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Probabilistic seismic demand and capacity models and fragility curves for reticulated structures under far-field ground motions

机译:远场地面运动下网状结构的概率地震需求和容量模型以及脆性曲线

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摘要

This paper aims to develop probabilistic seismic demand models (PSDMs), probabilistic seismic capacity models (PSCMs) and fragility curves for the widely-constructed reticulated structures using far-field earthquake records. The ground motion variability and prevailing uncertainties in structural design and modeling are considered, via performing incremental dynamic analyses (IDAs) on sample models of eighteen generic reticulated shells under forty far-field three-dimensional ground motions. A seismic energy demand-based damage index (DIE) is introduced and then employed together with the peak ground acceleration (PGA), to develop PSDMs and PSCMs for the reticulated shells considered, on the basis of statistical evaluation of the IDA results. The effects of two key structural design parameters, i.e., rise-to-span (or-width) ratio and roof load, on the PSDMs are investigated, and the normalized values for the PSCMs are also recommended. Fragility curves are derived and plotted to examine the difference among reticulated shells with different design parameters. It is concluded that DIE has strong correlation with PGA, and is more appropriate for developing PSDMs for the reticulated shells; and it also suggests that the reticulated shells with bigger rise-to-span (or-width) ratios or larger roof loads are more likely to damage or collapse during earthquakes. These results and conclusions will facilitate the performance-based seismic design and seismic vulnerability assessment of reticulated structures.
机译:本文旨在利用远场地震记录为广泛构造的网状结构开发概率地震需求模型(PSDM),概率地震能力模型(PSCM)和脆性曲线。通过对40个远场三维地面运动下的18个普通网状壳的样本模型执行增量动力学分析(IDA),考虑了地面运动的变异性和结构设计与建模中普遍存在的不确定性。引入基于地震能量需求的破坏指数(DIE),然后与峰值地面加速度(PGA)一起使用,以根据IDA结果的统计评估为所考虑的网状壳开发PSDM和PSCM。研究了两个关键的结构设计参数(即跨度(或宽度)比和屋顶荷载)对PSDM的影响,并建议PSCM的规格化值。推导并绘制易碎性曲线,以检查具有不同设计参数的网状壳之间的差异。结论是DIE与PGA有很强的相关性,更适合于开发用于网状壳的PSDM。这也表明,具有更大的跨度(或宽度)比或较大的屋顶载荷的网状壳在地震期间更容易损坏或坍塌。这些结果和结论将有助于对网状结构进行基于性能的抗震设计和抗震性评估。

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