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Cascading overload failure analysis in renewable integrated power grids

机译:可再生集成电网的级联过载故障分析

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摘要

A higher penetration of renewable energy resources (RERs) in network introduces uncertainty in a grid, which causes cascading overload failures. To mitigate these issues completely, a network must be able to simultaneously solve different complex problems at the same time. For this purpose, proper assessment of a renewable integrated power grid (RIPG) is required simultaneously for load flow balancing and transients stability enhancement. The problem becomes severe with the occurrence of a three phase (L-L-L) fault (TPF) in a network, which causes various line outages in the form of (N-1) and (N-1-1-1) contingencies, and thus lead the network to cascading overload failures. This work aims to develop a hybrid probabilistic load flow balancing model along with transients stability model to completely mitigate cascading overload failures in multiple interconnected RIPGs due to (N-1) and (N-1-1-1) contingencies. For this purpose, a unified power flow controller (UPFC) integrated smart transmission network topology is proposed, which provides an optimal load flow balancing and transients stability enhancement concurrently. Contrary to the previous studies, this work is backed by detailed probabilistic analysis to mitigate completely cascading overload failures in multiple interconnected RIPGs due to (N-1) and (N-1-1-1) contingencies.
机译:可再生能源(RER)在网络中的渗透率较高,会在电网中引入不确定性,从而导致级联过载故障。为了完全缓解这些问题,网络必须能够同时解决不同的复杂问题。为此,需要同时对可再生集成电网(RIPG)进行适当评估,以实现潮流平衡和瞬态稳定性的提高。随着网络中发生三相(LLL)故障(TPF),该问题变得更加严重,这会导致各种突发性中断,形式为(N-1)和(N-1-1-1)突发事件,因此导致网络级联过载故障。这项工作旨在开发一种混合概率潮流平衡模型和瞬态稳定性模型,以完全缓解由于(N-1)和(N-1-1-1)突发事件而在多个互连RIPG中造成的级联过载故障。为此,提出了一种统一的潮流控制器(UPFC)集成的智能传输网络拓扑结构,该拓扑结构可同时提供最佳的潮流平衡和瞬态稳定性。与以前的研究相反,这项工作得到详细的概率分析的支持,以减轻由于(N-1)和(N-1-1-1)突发事件而导致的多个相互连接的RIPG中的完全级联过载故障。

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