Refined seismic fragility curves of substation equipment considering ground motion classifications

IF 4.2 2区 工程技术 Q1 ENGINEERING, GEOLOGICAL Soil Dynamics and Earthquake Engineering Pub Date : 2024-09-28 DOI:10.1016/j.soildyn.2024.108995
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Abstract

Seismic fragility of substation equipment is vital in risk analyses, as well as post-earthquake prediction of failure probabilities of multiple equipment for deciding the inspection order. However, the existing fragility curves of equipment are commonly generated without adequately considering intensity measures (IMs) of ground motions. During the post-earthquake use, they are deemed applicable to any earthquake occurring in the region, which is insufficiently precise. Thus, this paper employs a new method to derive more refined fragility curves for substation equipment based on ground motion classifications. It uses principal component analysis to convert IMs into a small number of principal components (PCs). Taking the PCs as indices, the selected ground motions are clearly categorized into distinct classes using the K-means clustering algorithm. Then, a simulation model of equipment is developed and the time-history dynamic analyses are performed to calculate seismic responses under different classes of ground motions. Finally, the refined fragility curves are derived via multiple stripe analysis for each ground motion class. A 500 kV power transformer is used as a case to implement the method. The results show that a small number of PCs can effectively reflect the multiple ground motion characteristics. Different ground motion classes have distinct distributions of IMs and PCs. There are notable discrepancies in the fragility curves of the power transformer when subjected to different ground motion classes. The significant disparities between the refined and original unclassified fragility curves highlight the importance of considering ground motion classifications.
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考虑地动分类的变电站设备地震脆性曲线改进版
变电站设备的地震脆性对于风险分析以及震后预测多个设备的故障概率以决定检查顺序至关重要。然而,现有的设备脆性曲线通常是在没有充分考虑地面运动烈度(IMs)的情况下生成的。在震后使用时,它们被认为适用于该地区发生的任何地震,不够精确。因此,本文采用了一种新方法,根据地面运动分类为变电站设备推导出更精细的脆性曲线。它使用主成分分析法将 IMs 转化为少量主成分 (PC)。将 PCs 作为指数,使用 K-means 聚类算法将选定的地面运动明确分为不同的类别。然后,建立设备的模拟模型,并进行时史动态分析,计算不同等级地面运动下的地震响应。最后,通过多条纹分析得出每个地动等级的细化脆性曲线。该方法以 500 kV 电力变压器为例进行实施。结果表明,少量 PCs 就能有效反映多种地面运动特征。不同地动等级的 IM 和 PC 分布不同。电力变压器在不同地动等级下的脆性曲线存在明显差异。改进后的脆性曲线与未分类的原始脆性曲线之间的巨大差异突出表明了考虑地动分类的重要性。
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来源期刊
Soil Dynamics and Earthquake Engineering
Soil Dynamics and Earthquake Engineering 工程技术-地球科学综合
CiteScore
7.50
自引率
15.00%
发文量
446
审稿时长
8 months
期刊介绍: The journal aims to encourage and enhance the role of mechanics and other disciplines as they relate to earthquake engineering by providing opportunities for the publication of the work of applied mathematicians, engineers and other applied scientists involved in solving problems closely related to the field of earthquake engineering and geotechnical earthquake engineering. Emphasis is placed on new concepts and techniques, but case histories will also be published if they enhance the presentation and understanding of new technical concepts.
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