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Modeling and Quantification of Power System Resilience to Natural Hazards: A Case of Landslide

机译:电力系统对自然灾害的建模与定量 - 一种山体滑坡案例

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摘要

Power systems are stretched across thousands of miles of diverse territories, often in remote locations, to generate and transfer the energy to geographically dispersed customers. The system is therefore subjected to a wide range of natural hazards which could potentially damage critical system components and cause interruption of electricity supply in some areas. To improve system resilience against natural hazards, management frameworks are required to identify hazardous areas and prioritize reinforcement activities in order to take the most out of the limited resources.Landslide is a natural disaster that involves the breakup and downhill flow of rock, mud, water, and anything caught in the path. It is a phenomenon frequently occurred in some parts of the world that could result in the failure of power transmission networks. Consequently, in this paper, a novel approach has been proposed that quantifies the landslide hazard, its damage to power system components, and the impacts on the overall system performance to prioritize reinforcement activities and mitigate the landslide vulnerability. The proposed approach is applied to a real power system and the obtained results are discussed in detail.
机译:电力系统横跨数千英里的不同领土,通常在远程位置,以产生和将能源转移到地理上分散的客户。因此,该系统受到广泛的自然灾害,可能会损害关键系统部件并导致某些区域中的电力供应中断。为了提高对自然灾害的系统恢复性,管理框架需要识别危险区域和优先考虑加固活动,以便充分利用有限的资源.LANDSLIDE是一种涉及岩石,泥浆,水的分析和下坡流动的自然灾害和任何东西都陷入路径上。它是一个经常发生在世界某些地区的现象,可能导致电力传输网络的失败。因此,在本文中,提出了一种新的方法,使山体滑坡危害量化,其对电力系统组件的损坏,以及对整体系统性能的影响,优先考虑加强活动并减轻滑坡脆弱性。所提出的方法应用于实际电力系统,并详细讨论了所得结果。

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