first-mode domination for both fixed-base structure and soil-structure system. Additionally, increasing non-dimensional frequency and aspect ratio of the superstructure respectively decrease and increase the structural responses. Moreover, comparison of the equivalent soil-SDOF structure system and the soil-MDOF structure system elucidates that higher-mode effects are more significant, when soil-structure interaction is taken into account. In general, the effects of fling step and forward directivity pulses on activating higher modes of the superstructure are more sever in soil-structure systems, and in addition, the influences of forward directivity pulses are more considerable than fling step ones.
机译:本文利用数学脉冲模型研究了近场地震动相关的脉冲周期对土壤MDOF结构体系抗震性能的影响。使用三个无量纲参数作为关键参数,它们控制着土-结构系统的响应:(1)无量纲频率作为结构与土壤的刚度比; (2)上部结构的长宽比; (3)结构目标延性比。在圆锥模型的基础上,对上部结构下面的土壤进行了模拟。上层建筑被建模为非线性剪力建筑物。选择层间漂移比作为土-结构系统的主要工程需求参数。结果表明,较高模态对土-结构系统响应的贡献取决于脉冲-相互作用系统的周期比,而不是脉冲-固定基础结构的周期比。此外,MDOF上部结构的结果表明,增加结构目标延性比会导致固定基础结构和土-结构系统的第一模式控制。另外,增加上部结构的无量纲频率和纵横比会分别减少和增加结构响应。此外,当量土-SDOF结构系统和土-MDOF结构系统的比较表明,当考虑土-结构相互作用时,高模效应更为显着。通常,在土壤结构系统中,前冲和前向指向性脉冲对激活上部结构的较高模式的影响更为严重,此外,前向指向性脉冲的影响比前冲性脉冲更为明显。

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