考虑元件损坏和短路故障的变电站地震易损性估计

IF 11 1区 工程技术 Q1 ENGINEERING, INDUSTRIAL
Nicolás Ahumada , Juan Pablo Muñoz Gálvez , Alan Poulos , Félix Rojas , Juan Carlos de la Llera
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引用次数: 0

摘要

现代社会严重依赖电力,电力通过电网从发电站传输到最终用户。变电站是这些电网的关键组成部分。以前的地震严重破坏了其中一些变电站,影响了它们的功能并导致服务中断。功能损失通常使用易损性函数建模,一般来说,易损性函数将地震烈度测量与破坏概率联系起来。大多数先前的研究使用一般的变电站脆弱性函数,而不是特定于所建模的变电站。事实上,变电站是由几个内部组件组成的,它们以各种不同的配置布局,这些通用模型无法准确地表示。本研究提出了一种基于变电站组件内部配置构造脆弱性函数的方法,并考虑了变电站内个别线路的故障和使整个变电站无法工作的短路故障。所提出的方法已应用于智利变电站,结果导致脆弱性函数因其电压水平和内部配置而有很大差异。平均而言,生成的脆弱性函数与HAZUS提供的通用函数非常相似。然而,各个变电站原型之间以及与HAZUS之间的脆弱性函数可能存在显著差异。因此,使用考虑更现实的电气元件内部配置的易损性函数,而不是通用函数,可以改善对电网地震性能、风险和弹性的估计,从而有助于提供更好的工具来准备和减轻地震影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Seismic fragility estimation of electrical substations accounting for component damage and short circuit faults
Modern society relies heavily on electricity, which is transmitted from generating stations to final consumers through an electrical power grid. Electrical substations are key components of these grids. Previous earthquakes have heavily damaged some of these substations, affecting their functionality and leading to service interruptions. Functionality losses are usually modeled using fragility functions, which in general terms relate a seismic intensity measure with the probability of failure. Most previous studies use generic substation fragility functions that are not specific to the modeled substations. Indeed, power substations are composed of several internal components laid out in a wide range of different configurations, which cannot be accurately represented by these generic models. This study proposes a method to construct fragility functions based on the internal configuration of substation components and accounts for faults to individual lines within the substation and short circuit faults that render all the substation nonfunctional. The proposed method was applied to Chilean substations, resulting in fragility functions that vary significantly depending on their voltage level and their internal configuration. On average, the resulting fragility functions are fairly similar to the generic functions provided by HAZUS. However, fragility functions of individual substation archetypes can differ significantly between each other and with those of HAZUS. Thus, using fragility functions that consider a more realistic internal configuration of electrical components instead of generic functions can improve estimations of seismic performance, risk, and resilience of electric power grids, and hence help in providing better tools to prepare and mitigate earthquake effects.
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来源期刊
Reliability Engineering & System Safety
Reliability Engineering & System Safety 管理科学-工程:工业
CiteScore
15.20
自引率
39.50%
发文量
621
审稿时长
67 days
期刊介绍: Elsevier publishes Reliability Engineering & System Safety in association with the European Safety and Reliability Association and the Safety Engineering and Risk Analysis Division. The international journal is devoted to developing and applying methods to enhance the safety and reliability of complex technological systems, like nuclear power plants, chemical plants, hazardous waste facilities, space systems, offshore and maritime systems, transportation systems, constructed infrastructure, and manufacturing plants. The journal normally publishes only articles that involve the analysis of substantive problems related to the reliability of complex systems or present techniques and/or theoretical results that have a discernable relationship to the solution of such problems. An important aim is to balance academic material and practical applications.
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