A Risk-Based Framework to Improve a Distribution System’s Resilience against Earthquakes

Mohammad Hossein Oboudi, Mohammad Mohammadi, Dimitris N. Trakas, Nikos D. Hatziargyriou
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引用次数: 1

Abstract

Earthquakes and other natural disasters have caused significant damages to power systems, indicating the necessity to enhance power system resilience. This paper proposes a risk-based resilience enhancement framework against earthquakes that considers their stochastic nature. The proposed framework supports the decision-making of distribution system operators (DSOs) for retrofitting substation components and underground cables to enhance distribution system resilience. The framework consists of four phases, namely earthquake modeling, vulnerability assessment, risk assessment, and resilience enhancement. An attenuation relationship is used to model the earthquake characteristics. Vulnerability assessment includes the failure probability calculation of substation components and a fault-tree method application to examine the seismic vulnerability of the substation. Conditional value at risk (CVaR) is used to assess the seismic risk, and includes the estimation of repair cost and customer interruption cost due to the damage caused by the earthquake, as well as the power generation cost of the distributed energy resources (DERs) used to meet the demand locally. A modified risk reduction worth (RRW) metric is adopted to determine the optimal retrofitting strategy to enhance resilience. The proposed framework was applied to a real distribution substation to examine the effectiveness of substation component retrofitting for resilience enhancement.
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一个基于风险的框架来提高配电系统的抗震能力
地震等自然灾害给电力系统造成了重大损失,提高电力系统的抗灾能力是必要的。本文提出了一种基于风险的地震复原力增强框架,该框架考虑了地震的随机性。提出的框架支持配电系统运营商(dso)对变电站组件和地下电缆进行改造的决策,以增强配电系统的弹性。该框架包括四个阶段,即地震建模、易损性评估、风险评估和恢复力增强。采用衰减关系来模拟地震特征。易损性评估包括变电站部件的失效概率计算和应用故障树方法对变电站的地震易损性进行检测。条件风险值(CVaR)用于评估地震风险,包括地震造成的修复成本和客户中断成本的估计,以及用于满足当地需求的分布式能源(DERs)的发电成本。采用改进的风险降低值(RRW)度量来确定提高弹性的最佳改造策略。将所提出的框架应用于一个实际的配电变电站,以检验变电站构件改造增强弹性的有效性。
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