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Evaluating Condition Index and Its Probability Distribution Using Monitored Data of Circuit Breaker

机译:利用断路器监测数据评估状态指标及其概率分布

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摘要

This article presents a quantified method to evaluate an overall condition index of power equipment and its probability density distribution using monitored data. A special transformation is developed to normalize the monitored data of different parameters. The overall condition index can be easily calculated using the normalized parameters. To capture the uncertainty and randomness of the monitored data, the kernel density evaluation method is used to assess the probability distribution of the condition index. With the probability density function, the probability of power equipment operating in the normal condition can be assessed. The monitored data of two breakers for five monitored parameters are used in the case study. The results indicate that the proposed method can straightforwardly identify which breaker has a worse performance and, therefore, should be considered for maintenance first.
机译:本文提出了一种量化方法,可使用监视的数据评估电力设备的总体状况指标及其概率密度分布。开发了一种特殊的转换来标准化不同参数的监视数据。使用归一化参数可以轻松计算总体状况指数。为了捕获监视数据的不确定性和随机性,使用核密度评估方法评估条件指标的概率分布。使用概率密度函数,可以评估电力设备在正常条件下运行的概率。在案例研究中,使用了两个断路器的五个监测参数的监测数据。结果表明,所提出的方法可以直接确定哪个断路器的性能较差,因此,应首先考虑对其进行维护。

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