基于似然比和禁忌搜索的配电网在线故障诊断新算法

Wang Yingying, L. Yee
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引用次数: 3

摘要

针对配电网中断路器或继电器误动不动、损耗数据传输错误、保护动作时间不准确等多种因素造成的不确定性,提出了一种基于似然比和禁忌搜索(TS)的在线故障诊断算法。本文首先用似然比表示故障诊断模型,然后通过对不确定信息的量化,将故障诊断在数学上转化为最优决策模型。最后,提出了禁忌搜索(TS)方法来解决这个问题。该算法不仅可用于处理故障诊断中遇到的不确定性问题,而且可用于多故障诊断。试验结果表明,所开发的故障诊断方法是正确、有效的,可在实际配电网中进行在线应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A new online fault diagnosis algorithm based on likelihood ratio and Tabu search in distribution networks
A new online fault diagnosis algorithm based on likelihood ratio and Tabu search (TS) is proposed for the uncertainties caused by many factors, such as mal-operation and non-operation of circuit breaker or relay, data-transmission error of loss and the inaccurate time of the protective operation in distribution networks. First, the likelihood ratio is represented and the model for fault diagnosis is built up in this paper, and then by quantifying uncertain information, the fault diagnosis is mathematically converted to an optimal decision-making model. Finally, Tabu search (TS) approach is presented to solve this problem. The proposed algorithm is not only used to deal with the uncertainties encountered in the fault diagnosis problem, but also useful for multiple faults. Test results have shown that the developed fault diagnosis method is correct and efficient, and is of promise for online application in actual distribution networks.
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