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首页> 外文期刊>Industry Applications, IEEE Transactions on >Decentralized Adaptive Protection Coordination Based on Agents Social Activities for Microgrids With Topological and Operational Uncertainties
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Decentralized Adaptive Protection Coordination Based on Agents Social Activities for Microgrids With Topological and Operational Uncertainties

机译:基于代理商社交活动的分散的自适应保护协调,用于微电网与拓扑和运营不确定性

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摘要

A decentralized adaptive scheme is proposed in this article for protection coordination for microgrids with topological and operational uncertainties. This protection coordination scheme is performed in two stages. In the first stage, a traditional fault protection is deployed to clear the fault. If the fault is isolated successfully, the protection system returns to the regular fault-free state. If the fault is not cleared due to operational uncertainties in the protection system, the second stage of protection coordination is initiated. In this stage, based on a federation structure, a set of agents around the fault location negotiate to reach the best protection coordination strategy upon the occurrence of a single or multiple fault(s). Considering the operational uncertainties of the respective circuit breakers and communication links, the best fault clearance strategy is determined by analyzing the probability of correct operation of all proposed strategies and considering the least number of probable load outages. Two major factors impacting the probability of correct operation are fault currents flowing through the respective circuit breakers and the latency of the communication links. The efficiency of the proposed scheme is demonstrated by comparing the simulation results with their experimental counterparts and those obtained using the conventional centralized and decentralized adaptive methods.
机译:本文提出了一种分散的自适应方案,以保护具有拓扑和操作不确定性的微电网的保护协调。该保护协调方案是在两个阶段进行的。在第一阶段,部署了传统的故障保护以清除故障。如果故障成功孤立,则保护系统返回常规无故障状态。如果由于保护系统中的操作不确定性而未清除故障,则启动保护协调的第二阶段。在这个阶段,基于联邦结构,故障位置周围的一组代理协商,以在发生单个或多个故障时达到最佳保护协调策略。考虑到各个断路器和通信链路的操作不确定性,通过分析所有提出的策略的正确操作的可能性并考虑最少数量的可能的负载中断来确定最佳故障策略。影响正确操作概率的两个主要因素是流过各个断路器的故障电流和通信链路的延迟。通过将模拟结果与其实验对应物的比较和使用常规集中式和分散的自适应方法获得的那些,通过将模拟结果进行比较来证明所提出的方案的效率。

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