增强配电系统抗火山喷发弹性的电池储能系统优化尺寸和布局

M. Aguirre-Velasco, M. Saltos-Rodríguez, A. Velásquez-Lozano, D. Ortiz-Villalba
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引用次数: 0

摘要

自然灾害等高影响低概率(HILP)事件改变了配电系统(pds)的设计和运行方式。传统的可靠性框架忽略了HILP事件对pdp的灾难性影响。因此,弹性概念对于制定减轻这些影响的战略变得越来越重要。本文提出了一种提高pds抗火山爆发韧性的新方法。建议的方法评估PDS对火山泥流发生的性能及其对PDS基础设施的影响。提出的方法允许规划和运行电池储能系统(BESS),以减少系统恢复期间的能量不供应(ENS)。方法包括蒙特卡罗模拟法(MCS)和随机优化模型。我们的建议在IEEE 37节点测试馈线和厄瓜多尔ELEPCO S.A运营的馈线上实现。这条支线从圣拉斐尔变电站到萨尔塞多变电站,该变电站很容易受到科托帕希火山可能爆发的泥流的影响。结果表明,优化BESS的尺寸和放置位置可以降低火山喷发时的ENS。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optimal Sizing and Placement of Battery Energy Storage System for Resilience Enhancement in Power Distribution Systems Against Volcanic Eruptions
High-impact and low-probability (HILP) events such as natural hazards have changed how the power distribution systems (PDSs) are designed and operated. The traditional reliability framework ignores the catastrophic effects of the HILP events on PDSs. Accordingly, the resilience concept is becoming more critical to developing strategies to mitigate those effects. This paper proposes a novel methodology for resilience enhancement on PDSs against volcanic eruptions. The proposed methodology evaluates the PDSs performance against lahars occurrence and its impact on the PDS infrastructure. The proposed approach allows planning and operating battery energy storage systems (BESS) to reduce the energy not supplied (ENS) during the system recovery. The methodology includes Monte-Carlo simulation method (MCS) and a stochastic optimization model. Our proposal is implemented on the IEEE 37-node test feeder and in a feeder operated by ELEPCO S.A in Ecuador. This feeder departs from the San Rafael substation to the Salcedo substation, which is vulnerable to the impact of a lahar in a possible eruption of the Cotopaxi volcano. The results show that the optimal sizing and placement of BESS can reduce the ENS against volcanic eruptions.
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