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The optimization of multi-parameter insulation diagnosis

机译:多参数绝缘诊断的优化

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摘要

On the basis of statistical theory, a method to quantitatively determine the reliability of multi-parameter diagnosis and to optimize the algorithm of multi-parameter diagnosis is put forward. This method is based on the statistical law, and concerns correlation between the different parameters. Moreover, as an example, the stator bar of generator (300 MW, 18 kV) is studied. 30 samples were selected from different parts of the practical stator bar of generators, and the parameters of dielectric loss, partial discharge and remaining breakdown voltage (BDV, 50 Hz) of each sample were measured. This method is applied to the estimation BDV of generator bars and the optimized multi-parameter diagnosis algorithm is determined on the basis of actual data. Sk+, tone and AC are selected as the optimal parameter group by this method. Comparing with experimental data, it shows that the quantity of parameters is not the more the better. To choose appropriate parameters for assessing insulation condition is important. In order to choose appropriate parameters, two following principles are suggested. 1) It is efficient to select the parameters which have significant correlation with estimation object, as well as to obviate those of limited correlation. 2) Correlation between parameters should be taken into account. Generally speaking, the degree of correlation between parameters is the lower the better.
机译:在统计理论的基础上,提出了一种定量确定多参数诊断可靠性并优化多参数诊断算法的方法。该方法基于统计定律,并涉及不同参数之间的相关性。此外,以发电机定子线棒(300 MW,18 kV)为例进行了研究。从发电机的实际定子条的不同部分中选择30个样品,并测量每个样品的介电损耗,局部放电和剩余击穿电压(BDV,50 Hz)的参数。将该方法应用于发电机棒的估计BDV,并根据实际数据确定优化的多参数诊断算法。通过这种方法,将Sk +,音调和AC选择为最佳参数组。与实验数据比较表明,参数数量不是越多越好。选择合适的参数来评估绝缘状况很重要。为了选择合适的参数,提出了以下两个原理。 1)选择与估计对象有显着相关性的参数,并消除那些相关性有限的参数是有效的。 2)应考虑参数之间的相关性。一般来说,参数之间的相关程度越低越好。

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